Compositions comprising proteins dissolved in fluorinated solvents, and methods of making and using the same
Patent Information
- Application Number
- EP2023895200
- Authority / Receiving Office
- EP · EP
- Patent Type
- Applications
- Current Assignee / Owner
- Priority Date
- 2022-10-07
- Filing Date
- 2023-10-06
- Publication Date
- 2025-08-13
AI Technical Summary
Protein therapeutics require refrigerated or frozen storage, which is costly and complicates deployment to regions with limited cold chain infrastructure, and there is a need for coatings that eliminate cold storage and reduce contamination risks with microorganisms.
A composition comprising a fluorinated solvent, a dispersant compound, and a protein of interest, where the dispersant compound interacts with the protein to dissolve it in the solvent, allowing protein dispersion in fluorous solvents without the need for cold storage and reducing contamination risks.
Enables the dispersion of proteins in fluorous solvents, eliminating the need for cold storage and reducing contamination risks, while maintaining protein stability and activity.
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Abstract
Description
[0001] Attorney Docket No.148411.002502 PATENT COMPOSITIONS COMPRISING PROTEINS DISSOLVED IN FLUORINATED SOLVENTS, AND METHODS OF MAKING AND USING THE SAME CROSS-REFERENCE TO RELATED APPLICATIONS The present application claims priority to U.S. Provisional Application Number 63 / 414,209 filed on October 7, 2022, which is incorporated herein by reference in its entirety. GOVERNMENT SUPPORT This invention was made with government support under Grant No. D21AP10182 awarded by the U.S. Department of the Interior / Defense Advanced Research Project Agency (MIPR #HR0011153917). The Government has certain rights in the invention. FIELD The present disclosure relates to perfluorinated compounds and methods of using perfluorinated compounds to coat the surfaces of proteins to enable protein dispersion into fluorous solvents. BACKGROUND Protein therapeutics must be produced, shipped and stored in refrigerated or frozen conditions. This is not only costly but complicates the deployment of protein therapeutics to regions with limited cold chain infrastructure. Fluorochemical coatings could allow proteins to be dispersed within perfluorocarbon solvents, eliminating the need for cold storage and producing a product that does not require liquid water and has a reduced risk of contamination with bacteria or viruses that require aqueous environments for survival. There is a need in the art for coatings that can be applied to protein therapeutics to eliminate the necessity of cold storage and reduce the risk of contamination with micro-organism. A similar need exists for other therapeutic candidates like RNA, DNA, and peptide. The present embodiments fulfill this need as well as others. SUMMARY In some embodiments, a composition is provided, the composition comprising a fluorinated solvent, a dispersant compound, and a protein of interest, wherein: the dispersant compound interacts with the protein of interest; and the protein of interest is dissolved in the fluorinated solvent. In some embodiments, the fluorinated solvent is selected from the group consisting of perfluoropentane, perfluorohexane, perfluoroheptane, perfluorooctane, Attorney Docket No.148411.002502 PATENT perfluoromethylcyclohexane, perfluoro-1,3-dimethylcyclohexane, and perfluorodecalin. In some embodiments, the fluorinated solvent is perfluorohexane. In some embodiments, the fluorinated solvent is perfluorooctane. In some embodiments, the dispersant compound is perfluorinated. In some embodiments, the dispersant compound comprises Formula II: (Formula II), wherein x is 6, 7, 8, 9, 10, 12, or 16. In some embodiments, x is 7 (perfluoronanonic acid). In some embodiments, the dispersant compound comprises Formula III: (Formula III). In some embodiments, the dispersant compound comprises Formula V: (Formula V), wherein R is OH or COH. In the dispersant compound comprises Formula VI: (Formula VI), wherein y is 7. In some compound comprises Formula VIII: (Formula VIII), wherein R1is C6F13, C8F17, or R2is CN, H, or COOH. In some embodiments, R1 is C6F13 and R2 is H. Attorney Docket No.148411.002502 PATENT In some embodiments, the dispersant compound interacts with the protein of interest via hydrogen bonding with nitrogen donors present in the protein backbone and amino acid side chains of the protein of interest. In some embodiments, the protein of interest comprises a non-native secondary structure. In some embodiments, the fluorinated solvent is perfluorohexane and the dispersant compound is perfluoronanonic acid. In some embodiments, the fluorinated solvent is perfluorooctane and the dispersant compound comprises Formula VIII: (Formula VIII), wherein R1 is C6F13 and R2 is In some embodiments, a method of dissolving a protein of interest in a fluorinated solvent is provided, the method comprising: contacting the protein of interest with a dispersant compound and dissolving the protein of interest and dispersant compound in the fluorinated solvent. In some embodiments, the method of dissolving a protein of interest in a fluorinated solvent comprises a fluorinated solvent selected from the group consisting of perfluoropentane, perfluorohexane, perfluoroheptane, perfluorooctane, perfluoromethylcyclohexane, perfluoro-1,3-dimethylcyclohexane, and perfluorodecalin. In some embodiments, the fluorinated solvent is perfluorohexane. In some embodiments, the fluorinated solvent is perfluorooctane. In some embodiments, the method of dissolving a protein of interest in a fluorinated solvent comprises a dispersant compound, wherein the dispersant compound is perfluorinated. In some embodiments, the dispersant compound comprises Formula II: (Formula II), wherein x is 6, 7, 8, 9, 10, 12, x is 7 (perfluoronanonic acid). In some embodiments, the dispersant compound comprises Formula III: Attorney Docket No.148411.002502 PATENT (Formula III). In some embodiments, the comprises Formula V: (Formula V), wherein R is OH or COH. In the dispersant compound comprises Formula VI: (Formula VI), wherein y is 7. In some the dispersant compound comprises Formula VIII: (Formula VIII), wherein R1is C6F13, C8F17, or R2is CN, H, or COOH. In some embodiments, R1 is C6F13 and R2 is H. In some embodiments, the method of dissolving a protein of interest in a fluorinated solvent comprises a dispersant compound, wherein the dispersant compound interacts with the protein of interest via hydrogen bonding with nitrogen donors present in the protein backbone and amino acid side chains of the protein of interest. In some embodiments, the protein of interest comprises a non-native secondary structure. In some embodiments, the method of dissolving a protein of interest in a fluorinated solvent comprises a fluorinated solvent, wherein the fluorinated solvent is perfluorohexane and the dispersant compound is perfluoronanonic acid. In some embodiments, the fluorinated solvent is perfluorooctane and the dispersant compound comprises Formula VIII: Attorney Docket No.148411.002502 PATENT (Formula VIII), wherein R1is C6F13and R2is BRIEF DESCRIPTION OF THE DRAWINGS FIG.1 depicts structures of fluorochemical compounds 0, 1, and 2, which were based on the Formula I with 4, 6, and 12 repeats (indicated as ‘v’ in Formula I), respectively. The compounds were screened for protein binding avidity. FIGs.2A-2B depicts the structure of fluorochemical compounds 3-7 (FIG.2A) and compounds 8-12 (FIG.2B), which were based off Formula II with 0, 1, 3, 6, 7, 8, 9, 10, 12, or 16 repeats (indicated as ‘x’ in Formula II) for each compound 3-12, respectively. The compounds were screened for protein binding avidity. FIG.3 depicts the structure of fluorochemical compound 13, which was based on the Formula III. The compound was screened for protein binding avidity. FIG.4 depicts the structure of fluorochemical compound 14, which was based on the Formula IV. The structure of the bound FMOC group is shown at the bottom of the figure. The compound was screened for protein binding avidity. FIG.5 depicts structures of fluorochemical compounds 15 and 16, which were based on the Formula V, where the R group was OH for compound 15 and COH for compound 16. The compounds were screened for protein binding avidity. FIG.6 depicts the structure of fluorochemical compound 17, which was based on the Formula VI with 7 repeats (indicated as ‘y’ in Formula VI). The compound was screened for protein binding avidity. FIG.7 depicts structures of fluorochemical compounds 18, 19, and 20, which were based on the Formula VII with 2, 6, and 7 repeats (indicated as ‘z’ in Formula VII), respectively. The compounds were screened for protein binding avidity. FIGs.8A-8G depict fluorochemical-mediated dispersion of test proteins hemoglobin (Hb, FIG.8A), green fluorescent protein (GFP, FIG.8B), bovine serum albumin (BSA, FIG. 8C), β-Galactosidase (β-Gal, FIG.8D), rabbit serum immunoglobulin G (IgG, FIG.8E), bovine apo-transferrin (TFN, FIG.8F), and urease (URE, FIG.8G) into perfluorohexane. Results are displayed as percent soluble protein relative to initial loading. The compound ‘0’ indicates a control sample absent of an additive. The crystal structure of each protein Attorney Docket No.148411.002502 PATENT candidate tested is shown in the inset of each of FIGs.8A-8G. Only the rabbit IgG Fc fragment is shown. FIGs.9A-9C depict the relationship between protein dispersion efficiency (FIG.9A) and length of perfluoroalkyl tail of tested perfluorinated carboxylic acids (compounds 3-12), as well as predicted logP (FIG.9B) and pKa (FIG.9C) of all relevant fluorochemical compounds. FIGs.10A-10F depict the comparison of PFNA-mediated fluorous phase seperation (dispersion) and protein macromolecular properties, including molecular weight (FIG.10A), solvent-accessible surface area (FIG.10B) (SASA), hydrodynamic radius (FIG.10C), isoelectric point (pI) (FIG.10D), α-helix content (FIG.10E), and β-sheet content (FIG.10F). Dashed lines in FIG.10C and FIG.10D represent polynomial regression analyses, with a goodness-of-fit (R2) of 0.80 and 0.60, respectively. Regression analysis of data in FIGs.10A- 10B and FIGs.10E-10F did not show statistically significant predictions for comparison (R2< 0.60). FIGs.11A-11C depict the assessment of PFNA interaction avidity (dispersion) and protein amino acid frequency. Polar amino acids with charged (FIG.11A) or uncharged (FIG. 11B) side chains are shown. Amino acids designated as nonpolar are shown in FIG.11C. Dashed lines represent regression analyses, with only those trends achieving a goodness-of-fit (R2) > 0.60 shown. R2value for each comparison is shown in the bottom right corner of the plot. FIG.12A depicts a workflow diagram of the MedusaDock protein-ligand docking algorithm. FIGs.12B-12E depicts the relative frequency of hydrogen bonding between PFNA’s carboxylic acid (FIG.12B) and fluorine atoms (FIG.12C) with each protein’s solvent shell water molecules (H2O), backbone nitrogen and oxygen (NB, OB) and solvent accessible amino acid side chains capable of forming hydrogen bonds. FIG.12D: relative frequency of PFNA hydrophobic contacts with protein solvent accessible amino acids. FIG. 12E: box and whisker plot of change in Gibbs free energy for PFNA ligands docked in protein binding sites. Individual points represent rotamer lowest binding free energy in a selected binding site; n = 7-12 binding sites per protein. FIG.13 depicts a model of a PFNA ligand docked with GFP (PDB structure 3UFZ). FIGs.14A-14L depict circular dichroism spectra of Hb (FIG.14A), GFP (FIG.14B), BSA (FIG.14C), β-Gal (FIG.14D), rabbit serum IgG (FIG.14E), transferrin (FIG.14F), and urease (FIG.14G) in the absence (black line) or presence (dashed lines) of PFNA. Increasing dash sequence indicated higher concentration of PFNA. FIG.14H: Change in molar Attorney Docket No.148411.002502 PATENT ellipticity at 216 nm (Δ^216) of PFNA-treated proteins, relative to native controls, as a function of increasing ligand concentration. FIG.14I: Percentage change in secondary structural motifs of Hb, β-Gal and IgG between the native protein and 1mM PFNA treated samples. β-sheet structures were further differentiated into parallel and antiparallel conformations. Hb, β-Gal and IgG were prioritized for analysis based on their significant spectral shift in the presence of 1mM PFNA. FIGs.14J-14L: Sensograms for BSA (FIG. 14J), β-gal (FIG.14K), and IgG (FIG.14L) showing relative response (R.U.) at 10, 25, 50, 75, and 100 μM. FIG.15 depicts the melting temperature (Tm) of 5 test proteins dissolved in either PBS (Aq.) or Perfluorooctane (PFOc). FIGs.16A-16C depict that the thermal stability of β-gal, GFP, and Trypsin is enhanced when the proteins are dissolved in a PFNA / PFOC mixture, compared to aqueous solutions of the proteins. FIGs.17A-17B depict the uptake of GFP in human lung A549 cells after 2 and 24 hours of incubation in the absence / presence of PFNA. Results are shown in relative fluorescence units (RFU). FIGs.18A-18B depict the uptake of Cy5-labeled BSA in human lung A549 cells after 2 and 24 hours of incubation in the absence / presence of PFNA. Results are shown in relative fluorescence units (RFU). FIGs.19A-19B depicts the uptake of Texas Red-labeled Transferrin in human lung A549 cells after 2 and 24 hours of incubation in the absence / presence of PFNA. Results are shown in relative fluorescence units (RFU). FIGs.20A-20D depicts annexin-V / PI co-staining of A549 cells treated without or with PFNA at 2 and 24 hours. FIGs.20A-20C: Flow cytometry scatter plots. FIG.20D: quadrant data comparing the population of unaffected cells (native), to cells displaying lipid translocation (Lip. Tran.) membrane permeabilization (Mem. Perm.), or both. FIG.21 depicts confocal micrographs of eGFP-PC9 cells in the absence (top) and presence (bottom) of PFNA. FIG.22 depicts an analysis of average cellular fluorescence (in relative fluorescence units, RFU) for cells treated without / with PFNA for 1, 2 and 5 hours. Statistical significance was determined using unpaired t-test, with n.s. = not significant, * p<0.05, ** p<0.01 and *** p<0.001. Attorney Docket No.148411.002502 PATENT FIG.23 depicts analysis of cellular fluorescent area (in relative area units, RAU) for cells treated without / with PFNA for 1, 2 and 5 hours. Statistical significance was determined using unpaired t-test, with n.s. = not significant, * p<0.05, ** p<0.01 and *** p<0.001. FIGs.24A-24B show that PFOc samples remain sterile after contamination with E. coli. FIG.24A: Diagram of contamination experiment. FIG.24B: Samples in PBS (top) and PFOc (bottom) after contamination with E. coli. FIG.25 depicts selected fluorochemical compounds 6 (6), 7 (7), 8 (8), 9 (9), and 10 (10), which were based off Formula II with 6, 7, 8, 9, and 10 repeats (indicated as ‘x’ in Formula II), respectively. FIG.26 depicts fluorochemical compounds 21, 22, 23, and 24, which are based on Formula VIII. FIGs.27A-27D depict the fluorochemical-mediated dispersion of test proteins bovine serum albumin (BSA, FIG.27A), β-Galactosidase (β-Gal, FIG.27B), trypsin (FIG.27C), and rabbit serum immunoglobulin G (IgG, FIG.27D) into solutions containing fluorochemical compounds. Results are displayed as percent soluble protein relative to initial loading. The compound ‘0’ indicates a control sample absent of an additive. FIG.28 depicts a viability assay for HepG2 cells treated with two first generation compounds and two second generation compounds. FIG.29 depicts additional fluorochemical compounds 25, 26, 27, 28, and 29, based on Formula VIII. FIGs.30A-30B depict additional fluorochemical compounds, based on Formula IX. FIGs.31A-31B depict additional fluorochemical compounds based on Formula X. FIG.32 depicts time-dependent enzymatic activity curves of β-Gal in plasma delivered systemically in either saline (β-GalSaline) or extracted PFOc (β-GalExt. PFOc) vehicle. FIG.33 depicts box and whisker plot of n = 4-5 technical replicates of enzymatic activity of β-Gal in plasma delivered systemically in either saline (β-GalSaline) or extracted PFOc (β-GalExt. PFOc) vehicle. FIGs.34A-34B depict representative histopathologic images of lung, kidney, liver, and spleen tissue section from C57BL / 6J mice 24 hours after administration of saline, β- GalSaline or β-GalExt. PFOc. FIG.34A: Each imaging group consisted of n = 4 mice, with 4 random fields per section collected at 10X magnification in a blinded manner; scale bar = 100 µm. FIG.34B: Same data as 34A, collected at 40X magnification. FIG.35 depicts a structural library of protein dispersants (PD). Attorney Docket No.148411.002502 PATENT FIGs.36A-36D depict dispersion efficiency of (FIG.36A) bovine serum albumin (BSA), (FIG.36B) β-Galactosidase (β-Gal), (FIG.36C) rabbit serum immunoglobulin G (IgG) and (FIG.36D) trypsin in PFOc using the indicated dispersant (PD:protein molar ratio of 1000:1). Results displayed as percent soluble protein relative to initial loading. PD-7 is highlighted via cross-hatching to aid indexing results to dispersant structure. Data shown in panels represents the average ± s.d. of n = 3 technical replicates. FIGs.37A-37B depict influence of dispersant (FIG.37A) partition coefficient (log P) and (FIG.37B) dissociation coefficient (pKa) on protein dispersion efficiency. Data shown in panels represents the average ± s.d. of n = 3 technical replicates. FIGs.38A-38B depict cytotoxicity curves and corresponding results for the indicated protein dispersant towards HepG2 human hepatic carcinoma cells. FIG.38B: Indicates the concentration at which 50% inhibition of cell (IC50) occurs. FIGs.39A-39B depict temperature-dependent CD spectra of the indicated test protein solubilized in PFOc using the PD-7 dispersant, or PBS as a control. FIG.40 depicts the change in minimum CD ellipticity over the 40°C - 85°C temperature interval for the indicated protein dissolved in either PBS or PFOc. FIGs.41A-41D depict representative transmission electron micrograph of (FIG.41A) BSA, (FIG.41B) PD-7 in PFOc, (FIG.41C) PD-7 coated BSA assemblies in PFOc, and (FIG.41D) PD-7 coated BSA fibrils in PFOc solvent. Scale bar in FIGs.41A-41B represent 2 µm and 500 nm, respectively. FIG 41C: Scale bar = 2 µm. FIG.41D: Scale bar = 100 nm. FIG.42 depicts superimposed1H NMR region demonstrating the downfield shift of PD-7’s -COOH protein in the absence and presence of BSA. FIG.43 depicts a superimposed1H NMR spectra of PD-7 (60 mM) and PD-7:BSA (1000:1 molar ratio) complex. Inset shows magnified region of PD-7 -COOH proton chemical shift (Δδ). FIG.44 depicts a superimposed1H NMR spectra of PD-2 (60 mM) and PD-2:BSA (1000:1 molar ratio) complex. Inset shows magnified region of PD-2 -COOH proton chemical shift (Δδ). FIG.45 depicts the change in1H (-COOH) and19F (-CF3) NMR chemical shift (Δδ) for PD-2 (grey) and PD-7 (black) following coordination with the BSA protein. FIGs.46A-46B depict superimposed19F NMR spectra. FIG, 46A: PD-7 (60 mM) and PD-7:BSA (1000:1 molar ratio) complex; inset shows magnified region of PD-7 -CFxproton chemical shift (Δδ). FIG.47B: PD-2 (60 mM) and PD-2:BSA (1000:1 molar ratio) complex. Inset shows magnified region of PD-2 -CFxproton chemical shift (Δδ). Attorney Docket No.148411.002502 PATENT FIG.47 depicts stacked FTIR spectra of PD-7, BSA and the PD-7:BSA complex after elution into PBS. FIGs.48A-48D depict residue-specific hydrogen-bonding interactions of PD-2 (grey) and PD-7 (black) with (FIG.48A) Hb, (FIG.48B) β-Gal, (FIG.48C) GFP and (FIG.48D) trypsin. Data reported as the percentage of total hydrogen bonds divided by the frequency normalized residue count in the protein. FIG.49 depicts the molecular organization of PD-2:BSA (top panels) and PD-7:BSA (lower panels) assemblies at the initial (t = 0 ns) and 10 ns simulation time points. FIGs.50A-50B depict the molecular model of (FIG.50A) PD-2 and (FIG.50B) PD-7 docked to the surface of BSA, with the indicated distance of representative hydrogen bonds. FIG.51 depicts residue-specific hydrogen-bonding interactions of PD-2 (grey) and PD-7 (black) with BSA. Data reported as the percentage of total hydrogen bonds divided by the frequency normalized residue count in the protein. FIGs.52A-52D depict the change in number of hydrogen bonds and free energy after interaction with the protein surface, as well as free energy of dispersant oligomerization, for PD-2 (grey) and PD-7 (black) over the 10 ns simulation time. FIGs.52C-52D: Free energy plots for dispersant interactions with Hb (a), β-Gal (b), GFP (c) and trypsin (d). FIG.53 depicts representative photographs of agar plates streaked with BSA formulations in PBS (top panel) or PFOc (lower panel) contaminated with the indicated pathogen. MRSA = methicillin resistant Staphylococcus aureus. FIGs.54A-54C depict the relative activity of the β-Gal protein dispersed in PBS or PFOc solvents without and with contamination by (FIG.54A) proteinase K, (FIG.54B) bleach or (FIG.54C) hydrochloric acid. Data shown as average ± s.d. of n = 3 technical replicates. Statistical significance between conditions is indicated by a line using unpaired Student’s t-test with n.s. = not significant, * p<0.05, ** p<0.01, and *** p<0.001. FIG.55 depicts time-dependent enzymatic activity of β-Gal in plasma delivered systemically in either saline (β-GalSaline) or extracted PFOc (β-GalExt. PFOc). Data shown as average ± s.d. of n = 5 technical replicates. Statistical significance determined using Student’s t-test and represented as n.s. = not significant, * p < 0.05. FIG.56 depicts serologic toxicology results from C57BL / 6J mice 24 hours after administration of saline (control), β-GalSaline or β-GalExt. PFOc. Data shown as box and whisker plot ± s.d. of n = 5 technical replicates. Statistical significance determined using Student’s t-test and represented as * p < 0.05; all other comparisons were found not to be significant (p > 0.05). Attorney Docket No.148411.002502 PATENT DETAILED DESCRIPTION Unless defined otherwise, all technical and scientific terms have the same meaning as commonly understood by one of ordinary skill in the art to which the embodiments disclosed belongs. As used herein, the terms “a” or “an” means that “at least one” or “one or more” unless the context clearly indicates otherwise. As used herein, the term “about” means that the numerical value is approximate and small variations would not significantly affect the practice of the disclosed embodiments. Where a numerical limitation is used, unless indicated otherwise by the context, “about” means the numerical value can vary by ±10% and remain within the scope of the disclosed embodiments. As used herein, the terms “comprising” (and any form of comprising, such as “comprise”, “comprises”, and “comprised”), “having” (and any form of having, such as “have” and “has”), “including” (and any form of including, such as “includes” and “include”), or “containing” (and any form of containing, such as “contains” and “contain”), are inclusive or open-ended and do not exclude additional, unrecited elements or method steps. Any step or composition that uses the transitional phrase of “comprise” or “comprising” can also be said to describe the same with the transitional phase of “consisting of” or “consists.” The term “perfluorinated compound” refers to an organofluorine compound that contains only carbon-fluorine and carbon-carbon bonds and may or may not also contain heteroatoms. Non-limiting examples of perfluorinated compounds include, but are not limited to, perfluoroalkul substances. The term “perfluoroalkyl substance,” abbreviated as “PFAS,” refers to organofluorine compounds that possess C-F bonds and other heteroatom functional groups (e.g. -OH, -CO2H). In some embodiments, a composition is provided, the composition comprising a fluorinated solvent, a dispersant compound, and a protein of interest, wherein: the dispersant compound interacts with the protein of interest; and the protein of interest is dissolved in the fluorinated solvent. In some embodiments, the fluorinated solvent is selected from the group consisting of perfluoropentane, perfluorohexane, perfluoroheptane, perfluorooctane, perfluoromethylcyclohexane, perfluoro-1,3-dimethylcyclohexane, and perfluorodecalin. In some embodiments, the fluorinated solvent compound comprises Formula I: Attorney Docket No.148411.002502 PATENT (Formula I), wherein the formula is (CF2)V(CF3) , 4 (perfluorohexane), 5 (perfluoroheptane), or 6 (perfluorooctane). In some embodiments, the fluorinated solvent is perfluorohexane. In some embodiments, the fluorinated solvent is perfluorooctane. In some embodiments, the solvent compound comprises Compound 0. In some embodiments, Compound 0 comprises perfluorohexane (PFH). In some embodiments, Compound 0 comprises the formula C6F14. In some embodiments, the solvent compound comprises Formula I ((CF2)V(CF3)2), wherein v is 4 ((CF2)4(CF3)2), and the compound is Compound 0 comprising perfluorohexane. In some embodiments, perfluorohexane is 1,1,1,2,2,3,3,4,4,5,5,6,6,6-tetradecafluorohexane. In some embodiments, the molecular weight of Compound 0 is about 338 g / mol, or about the molecular weight of PFH. In some embodiments, the fluorinated solvent comprises a solvent chosen from Table 1. Table 1: Perfluorinated solvents Formula Compound name Abbreviation C5F12perfluoropentane PFP In some embodiments, the dispersant compound is perfluorinated. In some embodiments, a composition is provided, the composition comprising a fluorinated solvent, a perfluorinated dispersant compound, and a protein of interest, wherein: the perfluorinated dispersant compound interacts with the protein of interest; and the protein of interest is dissolved in the fluorinated solvent. In some embodiments, the dispersant compound interacts with the protein of interest via hydrogen bonding with nitrogen donors present in the protein backbone and amino acid side chains of the protein of interest. In some embodiments, the protein of interest comprises a non-native secondary structure. In some embodiments, the dispersant compound is perfluorinated. Attorney Docket No.148411.002502 PATENT In some embodiments, a composition is provided, the composition comprising a fluorinated solvent, a perfluorinated dispersant compound, and a protein of interest, wherein: the perfluorinated dispersant compound interacts with the protein of interest; the protein of interest is dissolved in the fluorinated solvent; the fluorinated solvent is chosen from perfluoropentane, perfluorohexane, perfluoroheptane, perfluorooctane, perfluoromethylcyclohexane, perfluoro-1,3-dimethylcyclohexane, or perfluorodecalin; and the perfluorinated dispersant compound is chosen from a compound that comprises: Formula I, Formula II, Formula III, Formula IV, Formula V, Formula VI, Formula VII, or Formula VIII. In some embodiments, a composition is provided, the composition comprising a fluorinated solvent, a perfluorinated dispersant compound, and a protein of interest, wherein: the perfluorinated dispersant compound interacts with the protein of interest; the protein of interest is dissolved in the fluorinated solvent; the fluorinated solvent is chosen from perfluoropentane, perfluorohexane, perfluoroheptane, perfluorooctane, perfluoromethylcyclohexane, perfluoro-1,3-dimethylcyclohexane, or perfluorodecalin; and the perfluorinated dispersant compound is chosen from: perfluorohexane (Compound 0), perfluorooctane (Compound 1), perfluorotetradecane (Compound 2), trifluoroacetic acid (Compound 3), perfluoropropionic acid (Compound 4), perfluoropentanoic acid (Compound 5), perfluorooctanoic acid (Compound 6), perfluoronanonic acid (Compound 7), perfluorodecanoic acid (Compound 8), perfluoroundecanoic acid (Compound 9), perfluorododecanoic acid (Compound 10), perfluorotetradecanoic acid (Compound 11), perfluorooctadecanoic acid (Compound 12), perfluorocyclohexanecarboxylic acid (Compound 13), (2S) 2-FMOC-amino-3-pentafluorophenyl propanoic acid (Compound 14), pentafluorophenol (Compound 15), pentafluorobenzaldehyde (Compound 16), perfluorooctanesulfonic acid (Compound 17), 1H,1H-heptafluorobutylamine (Compound 18), perfluorooctylamine (Compound 19), and 1H,1H-perfluorononylamine (Compound 20). In some embodiments, the dispersant compound is perfluorinated. In some embodiments, the dispersant compound is a perfluorinated compound chosen from the group that includes: perfluorooctanoic acid (Compound 6), perfluoronanonic acid (Compound 7), perfluorodecanoic acid (Compound 8) perfluoroundecanoic acid (Compound 9), perfluorododecanoic acid (Compound 10), 2,2-(1,1,1,2,2,3,3,4,4,5,5,6,6-tridecafluorooctane)- 2-cyanoacetic acid (Compound 21), 2,2-(1,1,1,2,2,3,3,4,4,5,5,6,6-tridecafluorooctane)-2- acetic acid (Compound 22), 2,2-(1,1,1,2,2,3,3,4,4,5,5,6,6,7,7,8,8-heptadecafluorodecane)-2- cyanoacetic acid (Compound 23), 2,2-(1,1,1,2,2,3,3,4,4,5,5,6,6,7,7,8,8- heptadecafluorodecane)-acetic acid (Compound 24), 2,2-(1,1,1,2,2,3,3,4,4- Attorney Docket No.148411.002502 PATENT nonafluorohexane)-2-cyanoacetic acid (Compound 25), 2,2-(1,1,1,2,2,3,3,4,4- nonafluorohexane)-2-acetic acid (Compound 26), 2,2-(1,1,1,2,2,3,3,4,4-nonafluorohexane)-2- diacetic acid (Compound 27), 2,2-(1,1,1,2,2,3,3,4,4,5,5,6,6-tridecafluorooctane)-2-diacetic acid (Compound 28), or 2,2-(1,1,1,2,2,3,3,4,4,5,5,6,6,7,7,8,8-heptadecafluorodecane)-2- diacetic acid (Compound 29), as described herein. In some embodiments, the dispersant compound is a perfluorinated compound chosen from the group that includes: perfluorohexane (Compound 0), perfluorooctane (Compound 1), perfluorotetradecane (Compound 2), trifluoroacetic acid (Compound 3), perfluoropropionic acid (Compound 4), perfluoropentanoic acid (Compound 5), perfluorooctanoic acid (Compound 6), perfluoronanonic acid (Compound 7), perfluorodecanoic acid (Compound 8), perfluoroundecanoic acid (Compound 9), perfluorododecanoic acid (Compound 10), perfluorotetradecanoic acid (Compound 11), perfluorooctadecanoic acid (Compound 12), perfluorocyclohexanecarboxylic acid (Compound 13), (2S) 2-FMOC-amino-3-pentafluorophenyl propanoic acid (Compound 14), pentafluorophenol (Compound 15), pentafluorobenzaldehyde (Compound 16), perfluorooctanesulfonic acid (Compound 17), 1H,1H-heptafluorobutylamine (Compound 18), perfluorooctylamine (Compound 19), and 1H,1H-perfluorononylamine (Compound 20). In some embodiments, the dispersant compound is perfluorinated. In some embodiments, the dispersant compound is a perfluorinated compound chosen from the group that includes: perfluorooctanoic acid (Compound 6), perfluoronanonic acid (Compound 7), perfluorodecanoic acid (Compound 8) perfluoroundecanoic acid (Compound 9), perfluorododecanoic acid (Compound 10), 2,2-(1,1,1,2,2,3,3,4,4,5,5,6,6-tridecafluorooctane)- 2-cyanoacetic acid (Compound 21), 2,2-(1,1,1,2,2,3,3,4,4,5,5,6,6-tridecafluorooctane)-2- acetic acid (Compound 22), 2,2-(1,1,1,2,2,3,3,4,4,5,5,6,6,7,7,8,8-heptadecafluorodecane)-2- cyanoacetic acid (Compound 23), 2,2-(1,1,1,2,2,3,3,4,4,5,5,6,6,7,7,8,8- heptadecafluorodecane)-acetic acid (Compound 24), 2,2-(1,1,1,2,2,3,3,4,4- nonafluorohexane)-2-cyanoacetic acid (Compound 25), 2,2-(1,1,1,2,2,3,3,4,4- nonafluorohexane)-2-acetic acid (Compound 26), 2,2-(1,1,1,2,2,3,3,4,4-nonafluorohexane)-2- diacetic acid (Compound 27), 2,2-(1,1,1,2,2,3,3,4,4,5,5,6,6-tridecafluorooctane)-2-diacetic acid (Compound 28), or 2,2-(1,1,1,2,2,3,3,4,4,5,5,6,6,7,7,8,8-heptadecafluorodecane)-2- diacetic acid (Compound 29), as described herein. In some embodiments, the dispersant compound is a perfluorinated compound chosen from the group that includes: perfluorooctane (Compound 1), perfluorotetradecane (Compound 2), trifluoroacetic acid (Compound 3), perfluoropropionic acid (Compound 4), Attorney Docket No.148411.002502 PATENT perfluoropentanoic acid (Compound 5), perfluorooctanoic acid (Compound 6 / Compound 6), perfluoronanonic acid (Compound 7 / Compound 7), perfluorodecanoic acid (Compound 8 / Compound 8), perfluoroundecanoic acid (Compound 9 / Compound 9), perfluorododecanoic acid (Compound 10 / Compound 10), perfluorotetradecanoic acid (Compound 11), perfluorooctadecanoic acid (Compound 12), perfluorocyclohexanecarboxylic acid (Compound 13), (2S) 2-FMOC-amino-3-pentafluorophenyl propanoic acid (Compound 14), pentafluorophenol (Compound 15), pentafluorobenzaldehyde (Compound 16), perfluorooctanesulfonic acid (Compound 17), 1H,1H-heptafluorobutylamine (Compound 18), perfluorooctylamine (Compound 19), 1H,1H-perfluorononylamine (Compound 20), 2,2- (1,1,1,2,2,3,3,4,4,5,5,6,6-tridecafluorooctane)-2-cyanoacetic acid (Compound 21), 2,2- (1,1,1,2,2,3,3,4,4,5,5,6,6-tridecafluorooctane)-2-acetic acid (Compound 22), 2,2- (1,1,1,2,2,3,3,4,4,5,5,6,6,7,7,8,8-heptadecafluorodecane)-2-cyanoacetic acid (Compound 23), 2,2-(1,1,1,2,2,3,3,4,4,5,5,6,6,7,7,8,8-heptadecafluorodecane)-acetic acid (Compound 24), 2,2- (1,1,1,2,2,3,3,4,4-nonafluorohexane)-2-cyanoacetic acid (Compound 25), 2,2- (1,1,1,2,2,3,3,4,4-nonafluorohexane)-2-acetic acid (Compound 26), 2,2-(1,1,1,2,2,3,3,4,4- nonafluorohexane)-2-diacetic acid (Compound 27), 2,2-(1,1,1,2,2,3,3,4,4,5,5,6,6- tridecafluorooctane)-2-diacetic acid (Compound 28), or 2,2-(1,1,1,2,2,3,3,4,4,5,5,6,6,7,7,8,8- heptadecafluorodecane)-2-diacetic acid (Compound 29), as described herein. In some embodiments, the dispersant compound is a perfluorinated compound chosen from the group that includes any compound described in any one of Tables 2-6. In some embodiments, the dispersant compound is a perfluorinated compound with a chemical formula chosen from a group that is described in Table 2. In some embodiments, the chemical formula of the perfluorinated dispersant compound is based off of Formula I, Formula II, Formula III, Formula IV, Formula V, Formula VI, Formula VII, or Formula VII. In some embodiments, the perfluorinated dispersant compound comprises the SMILES ID chosen from the group as described in Table 6. In some embodiments, the perfluorinated dispersant compound comprises a chemical name as chosen from the group that is described in Table 5. In some embodiments, the perfluorinated dispersant compound can be abbreviated as described in Table 5. In some embodiments, the perfluorinated dispersant compound comprises a chemical group R1 chosen from the group that is described in Table 4. In some embodiments, the perfluorinated dispersant compound comprises a chemical group R1_Extended chosen from the group that is described in Table 4. In some embodiments, the perfluorinated dispersant compound Attorney Docket No.148411.002502 PATENT comprises a chemical name chosen from the group described in Table 3, where R1_Extended comprises the chemical group R1_Extended chosen from the group described in Table 4. In some embodiments, the fluorinated solvent is chosen from the group described in Table 1 and the perfluorinated dispersant compound is chosen from the group of compounds described in any one of Tables 2-6.
[0002] Attorney Docket No.148411.002502 PATENT Table 2 Dispersant Compound Formula ID Chemical Formula 3 3 3 C O C O O O H) H H Attorney Docket No.148411.002502 PATENT X C8NH10O2(R1)2(R R1 = CN, H, 2) COOH R3 R4 R2 CH NO C Formula Formula name Associated Compounds C5H8(R1)2(CN)COOH 2,2-(R1_Extended)-2- abe Associated R1 R1Extended R1Extended Group name Compounds Table 5 Dispersant Compound n Attorney Docket No.148411.002502 PATENT 17 perfluorooctanesulfonic acid PFOS 18 1H,1H-heptafluorobutylamine Table 6 Dispersant Compound ID SMILES ID F F) F) F) ) F) Attorney Docket No.148411.002502 PATENT 18 C(C(C(C(F)(F)F)(F)F)(F)F)N 19 C(C(C(C(C(C(C(C(F)(F)F)(F)F)(F)F)(F)F)(F)F)(F)F)(F)F)N F) )( F) )( C C( F) F) ( ( In some embodiments, the dispersant compound comprises a compound described in Table 7. Table 7 Formula Formula ID C d ID In some embodiments, the fluorinated solvent comprises Compound 0 (perfluorohexane) and the dispersant compound also comprises Compound 0. Attorney Docket No.148411.002502 PATENT In some embodiments, the protein of interest is dispersed in perfluorohexane in the presence of Compound 0. In some embodiments, the protein of interest can include, but is not limited to, human hemoglobin (Hb), green fluorescent protein (GFP), bovine serum albumin (BSA), β-Galactosidase (β-Gal), rabbit serum immunoglobulin (IgG), bovine apo-transferrin (TFN), or urease (URE). In some embodiments, the protein of interest has a molecular weight of at least 5 kDa, 10 kDa, 15 kDa, 20 kDa, 25 kDa, 30 kDa, 35 kDa, 40 kDa, 45 kDa, 50 kDa, 55 kDa, 60 kDa, 65 kDa, 70 kDa, 75 kDa, 80 kDa, 85 kDa, 90 kDa, or 100 kDa. In some embodiments, the protein of interest has a molecular weight of about 27 kDa, 64.5 kDa, 66.5 kDa, 76 kDa, or 81 kDa. In some embodiments, the protein of interest has a molecular weight of at least 100 kDa, 110 kDa, 120 kDa, 130 kDa, 140 kDa, 150 kDa, 160 kDa, 170 kDa, 180 kDa, 190 kDa, or 200 kDa. In some embodiments, the protein of interest has a molecular weight of about 150 kDa. In some embodiments, the protein of interest has a molecular weight of at least 200 kDa, 250 kDa, 300 kDa, 350 kDa, 400 kDa, 450 kDa, 500 kDa, 550 kDa, or 600 kDa. In some embodiments, the protein of interest has a molecular weight of about 464 kDa, 483 kDa, or 520 kDa. In some embodiments, the protein of interest is dispersed in perfluorohexane at a molar ratio of about 100:1, 200:1, 300:1, 400:1, 500:1, 600:1, 700:1, 800:1, 900:1, 1000:1, 1250:1, 1500:1, 1750:1, 2000:1, 2500:1, 3000:1, 4000:1, or 5000:1 with the protein of interest. In some embodiments, the protein of interest is dispersed in perfluorohexane at a molar ratio of about 1000:1 with the protein of interest. In some embodiments, the protein of interest dose not phase separate when dispersed in perfluorohexane. In some embodiments, the protein of interest phase separates when dispersed in perfluorohexane, wherein the dispersion efficiency is about 0.5%, 1%, 2%, 3%, 4%, 5%, 6%, 7%, 8%, 9%, or about 10%. In some embodiments, the dispersion efficiency is between about 1% and about 10%. In some embodiments, the dispersion efficiency is about 5%. In some embodiments, the dispersion efficiency is less than 5%. In some embodiments, the fluorinated solvent comprises Compound 0 (perfluorohexane) and the dispersant compound is chosen from the group that includes perfluorooctane (Compound 1), perfluorotetradecane (Compound 2), trifluoroacetic acid (Compound 3), perfluoropropionic acid (Compound 4), perfluoropentanoic acid (Compound 5), perfluorooctanoic acid (Compound 6 / Compound 6), perfluoronanonic acid (Compound 7 / Compound 7), perfluorodecanoic acid (Compound 8 / Compound 8), perfluoroundecanoic acid (Compound 9 / Compound 9), perfluorododecanoic acid (Compound 10 / Compound 10), perfluorotetradecanoic acid (Compound 11), perfluorooctadecanoic acid (Compound 12), perfluorocyclohexanecarboxylic acid (Compound 13), (2S) 2-FMOC-amino-3- Attorney Docket No.148411.002502 PATENT pentafluorophenyl propanoic acid (Compound 14), pentafluorophenol (Compound 15), pentafluorobenzaldehyde (Compound 16), perfluorooctanesulfonic acid (Compound 17), 1H,1H-heptafluorobutylamine (Compound 18), perfluorooctylamine (Compound 19), 1H,1H- perfluorononylamine (Compound 20), 2,2-(1,1,1,2,2,3,3,4,4,5,5,6,6-tridecafluorooctane)-2- cyanoacetic acid (Compound 21), 2,2-(1,1,1,2,2,3,3,4,4,5,5,6,6-tridecafluorooctane)-2-acetic acid (Compound 22), 2,2-(1,1,1,2,2,3,3,4,4,5,5,6,6,7,7,8,8-heptadecafluorodecane)-2- cyanoacetic acid (Compound 23), 2,2-(1,1,1,2,2,3,3,4,4,5,5,6,6,7,7,8,8- heptadecafluorodecane)-acetic acid (Compound 24), 2,2-(1,1,1,2,2,3,3,4,4- nonafluorohexane)-2-cyanoacetic acid (Compound 25), 2,2-(1,1,1,2,2,3,3,4,4- nonafluorohexane)-2-acetic acid (Compound 26), 2,2-(1,1,1,2,2,3,3,4,4-nonafluorohexane)-2- diacetic acid (Compound 27), 2,2-(1,1,1,2,2,3,3,4,4,5,5,6,6-tridecafluorooctane)-2-diacetic acid (Compound 28), or 2,2-(1,1,1,2,2,3,3,4,4,5,5,6,6,7,7,8,8-heptadecafluorodecane)-2- diacetic acid (Compound 29), as described herein. In some embodiments, the dispersant compound comprises Formula I: (Formula I), wherein the formula is (CF2)V(CF3) 12. In some embodiments, v is 6 (perfluorooctane). In some embodiments, v is 12 (perfluorotetradecane). In some embodiments, the dispersant compound comprises Compound 1. In some embodiments, Compound 1 comprises perfluorooctane (PFO). In some embodiments, Compound 1 comprises the formula C8F18. In some embodiments, the dispersant compound comprises Formula I ((CF2)V(CF3)2), wherein v is 6 ((CF2)6(CF3)2), and the compound is Compound 1 comprising perfluorooctane. In some embodiments, perfluorooctane is octadecafluorooctane or 1,1,1,2,2,3,3,4,4,5,5,6,6,7,7,8,8,8-octadecafluorooctane. In some embodiments, the molecular weight of Compound 2 is about 438 g / mol, or about the molecular weight of PFO. In some embodiments, the fluorinated solvent is chosen from the group that includes perfluoropentane, perfluorohexane, perfluoroheptane, perfluorooctane, perfluoromethylcyclohexane, perfluoro-1-3-dimethylcyclohexane, or perfluorodecalin, and the perfluorinated dispersant compound comprises Compound 1. In some embodiments, the fluorinated solvent is perfluorohexane and the perfluorinated dispersant compound comprises Compound 1. In some embodiments, the fluorinated solvent is perfluorooctane and the perfluorinated dispersant compound comprises Compound 1 that also comprises Attorney Docket No.148411.002502 PATENT perfluorooctane. In some embodiments, the fluorinated solvent is perfluoropentane and the perfluorinated dispersant compound comprises Compound 1. In some embodiments, the fluorinated solvent is perfluoroheptane and the perfluorinated dispersant compound comprises Compound 1. In some embodiments, the fluorinated solvent is perfluoromethylcyclohexane and the perfluorinated dispersant compound comprises Compound 1. In some embodiments, the fluorinated solvent is perfluoro-1-3- dimethylcyclohexane and the perfluorinated dispersant compound comprises Compound 1. In some embodiments, the fluorinated solvent is perfluorodecalin and the perfluorinated dispersant compound comprises Compound 1. In some embodiments, the protein of interest is dispersed in perfluorohexane in the presence of Compound 1. In some embodiments, the protein of interest can include, but is not limited to, human hemoglobin (Hb), green fluorescent protein (GFP), bovine serum albumin (BSA), β-Galactosidase (β-Gal), rabbit serum immunoglobulin (IgG), bovine apo-transferrin (TFN), or urease (URE). In some embodiments, the protein of interest has a molecular weight of at least 5 kDa, 10 kDa, 15 kDa, 20 kDa, 25 kDa, 30 kDa, 35 kDa, 40 kDa, 45 kDa, 50 kDa, 55 kDa, 60 kDa, 65 kDa, 70 kDa, 75 kDa, 80 kDa, 85 kDa, 90 kDa, or 100 kDa. In some embodiments, the protein of interest has a molecular weight of about 27 kDa, 64.5 kDa, 66.5 kDa, 76 kDa, or 81 kDa. In some embodiments, the protein of interest has a molecular weight of at least 100 kDa, 110 kDa, 120 kDa, 130 kDa, 140 kDa, 150 kDa, 160 kDa, 170 kDa, 180 kDa, 190 kDa, or 200 kDa. In some embodiments, the protein of interest has a molecular weight of about 150 kDa. In some embodiments, the protein of interest has a molecular weight of at least 200 kDa, 250 kDa, 300 kDa, 350 kDa, 400 kDa, 450 kDa, 500 kDa, 550 kDa, or 600 kDa. In some embodiments, the protein of interest has a molecular weight of about 464 kDa, 483 kDa, or 520 kDa. In some embodiments, the protein of interest is dispersed in perfluorohexane in the presence of Compound 1, wherein the molar ratio of Compound 1 is about 100:1, 200:1, 300:1, 400:1, 500:1, 600:1, 700:1, 800:1, 900:1, 1000:1, 1250:1, 1500:1, 1750:1, 2000:1, 2500:1, 3000:1, 4000:1, or 5000:1 with the protein of interest. In some embodiments, the protein of interest is dispersed in perfluorohexane in the presence of Compound 1, wherein the molar ratio of Compound 1 is about 1000:1 with the protein of interest. In some embodiments, the protein of interest phase separates when dispersed in perfluorohexane in the presence of Compound 1, but does not phase separate when dispersed in perfluorohexane in the absence of Compound 1. In some embodiments, the protein of interest phase separates when dispersed in perfluorohexane in the presence of Compound 1, wherein the dispersion efficiency is about 1%, 2%, 3%, 4%, 5%, 10%, 15%, Attorney Docket No.148411.002502 PATENT 20%, or 25%. In some embodiments, the dispersion efficiency is between about 1% and about 25%. In some embodiments, the dispersion efficiency is about 15%. In some embodiments, the dispersant compound comprises Compound 2. In some embodiments, Compound 2 comprises perfluorotetradecane. In some embodiments, Compound 2 comprises the formula C14F30. In some embodiments, the dispersant compound comprises Formula I ((CF2)V(CF3)2), wherein v is 12 ((CF2)12(CF3)2), and the compound is Compound 2 comprising perfluorotetradecane. In some embodiments, perfluorotetradecane is 1,1,1,2,2,3,3,4,4,5,5,6,6,7,7,8,8,9,9,10,10,11,11,12,12,13,13,14,14,14- triacontafluorotetradecane. In some embodiments, the molecular weight of Compound 2 is about 738 g / mol, or about the molecular weight of perfluorotetradecane. In some embodiments, the fluorinated solvent is chosen from the group that includes perfluoropentane, perfluorohexane, perfluoroheptane, perfluorooctane, perfluoromethylcyclohexane, perfluoro-1-3-dimethylcyclohexane, or perfluorodecalin, and the perfluorinated dispersant compound comprises Compound 2. In some embodiments, the fluorinated solvent is perfluorohexane and the perfluorinated dispersant compound comprises Compound 2. In some embodiments, the fluorinated solvent is perfluorooctane and the perfluorinated dispersant compound comprises Compound 2. In some embodiments, the fluorinated solvent is perfluoropentane and the perfluorinated dispersant compound comprises Compound 2. In some embodiments, the fluorinated solvent is perfluoroheptane and the perfluorinated dispersant compound comprises Compound 2. In some embodiments, the fluorinated solvent is perfluoromethylcyclohexane and the perfluorinated dispersant compound comprises Compound 2. In some embodiments, the fluorinated solvent is perfluoro-1-3-dimethylcyclohexane and the perfluorinated dispersant compound comprises Compound 2. In some embodiments, the fluorinated solvent is perfluorodecalin and the perfluorinated dispersant compound comprises Compound 2. In some embodiments, the protein of interest is dispersed in perfluorohexane in the presence of Compound 2. In some embodiments, the protein of interest can include, but is not limited to, human hemoglobin (Hb), green fluorescent protein (GFP), bovine serum albumin (BSA), β-Galactosidase (β-Gal), rabbit serum immunoglobulin (IgG), bovine apo-transferrin (TFN), or urease (URE). In some embodiments, the protein of interest has a molecular weight of at least 5 kDa, 10 kDa, 15 kDa, 20 kDa, 25 kDa, 30 kDa, 35 kDa, 40 kDa, 45 kDa, 50 kDa, 55 kDa, 60 kDa, 65 kDa, 70 kDa, 75 kDa, 80 kDa, 85 kDa, 90 kDa, or 100 kDa. In some embodiments, the protein of interest has a molecular weight of about 27 kDa, 64.5 kDa, 66.5 kDa, 76 kDa, or 81 kDa. In some embodiments, the protein of interest has a molecular weight Attorney Docket No.148411.002502 PATENT of at least 100 kDa, 110 kDa, 120 kDa, 130 kDa, 140 kDa, 150 kDa, 160 kDa, 170 kDa, 180 kDa, 190 kDa, or 200 kDa. In some embodiments, the protein of interest has a molecular weight of about 150 kDa. In some embodiments, the protein of interest has a molecular weight of at least 200 kDa, 250 kDa, 300 kDa, 350 kDa, 400 kDa, 450 kDa, 500 kDa, 550 kDa, or 600 kDa. In some embodiments, the protein of interest has a molecular weight of about 464 kDa, 483 kDa, or 520 kDa. In some embodiments, the protein of interest is dispersed in perfluorohexane in the presence of Compound 2, wherein the molar ratio of Compound 2 is about 100:1, 200:1, 300:1, 400:1, 500:1, 600:1, 700:1, 800:1, 900:1, 1000:1, 1250:1, 1500:1, 1750:1, 2000:1, 2500:1, 3000:1, 4000:1, or 5000:1 with the protein of interest. In some embodiments, the protein of interest is dispersed in perfluorohexane in the presence of Compound 2, wherein the molar ratio of Compound 2 is about 1000:1 with the protein of interest. In some embodiments, the protein of interest phase separates when dispersed in perfluorohexane in the presence of Compound 2, but does not phase separate when dispersed in perfluorohexane in the absence of Compound 2. In some embodiments, the protein of interest phase separates when dispersed in perfluorohexane in the presence of Compound 2, wherein the dispersion efficiency is about 1%, 2%, 3%, 4%, 5%, 10%, 15%, 20%, or 25%. In some embodiments, the dispersion efficiency is between about 1% and about 25%. In some embodiments, the dispersion efficiency is about 15%. In some embodiments, the dispersant compound comprises Formula II: (Formula II), wherein the formula is (CF2)X x is 0, 1, 3, 6, 7, 8, 9, 10, 12, or 16. In some embodiments, x is 0 (trifluoroacetic acid). In some embodiments, x is 1 (perfluoropropionic acid). In some embodiments, x is 3 (perfluoropentanoic acid). In some embodiments, x is 6 (perfluorooctanoic acid). In some embodiments, x is 7 (perfluoronanonic acid). In some embodiments, x is 8 (perfluorodecanoic acid). In some embodiments, x is 9 (perfluoroundecanoic acid). In some embodiments, x is 10 (perfluorododecanoic acid). In some embodiments, x is 12 (perfluorotetradecanoic acid). In some embodiments, x is 16 (perfluorooctadecanoic acid). In some embodiments, the dispersant compound comprises Compound 3. In some embodiments, Compound 3 comprises trifluoroacetic acid (TFA). In some embodiments, Compound 3 comprises the formula C2HF3O2. In some embodiments, the dispersant Attorney Docket No.148411.002502 PATENT compound comprises Formula II ((CF2)XCF3COOH), wherein x is 0 ((CF2)0CF3COOH), and the compound is Compound 3 comprising trifluoroacetic acid. In some embodiments, trifluoroacetic acid is 2,2,2-trifluoroacetic acid. In some embodiments, the molecular weight of Compound 3 is about 114 g / mol, or about the molecular weight of TFA. In some embodiments, the fluorinated solvent is chosen from the group that includes perfluoropentane, perfluorohexane, perfluoroheptane, perfluorooctane, perfluoromethylcyclohexane, perfluoro-1-3-dimethylcyclohexane, or perfluorodecalin, and the perfluorinated dispersant compound comprises Compound 3. In some embodiments, the fluorinated solvent is perfluorohexane and the perfluorinated dispersant compound comprises Compound 3. In some embodiments, the fluorinated solvent is perfluorooctane and the perfluorinated dispersant compound comprises Compound 3. In some embodiments, the fluorinated solvent is perfluoropentane and the perfluorinated dispersant compound comprises Compound 3. In some embodiments, the fluorinated solvent is perfluoroheptane and the perfluorinated dispersant compound comprises Compound 3. In some embodiments, the fluorinated solvent is perfluoromethylcyclohexane and the perfluorinated dispersant compound comprises Compound 3. In some embodiments, the fluorinated solvent is perfluoro-1-3-dimethylcyclohexane and the perfluorinated dispersant compound comprises Compound 3. In some embodiments, the fluorinated solvent is perfluorodecalin and the perfluorinated dispersant compound comprises Compound 3. In some embodiments, the protein of interest is dispersed in perfluorohexane in the presence of Compound 3. In some embodiments, the protein of interest can include, but is not limited to, human hemoglobin (Hb), green fluorescent protein (GFP), bovine serum albumin (BSA), β-Galactosidase (β-Gal), rabbit serum immunoglobulin (IgG), bovine apo-transferrin (TFN), or urease (URE). In some embodiments, the protein of interest has a molecular weight of at least 5 kDa, 10 kDa, 15 kDa, 20 kDa, 25 kDa, 30 kDa, 35 kDa, 40 kDa, 45 kDa, 50 kDa, 55 kDa, 60 kDa, 65 kDa, 70 kDa, 75 kDa, 80 kDa, 85 kDa, 90 kDa, or 100 kDa. In some embodiments, the protein of interest has a molecular weight of about 27 kDa, 64.5 kDa, 66.5 kDa, 76 kDa, or 81 kDa. In some embodiments, the protein of interest has a molecular weight of at least 100 kDa, 110 kDa, 120 kDa, 130 kDa, 140 kDa, 150 kDa, 160 kDa, 170 kDa, 180 kDa, 190 kDa, or 200 kDa. In some embodiments, the protein of interest has a molecular weight of about 150 kDa. In some embodiments, the protein of interest has a molecular weight of at least 200 kDa, 250 kDa, 300 kDa, 350 kDa, 400 kDa, 450 kDa, 500 kDa, 550 kDa, or 600 kDa. In some embodiments, the protein of interest has a molecular weight of about 464 kDa, 483 kDa, or 520 kDa. In some embodiments, the protein of interest is Attorney Docket No.148411.002502 PATENT dispersed in perfluorohexane in the presence of Compound 3, wherein the molar ratio of Compound 3 is about 100:1, 200:1, 300:1, 400:1, 500:1, 600:1, 700:1, 800:1, 900:1, 1000:1, 1250:1, 1500:1, 1750:1, 2000:1, 2500:1, 3000:1, 4000:1, or 5000:1 with the protein of interest. In some embodiments, the protein of interest is dispersed in perfluorohexane in the presence of Compound 3, wherein the molar ratio of Compound 3 is about 1000:1 with the protein of interest. In some embodiments, the protein of interest phase separates when dispersed in perfluorohexane in the presence of Compound 3, but does not phase separate when dispersed in perfluorohexane in the absence of Compound 3. In some embodiments, the protein of interest phase separates when dispersed in perfluorohexane in the presence of Compound 3, wherein the dispersion efficiency is about 1%, 2%, 3%, 4%, 5%, 10%, 15%, 20%, or 25%. In some embodiments, the dispersion efficiency is between about 1% and about 25%. In some embodiments, the dispersion efficiency is about 15%. In some embodiments, the dispersant compound comprises Compound 4. In some embodiments, Compound 4 comprises perfluoropropionic acid (PFPrA). In some embodiments, Compound 4 comprises the formula C3HF5O2. In some embodiments, the dispersant compound comprises Formula II ((CF2)XCF3COOH), wherein x is 1 (CF2CF3COOH), and the compound is Compound 4 comprising perfluoropropionic acid. In some embodiments, perfluoropropionic acid is 2,2,3,3,3-pentafluoropropanoic acid . In some embodiments, the molecular weight of Compound 4 is about 164 g / mol, or about the molecular weight of PFPrA. In some embodiments, the fluorinated solvent is chosen from the group that includes perfluoropentane, perfluorohexane, perfluoroheptane, perfluorooctane, perfluoromethylcyclohexane, perfluoro-1-3-dimethylcyclohexane, or perfluorodecalin, and the perfluorinated dispersant compound comprises Compound 4. In some embodiments, the fluorinated solvent is perfluorohexane and the perfluorinated dispersant compound comprises Compound 4. In some embodiments, the fluorinated solvent is perfluorooctane and the perfluorinated dispersant compound comprises Compound 4. In some embodiments, the fluorinated solvent is perfluoropentane and the perfluorinated dispersant compound comprises Compound 4. In some embodiments, the fluorinated solvent is perfluoroheptane and the perfluorinated dispersant compound comprises Compound 4. In some embodiments, the fluorinated solvent is perfluoromethylcyclohexane and the perfluorinated dispersant compound comprises Compound 4. In some embodiments, the fluorinated solvent is perfluoro-1-3-dimethylcyclohexane and the perfluorinated dispersant compound comprises Compound 4. In some embodiments, the fluorinated solvent is perfluorodecalin and the perfluorinated dispersant compound comprises Compound 4. Attorney Docket No.148411.002502 PATENT In some embodiments, the protein of interest is dispersed in perfluorohexane in the presence of Compound 4. In some embodiments, the protein of interest can include, but is not limited to, human hemoglobin (Hb), green fluorescent protein (GFP), bovine serum albumin (BSA), β-Galactosidase (β-Gal), rabbit serum immunoglobulin (IgG), bovine apo-transferrin (TFN), or urease (URE). In some embodiments, the protein of interest has a molecular weight of at least 5 kDa, 10 kDa, 15 kDa, 20 kDa, 25 kDa, 30 kDa, 35 kDa, 40 kDa, 45 kDa, 50 kDa, 55 kDa, 60 kDa, 65 kDa, 70 kDa, 75 kDa, 80 kDa, 85 kDa, 90 kDa, or 100 kDa. In some embodiments, the protein of interest has a molecular weight of about 27 kDa, 64.5 kDa, 66.5 kDa, 76 kDa, or 81 kDa. In some embodiments, the protein of interest has a molecular weight of at least 100 kDa, 110 kDa, 120 kDa, 130 kDa, 140 kDa, 150 kDa, 160 kDa, 170 kDa, 180 kDa, 190 kDa, or 200 kDa. In some embodiments, the protein of interest has a molecular weight of about 150 kDa. In some embodiments, the protein of interest has a molecular weight of at least 200 kDa, 250 kDa, 300 kDa, 350 kDa, 400 kDa, 450 kDa, 500 kDa, 550 kDa, or 600 kDa. In some embodiments, the protein of interest has a molecular weight of about 464 kDa, 483 kDa, or 520 kDa. In some embodiments, the protein of interest is dispersed in perfluorohexane in the presence of Compound 4, wherein the molar ratio of Compound 4 is about 100:1, 200:1, 300:1, 400:1, 500:1, 600:1, 700:1, 800:1, 900:1, 1000:1, 1250:1, 1500:1, 1750:1, 2000:1, 2500:1, 3000:1, 4000:1, or 5000:1 with the protein of interest. In some embodiments, the protein of interest is dispersed in perfluorohexane in the presence of Compound 4, wherein the molar ratio of Compound 4 is about 1000:1 with the protein of interest. In some embodiments, the protein of interest phase separates when dispersed in perfluorohexane in the presence of Compound 4, but does not phase separate when dispersed in perfluorohexane in the absence of Compound 4. In some embodiments, the protein of interest phase separates when dispersed in perfluorohexane in the presence of Compound 4, wherein the dispersion efficiency is about 1%, 2%, 3%, 4%, 5%, 10%, 15%, 20%, or 25%. In some embodiments, the dispersion efficiency is between about 1% and about 25%. In some embodiments, the dispersion efficiency is about 15%. In some embodiments, the dispersant compound comprises Compound 5. In some embodiments, Compound 5 comprises perfluoropentanoic acid (PFPeA). In some embodiments, Compound 5 comprises the formula C5HF9O2. In some embodiments, the dispersant compound comprises Formula II ((CF2)XCF3COOH), wherein x is 3 ((CF2)3CF3COOH), and the compound is Compound 5 comprising perfluoropentanoic acid. In some embodiments, perfluoropentanoic acid is 2,2,3,3,4,4,5,5,5-nonafluoropentanoic acid. In some embodiments, the molecular weight of Compound 5 is about 264 g / mol, or about the Attorney Docket No.148411.002502 PATENT molecular weight of PFPeA. In some embodiments, the fluorinated solvent is chosen from the group that includes perfluoropentane, perfluorohexane, perfluoroheptane, perfluorooctane, perfluoromethylcyclohexane, perfluoro-1-3-dimethylcyclohexane, or perfluorodecalin, and the perfluorinated dispersant compound comprises Compound 5. In some embodiments, the fluorinated solvent is perfluorohexane and the perfluorinated dispersant compound comprises Compound 5. In some embodiments, the fluorinated solvent is perfluorooctane and the perfluorinated dispersant compound comprises Compound 5. In some embodiments, the fluorinated solvent is perfluoropentane and the perfluorinated dispersant compound comprises Compound 5. In some embodiments, the fluorinated solvent is perfluoroheptane and the perfluorinated dispersant compound comprises Compound 5. In some embodiments, the fluorinated solvent is perfluoromethylcyclohexane and the perfluorinated dispersant compound comprises Compound 5. In some embodiments, the fluorinated solvent is perfluoro-1-3-dimethylcyclohexane and the perfluorinated dispersant compound comprises Compound 5. In some embodiments, the fluorinated solvent is perfluorodecalin and the perfluorinated dispersant compound comprises Compound 5. In some embodiments, the protein of interest is dispersed in perfluorohexane in the presence of Compound 5. In some embodiments, the protein of interest can include, but is not limited to, human hemoglobin (Hb), green fluorescent protein (GFP), bovine serum albumin (BSA), β-Galactosidase (β-Gal), rabbit serum immunoglobulin (IgG), bovine apo-transferrin (TFN), or urease (URE). In some embodiments, the protein of interest has a molecular weight of at least 5 kDa, 10 kDa, 15 kDa, 20 kDa, 25 kDa, 30 kDa, 35 kDa, 40 kDa, 45 kDa, 50 kDa, 55 kDa, 60 kDa, 65 kDa, 70 kDa, 75 kDa, 80 kDa, 85 kDa, 90 kDa, or 100 kDa. In some embodiments, the protein of interest has a molecular weight of about 27 kDa, 64.5 kDa, 66.5 kDa, 76 kDa, or 81 kDa. In some embodiments, the protein of interest has a molecular weight of at least 100 kDa, 110 kDa, 120 kDa, 130 kDa, 140 kDa, 150 kDa, 160 kDa, 170 kDa, 180 kDa, 190 kDa, or 200 kDa. In some embodiments, the protein of interest has a molecular weight of about 150 kDa. In some embodiments, the protein of interest has a molecular weight of at least 200 kDa, 250 kDa, 300 kDa, 350 kDa, 400 kDa, 450 kDa, 500 kDa, 550 kDa, or 600 kDa. In some embodiments, the protein of interest has a molecular weight of about 464 kDa, 483 kDa, or 520 kDa. In some embodiments, the protein of interest is dispersed in perfluorohexane in the presence of Compound 5, wherein the molar ratio of Compound 5 is about 100:1, 200:1, 300:1, 400:1, 500:1, 600:1, 700:1, 800:1, 900:1, 1000:1, 1250:1, 1500:1, 1750:1, 2000:1, 2500:1, 3000:1, 4000:1, or 5000:1 with the protein of interest. In some embodiments, the protein of interest is dispersed in perfluorohexane in the Attorney Docket No.148411.002502 PATENT presence of Compound 5, wherein the molar ratio of Compound 5 is about 1000:1 with the protein of interest. In some embodiments, the protein of interest phase separates when dispersed in perfluorohexane in the presence of Compound 5, but does not phase separate when dispersed in perfluorohexane in the absence of Compound 5. In some embodiments, the protein of interest phase separates when dispersed in perfluorohexane in the presence of Compound 5, wherein the dispersion efficiency is about 1%, 2%, 3%, 4%, 5%, 10%, 15%, 20%, 25%, 30%, 35%, or 40%. In some embodiments, the dispersion efficiency is between about 1% and about 40%. In some embodiments, the dispersion efficiency is about 35%. In some embodiments, the dispersant compound comprises Compound 6. In some embodiments, Compound 6 comprises perfluorooctanoic acid (PFOA). In some embodiments, Compound 6 comprises the formula C8HF15O2. In some embodiments, the dispersant compound comprises Formula II ((CF2)XCF3COOH), wherein x is 6 ((CF2)6CF3COOH), and the compound is Compound 6 comprising perfluorooctanoic acid. In some embodiments, perfluorooctanoic acid is 2,2,3,3,4,4,5,5,6,6,7,7,8,8,8- pentadecafluorooctanoic acid. In some embodiments, the molecular weight of Compound 6 is about 414 g / mol, or about the molecular weight of PFOA. In some embodiments, Compound 6 comprises Formula II ((CF2)XCF3COOH), wherein x is 6 and the compound is Compound 6 comprising perfluorooctanoic acid (PFOA). In some embodiments, Compound 6 is Compound 6. In some embodiments, the fluorinated solvent is chosen from the group that includes perfluoropentane, perfluorohexane, perfluoroheptane, perfluorooctane, perfluoromethylcyclohexane, perfluoro-1-3-dimethylcyclohexane, or perfluorodecalin, and the perfluorinated dispersant compound comprises Compound 6. In some embodiments, the fluorinated solvent is perfluorohexane and the perfluorinated dispersant compound comprises Compound 6. In some embodiments, the fluorinated solvent is perfluorooctane and the perfluorinated dispersant compound comprises Compound 6. In some embodiments, the fluorinated solvent is perfluoropentane and the perfluorinated dispersant compound comprises Compound 6. In some embodiments, the fluorinated solvent is perfluoroheptane and the perfluorinated dispersant compound comprises Compound 6. In some embodiments, the fluorinated solvent is perfluoromethylcyclohexane and the perfluorinated dispersant compound comprises Compound 6. In some embodiments, the fluorinated solvent is perfluoro-1-3-dimethylcyclohexane and the perfluorinated dispersant compound comprises Compound 6. In some embodiments, the fluorinated solvent is perfluorodecalin and the perfluorinated dispersant compound comprises Compound 6. Attorney Docket No.148411.002502 PATENT In some embodiments, the protein of interest is dispersed in perfluorohexane in the presence of Compound 6. In some embodiments, the protein of interest can include, but is not limited to, human hemoglobin (Hb), green fluorescent protein (GFP), bovine serum albumin (BSA), β-Galactosidase (β-Gal), rabbit serum immunoglobulin (IgG), bovine apo-transferrin (TFN), or urease (URE). In some embodiments, the protein of interest has a molecular weight of at least 5 kDa, 10 kDa, 15 kDa, 20 kDa, 25 kDa, 30 kDa, 35 kDa, 40 kDa, 45 kDa, 50 kDa, 55 kDa, 60 kDa, 65 kDa, 70 kDa, 75 kDa, 80 kDa, 85 kDa, 90 kDa, or 100 kDa. In some embodiments, the protein of interest has a molecular weight of about 27 kDa, 64.5 kDa, 66.5 kDa, 76 kDa, or 81 kDa. In some embodiments, the protein of interest has a molecular weight of at least 100 kDa, 110 kDa, 120 kDa, 130 kDa, 140 kDa, 150 kDa, 160 kDa, 170 kDa, 180 kDa, 190 kDa, or 200 kDa. In some embodiments, the protein of interest has a molecular weight of about 150 kDa. In some embodiments, the protein of interest has a molecular weight of at least 200 kDa, 250 kDa, 300 kDa, 350 kDa, 400 kDa, 450 kDa, 500 kDa, 550 kDa, or 600 kDa. In some embodiments, the protein of interest has a molecular weight of about 464 kDa, 483 kDa, or 520 kDa. In some embodiments, the protein of interest is dispersed in perfluorohexane in the presence of Compound 6, wherein the molar ratio of Compound 6 is about 100:1, 200:1, 300:1, 400:1, 500:1, 600:1, 700:1, 800:1, 900:1, 1000:1, 1250:1, 1500:1, 1750:1, 2000:1, 2500:1, 3000:1, 4000:1, or 5000:1 with the protein of interest. In some embodiments, the protein of interest is dispersed in perfluorohexane in the presence of Compound 6, wherein the molar ratio of Compound 6 is about 1000:1 with the protein of interest. In some embodiments, the protein of interest phase separates when dispersed in perfluorohexane in the presence of Compound 6, but does not phase separate when dispersed in perfluorohexane in the absence of Compound 6. In some embodiments, the protein of interest phase separates when dispersed in perfluorohexane in the presence of Compound 6, wherein the dispersion efficiency is about 1%, 2%, 3%, 4%, 5%, 10%, 15%, 20%, 25%, 30%, 35%, or 40%. In some embodiments, the dispersion efficiency is between about 1% and about 40%. In some embodiments, the dispersion efficiency is about 35%. In some embodiments, the dispersion efficiency of the protein of interest dissolved in PFH in the presence of PFOA is at least about 5%, 10%, 20%, 30%, 40%, 50%, 60%, 70%, 80%, or 90% when the protein of interest has a molecular weight of about 5 kDa to about 600 kDa. In some embodiments, the dispersion efficiency of the protein of interest is at least about 1%, 5%, 10%, 20%, 30%, 40%, 50%, 60%, 70%, 80%, or 90% when the protein of interest has a molecular weight of about 5 kDa to about 100 kDa. In some embodiments, the dispersion efficiency of the protein of interest dissolved in PFH in the presence of PFOA is at Attorney Docket No.148411.002502 PATENT least about 35% when the protein of interest has a molecular weight of about 5 kDa to about 600 kDa. In some embodiments, the dispersion efficiency of the protein of interest dissolved in PFH in the presence of PFOA is at least about 5%, 10%, 20%, 30%, 40%, 50%, 60%, 70%, 80%, or 90% when the solvent accessible surface area (SASA) is between about 1 x104Å and about 15 x104Å. In some embodiments, the dispersion efficiency of the protein of interest dissolved in PFH in the presence of PFOA is at least about 5%, 10%, 20%, 30%, 40%, 50%, 60%, 70%, 80%, or 90% when the hydrodynamic radii of the protein of interest is between about 2 and to 8 nm. In some embodiments, the dispersion efficiency of the protein of interest dissolved in PFH in the presence of PFOA is at least about 5%, 10%, 20%, 30%, 40%, 50%, 60%, 70%, 80%, or 90% when the isoelectric point (pI) of the protein of interest is between about 4 to about 8. In some embodiments, the dispersion efficiency of the protein of interest dissolved in PFH in the presence of PFOA is at least about 5%, 10%, 20%, 30%, 40%, 50%, 60%, 70%, 80%, or 90% when the α helicity content of the protein of interest is between 0% and about 35%. In some embodiments, the dispersion efficiency of the protein of interest dissolved in PFH in the presence of PFOA is at least about 5%, 10%, 20%, 30%, 40%, 50%, 60%, 70%, 80%, or 90% when the β sheet content of the protein of interest is between 0% and about 60%. In some embodiments, the dispersion efficiency of the protein of interest dissolved in PFH in the presence of PFOA is between about 5% to about 100% when the protein of interest contains between about 0% to about 30% polar residues. In some embodiments, the dispersion efficiency of the protein of interest dissolved in PFH in the presence of PFOA is between about 35% to about 100% when the protein of interest contains between about 0% to about 30% polar residues. In some embodiments, the dispersion efficiency of the protein of interest dissolved in PFH in the presence of PFOA is between about 5% to about 100% when the protein of interest contains between about 0% to about 45% nonpolar residues. In some embodiments, the dispersion efficiency of the protein of interest dissolved in PFH in the presence of PFOA is between about 35% to about 100% when the protein of interest contains between about 0% to about 45% nonpolar residues. In some embodiments, the protein of interest dissolved in PFH in the presence of PFOA, wherein the dispersant compound PFOA interacts with the protein of interest via hydrogen bonding with solvent shell H2O molecules interacting with the protein of interest. In some embodiments, the protein of interest is dissolved in PFH in the presence of PFOA, wherein the dispersant compound PFOA interacts with the protein of interest via hydrogen Attorney Docket No.148411.002502 PATENT bonding with nitrogen donors present in the protein backbone or the amino acid side chains of the protein of interest. In some embodiments, the protein of interest is dissolved in PFH in the presence of PFOA, wherein the dispersant compound PFOA interacts with the protein of interest via hydrogen bonding with oxygen donors present in the protein backbone or the amino acid side chains of the protein of interest. In some embodiments, the protein of interest is dissolved in PFH in the presence of PFOA, wherein the dispersant compound PFOA interacts with the protein of interest via hydrogen bonding with sulfur donors present in the amino acid side chains of the protein of interest. In some embodiments, the protein of interest dissolved in PFH in the presence of PFOA, wherein the carboxylic acid group of the dispersant compound PFOA interacts with the protein of interest via hydrogen bonding to the H2O molecules interacting with the protein of interest. In some embodiments, the protein of interest dissolved in PFH in the presence of PFOA, wherein the carboxylic acid group of the dispersant compound PFOA interacts with the protein of interest via hydrogen bonding to the nitrogen, oxygen, or sulfur donors in the protein backbone or the amino acid side chains of the protein of interest. In some embodiments, the protein of interest dissolved in PFH in the presence of PFOA, wherein the one or more fluorine group of the dispersant compound PFOA interacts with the protein of interest via hydrogen bonding to the H2O molecules interacting with the protein of interest. In some embodiments, the protein of interest dissolved in PFH in the presence of PFOA, wherein the one or more fluorine group of the dispersant compound PFOA interacts with the protein of interest via hydrogen bonding to the nitrogen, oxygen, or sulfur donors in the protein backbone or the amino acid side chains of the protein of interest. In some embodiments, the protein of interest is dissolved in PFH in the presence of PFOA, wherein the dispersant compound PFOA makes hydrophobic contacts with protein solvent accessible amino acids. In some embodiments, the protein of interest is dissolved in PFH in the presence of PFOA, wherein the Gibbs free energy between the PFOA and the protein of interest is between about -20 to about -50 kcal / mol. In some embodiments, the protein of interest is dissolved in PFH in the presence of PFOA, wherein the Gibbs free energy between the PFOA and the docked rotamers from the protein of interest is between about -20 to about -50 kcal / mol. In some embodiments, the structure of the protein of interest changes when dissolved in PFH in the presence of PFOA. In some embodiments, the protein of interest comprises a non-native secondary structure. In some embodiments, the change in molar ellipticity of the protein of interest is between about 2 deg cm-2dmol-1to about -6 deg cm-2dmol-1. In some Attorney Docket No.148411.002502 PATENT embodiments, the change in β-sheet content is between about -20% to about 20%. In some embodiments, the change in parallel β-sheet content is between about -20% to about 20%. In some embodiments, the change in antiparallel β-sheet content is between about -20% to about 20%. In some embodiments, the change in α-helix content is between about -20% to about 20%. In some embodiments, the change in turns content is between about -20% to about 20%. In some embodiments, the protein of interest is dissolved in PFH in the presence of PFOA, wherein the binding of the protein to the PFOA is 1:1. In some embodiments, , the protein of interest is dissolved in PFH in the presence of PFOA, wherein the binding of the protein to the PFOA is not 1:1. In some embodiments, the protein of interest is dissolved in PFH in the presence of PFOA, wherein the thermal stability of the protein is increased compared to the thermal stability of the protein of interest dissolved in an aqueous solvent. In some embodiments, the protein of interest is dissolved in PFH in the presence of PFOA, wherein the melting temperature of the protein is increased by about 5 °C, 10 °C, 20 °C, 30 °C, or 40 °C compared to the melting temperature of the protein of interest in an aqueous solvent. In some embodiments, the protein of interest is active in an aqueous solvent at 25 °C, but is not active in an aqueous solvent at 75 °C, 80 °C, 85 °C, or 90 °C. In some embodiments, the protein of interest is active in an aqueous solvent at 25 °C, but the activity is reduced when the protein of interest is dissolved in an aqueous solvent at 75 °C, 80 °C, 85 °C, or 90 °C. In some embodiments, the activity is reduced by about 80% or by about 90%. In some embodiments, the protein of interest is dissolved in PFH in the presence of PFOA, wherein the protein of interest is active at 25 °C and is also active at 75 °C, 80 °C, 85 °C, or 90 °C. In some embodiments, the protein of interest is dissolved in PFH in the presence of PFOA, wherein the activity is reduced by about 1% to about 25% when the temperature is about 75 °C, 80 °C, 85 °C, or 90 °C, compared to when the temperature is about 25 °C. In some embodiments, the protein of interest is dissolved in PFH in the presence of PFOA, wherein the activity is increased by about 1% to about 25% when the temperature is about 75 °C, 80 °C, 85 °C, or 90 °C, compared to when the temperature is about 25 °C. In some embodiments, the protein of interest is dissolved in PFH in the presence of PFOA, wherein the protein comprises a reduced risk of contamination compared to when the protein is dissolved in an aqueous solvent. In some embodiments, the protein of interest is dissolved in PFH in the presence of PFOA, wherein the protein comprises a reduced risk of bacterial or viral contamination compared to when the protein is dissolved in PBS. In some embodiments, the protein of interest is dissolved in PFH in the presence of PFOA, wherein Attorney Docket No.148411.002502 PATENT the protein comprises a reduced risk of E. coli contamination compared to when the protein is dissolved in PBS. In some embodiments, the dispersant compound comprises Compound 7. In some embodiments, Compound 7 comprises perfluoronanonic acid (PFNA). In some embodiments, Compound 7 comprises the formula C9HF17O2. In some embodiments, the dispersant compound comprises Formula II ((CF2)XCF3COOH), wherein x is 7 ((CF2)7CF3COOH), and the compound is Compound 7 comprising perfluoronanonic acid. In some embodiments, perfluoronanonic acid is 2,2,3,3,4,4,5,5,6,6,7,7,8,8,9,9,9-heptadecafluorononanoic acid. In some embodiments, the molecular weight of Compound 7 is about 464 g / mol, or about the molecular weight of PFNA. In some embodiments, Compound 7 comprises Formula II ((CF2)XCF3COOH), wherein x is 7 ((CF2)7CF3COOH), and the compound is Compound 7 comprising perfluoronanonic acid. In some embodiments, Compound 7 is Compound 7. In some embodiments, the fluorinated solvent is chosen from the group that includes perfluoropentane, perfluorohexane, perfluoroheptane, perfluorooctane, perfluoromethylcyclohexane, perfluoro-1-3-dimethylcyclohexane, or perfluorodecalin, and the perfluorinated dispersant compound comprises Compound 7. In some embodiments, the fluorinated solvent is perfluorohexane and the perfluorinated dispersant compound comprises Compound 7. In some embodiments, the fluorinated solvent is perfluorooctane and the perfluorinated dispersant compound comprises Compound 7. In some embodiments, the fluorinated solvent is perfluoropentane and the perfluorinated dispersant compound comprises Compound 7. In some embodiments, the fluorinated solvent is perfluoroheptane and the perfluorinated dispersant compound comprises Compound 7. In some embodiments, the fluorinated solvent is perfluoromethylcyclohexane and the perfluorinated dispersant compound comprises Compound 7. In some embodiments, the fluorinated solvent is perfluoro-1-3-dimethylcyclohexane and the perfluorinated dispersant compound comprises Compound 7. In some embodiments, the fluorinated solvent is perfluorodecalin and the perfluorinated dispersant compound comprises Compound 7. In some embodiments, the protein of interest is dispersed in perfluorohexane in the presence of Compound 7. In some embodiments, the protein of interest can include, but is not limited to, human hemoglobin (Hb), green fluorescent protein (GFP), bovine serum albumin (BSA), β-Galactosidase (β-Gal), rabbit serum immunoglobulin (IgG), bovine apo-transferrin (TFN), or urease (URE). In some embodiments, the protein of interest has a molecular weight of at least 5 kDa, 10 kDa, 15 kDa, 20 kDa, 25 kDa, 30 kDa, 35 kDa, 40 kDa, 45 kDa, 50 kDa, 55 kDa, 60 kDa, 65 kDa, 70 kDa, 75 kDa, 80 kDa, 85 kDa, 90 kDa, or 100 kDa. In some Attorney Docket No.148411.002502 PATENT embodiments, the protein of interest has a molecular weight of about 27 kDa, 64.5 kDa, 66.5 kDa, 76 kDa, or 81 kDa. In some embodiments, the protein of interest has a molecular weight of at least 100 kDa, 110 kDa, 120 kDa, 130 kDa, 140 kDa, 150 kDa, 160 kDa, 170 kDa, 180 kDa, 190 kDa, or 200 kDa. In some embodiments, the protein of interest has a molecular weight of about 150 kDa. In some embodiments, the protein of interest has a molecular weight of at least 200 kDa, 250 kDa, 300 kDa, 350 kDa, 400 kDa, 450 kDa, 500 kDa, 550 kDa, or 600 kDa. In some embodiments, the protein of interest has a molecular weight of about 464 kDa, 483 kDa, or 520 kDa. In some embodiments, the protein of interest is dispersed in perfluorohexane in the presence of Compound 7, wherein the molar ratio of Compound 7 is about 100:1, 200:1, 300:1, 400:1, 500:1, 600:1, 700:1, 800:1, 900:1, 1000:1, 1250:1, 1500:1, 1750:1, 2000:1, 2500:1, 3000:1, 4000:1, or 5000:1 with the protein of interest. In some embodiments, the protein of interest is dispersed in perfluorohexane in the presence of Compound 7, wherein the molar ratio of Compound 7 is about 1000:1 with the protein of interest. In some embodiments, the protein of interest phase separates when dispersed in perfluorohexane in the presence of Compound 7, but does not phase separate when dispersed in perfluorohexane in the absence of Compound 7. In some embodiments, the protein of interest phase separates when dispersed in perfluorohexane in the presence of Compound 7, wherein the dispersion efficiency is about 30%, 35%, 40%, 45%, 50%, 55%, 60%, 65%, 70%, 75%, 80%, 85%, 90%, 95%, or 100%. In some embodiments, the dispersion efficiency is about 50%. In some embodiments, the dispersion efficiency is about 55%. In some embodiments, the dispersion efficiency is about 60%. In some embodiments, the dispersion efficiency is about 65%. In some embodiments, the dispersion efficiency is about 75%. In some embodiments, the dispersion efficiency is about 80%. In some embodiments, the dispersion efficiency is about 85%. In some embodiments, the protein of interest phase separates when dispersed in perfluorohexane in the presence of Compound 7, wherein the dispersion efficiency is at least about 30%, about 40%, about 50%, about 60%, about 70%, about 80%, or at least about 90%. In some embodiments, the dispersion efficiency is at least 90%, 91%, 92%, 93%, 94%, 95%, 96%, 97%, 98%, or 99%. In some embodiments, the dispersion efficiency of the protein of interest dissolved in PFH in the presence of PFNA is at least about 30%, 40%, 50%, 60%, 70%, 80%, or 90% when the protein of interest has a molecular weight of about 5 kDa to about 600 kDa. In some embodiments, the dispersion efficiency of the protein of interest is at least about 30%, 40%, 50%, 60%, 70%, 80%, or 90% when the protein of interest has a molecular weight of about 5 Attorney Docket No.148411.002502 PATENT kDa to about 100 kDa. In some embodiments, the dispersion efficiency of the protein of interest is at least about 50%, 60%, 70%, 80%, or 90% when the protein of interest has a molecular weight of about 5 kDa to about 50 kDa. In some embodiments, the dispersion efficiency of the protein of interest is at least about 90%, 95%, 96%, 97%, 98%, or 99% when the protein of interest has a molecular weight of about 5 kDa to about 40 kDa. In some embodiments, the dispersion efficiency of the protein of interest dissolved in PFH in the presence of PFNA is at least about 55%, 60%, 70%, 80%, or 90% when the protein of interest has a molecular weight of about 5 kDa to about 500 kDa. In some embodiments, the dispersion efficiency of the protein of interest dissolved in PFH in the presence of PFNA is between about 55% to about 100 when the protein of interest has a molecular weight of about 5 kDa to about 500 kDa. In some embodiments, the dispersion efficiency of the protein of interest dissolved in PFH in the presence of PFNA is at least about 30%, 40%, 50%, 60%, 70%, 80%, or 90% when the solvent accessible surface area (SASA) is between about 1 x104Å and about 15 x104Å. In some embodiments, the dispersion efficiency of the protein of interest dissolved in PFH in the presence of PFNA is at least about 50%, 60%, 70%, 80%, or 90% when the SASA is between about 1 x104Å and about 15 x104Å. In some embodiments, the dispersion efficiency of the protein of interest dissolved in PFH in the presence of PFNA is at least about 90%, 95%, 96%, 97%, 98%, or 99% when the SASA is between about 1 x104Å and about 15 x104Å. In some embodiments, the dispersion efficiency of the protein of interest dissolved in PFH in the presence of PFNA is at least about 90%, 95%, 96%, 97%, 98%, or 99% when the SASA is between about 1 x104Å and about 2.5 x104Å. In some embodiments, the dispersion efficiency of the protein of interest dissolved in PFH in the presence of PFNA is at least about 55%, 60%, 70%, 80%, or 90% when the SASA is between about 1 x104Å and about 15 x104Å. In some embodiments, the dispersion efficiency of the protein of interest dissolved in PFH in the presence of PFNA is between about 55% to about 100 when the SASA is between about 1 x104Å and about 15. In some embodiments, the dispersion efficiency of the protein of interest dissolved in PFH in the presence of PFNA is at least about 30%, 40%, 50%, 60%, 70%, 80%, or 90% when the hydrodynamic radii of the protein of interest is between about 2 and to 8 nm. In some embodiments, the dispersion efficiency of the protein of interest dissolved in PFH in the presence of PFNA is at least about 50%, 60%, 70%, 80%, or 90% when the hydrodynamic radii of the protein of interest is between about 2 to about 4 nm. In some embodiments, the dispersion efficiency of the protein of interest dissolved in PFH in the Attorney Docket No.148411.002502 PATENT presence of PFNA is at least about 70%, 80%, or 90% when the hydrodynamic radii of the protein of interest is between about 2 to about 3 nm. In some embodiments, the dispersion efficiency of the protein of interest dissolved in PFH in the presence of PFNA is at least about 50%, 60%, 70%, 80%, or 90% when the hydrodynamic radii of the protein of interest is between about 6 to about 8 nm. In some embodiments, the dispersion efficiency of the protein of interest dissolved in PFH in the presence of PFNA is at least about 70%, 80%, or 90% when the hydrodynamic radii of the protein of interest is between about 7 to about 8 nm. In some embodiments, the dispersion efficiency of the protein of interest dissolved in PFH in the presence of PFNA is between about 30% to about 100% when the hydrodynamic radii of the protein of interest is between about 2 and to 8 nm. In some embodiments, the dispersion efficiency of the protein of interest dissolved in PFH in the presence of PFNA is between about 50% to about 100% when the hydrodynamic radii of the protein of interest is between about 2 to about 4 nm. In some embodiments, the dispersion efficiency of the protein of interest dissolved in PFH in the presence of PFNA is between about 70% to about 100% when the hydrodynamic radii of the protein of interest is between about 2 to about 3 nm. In some embodiments, the dispersion efficiency of the protein of interest dissolved in PFH in the presence of PFNA is between about 50% to about 100% when the hydrodynamic radii of the protein of interest is between about 6 to about 8 nm. In some embodiments, the dispersion efficiency of the protein of interest dissolved in PFH in the presence of PFNA is between about 70% to about 100% when the hydrodynamic radii of the protein of interest is between about 7 to about 8 nm. In some embodiments, the dispersion efficiency of the protein of interest dissolved in PFH in the presence of PFNA is at least 90, 91, 92%, 93%, 94%, 95%, 96%, 97%, 98%, or 99% when the hydrodynamic radii of the protein of interest is between about 2.5 to about 2.9 nm. In some embodiments, the dispersion efficiency of the protein of interest dissolved in PFH in the presence of PFNA is between about 90% to about 100% when the hydrodynamic radii of the protein of interest is between about 2.5 to about 2.9 nm. In some embodiments, the dispersion efficiency of the protein of interest dissolved in PFH in the presence of PFNA is about 95% when the hydrodynamic radii of the protein of interest is between about 2.5 to about 2.9 nm. In some embodiments, the dispersion efficiency of the protein of interest dissolved in PFH in the presence of PFNA is about 100% when the hydrodynamic radii of the protein of interest is between about 2.5 to about 2.9 nm. In some embodiments, the dispersion efficiency of the protein of interest dissolved in PFH in the presence of PFNA is at least 90, 91, 92%, 93%, 94%, 95%, 96%, 97%, 98%, or 99% when the hydrodynamic radii of the protein of interest is between about 6.5 to about 7.5 nm. In Attorney Docket No.148411.002502 PATENT some embodiments, the dispersion efficiency of the protein of interest dissolved in PFH in the presence of PFNA is between about 90% to about 100% when the hydrodynamic radii of the protein of interest is between about 6.5 to about 7.5 nm. In some embodiments, the dispersion efficiency of the protein of interest dissolved in PFH in the presence of PFNA is about 95% when the hydrodynamic radii of the protein of interest is between about 6.5 to about 7.5 nm. In some embodiments, the dispersion efficiency of the protein of interest dissolved in PFH in the presence of PFNA is about 100% when the hydrodynamic radii of the protein of interest is between about 6.5 to about 7.5 nm. In some embodiments, the dispersion efficiency of the protein of interest dissolved in PFH in the presence of PFNA is at least about 55%, 60%, 70%, 80%, or 90% when the hydrodynamic radii of the protein of interest is between about 2 to about 8 nm. In some embodiments, the dispersion efficiency of the protein of interest dissolved in PFH in the presence of PFNA is between about 55% to about 100 when the hydrodynamic radii of the protein of interest is between about 2 to about 8 nm. In some embodiments, the dispersion efficiency of the protein of interest dissolved in PFH in the presence of PFNA is at least about 30%, 40%, 50%, 60%, 70%, 80%, or 90% when the isoelectric point (pI) of the protein of interest is between about 4 to about 8. In some embodiments, the dispersion efficiency of the protein of interest dissolved in PFH in the presence of PFNA is at least about 50%, 60%, 70%, 80%, or 90% when the pI of the protein of interest is between about 4.5 to about 7.5. In some embodiments, the dispersion efficiency of the protein of interest dissolved in PFH in the presence of PFNA is at least about 90% when the pI of the protein of interest is between about 4.5 to about 5.5. In some embodiments, the dispersion efficiency of the protein of interest dissolved in PFH in the presence of PFNA is at least about 60%, 70%, 80%, or 90% when the pI of the protein of interest is between about 6.5 to about 7.5. In some embodiments, the dispersion efficiency of the protein of interest dissolved in PFH in the presence of PFNA is between about 30% to about 100% when the pI of the protein of interest is between about 4 to about 8. In some embodiments, the dispersion efficiency of the protein of interest dissolved in PFH in the presence of PFNA is at least about between about 50% to about 100% when the pI of the protein of interest is between about 4.5 to about 7.5. In some embodiments, the dispersion efficiency of the protein of interest dissolved in PFH in the presence of PFNA is between about 90% to about 100% when the pI of the protein of interest is between about 4.5 to about 5.5. In some embodiments, the dispersion efficiency of the protein of interest dissolved in PFH in the presence of PFNA is between about 60% to about 100% when the pI of the protein of interest is between about 6.5 to about 7.5. In some embodiments, the dispersion Attorney Docket No.148411.002502 PATENT efficiency of the protein of interest dissolved in PFH in the presence of PFNA is at least about 90%, 91%, 92%, 93%, 94%, 95%, 96%, 97%, 98%, 99%, or about 100% when the pI of the protein of interest is between about 4.5 to about 5.5. In some embodiments, the dispersion efficiency of the protein of interest dissolved in PFH in the presence of PFNA is at least about 90% when the pI of the protein of interest is between about 4.5 to about 5.5. In some embodiments, the dispersion efficiency of the protein of interest dissolved in PFH in the presence of PFNA is at least about 95% when the pI of the protein of interest is between about 4.5 to about 5.5. In some embodiments, the dispersion efficiency of the protein of interest dissolved in PFH in the presence of PFNA is at least about 100% when the pI of the protein of interest is between about 4.5 to about 5.5. In some embodiments, the dispersion efficiency of the protein of interest dissolved in PFH in the presence of PFNA is at least about 30%, 40%, 50%, 60%, 70%, 80%, or 90% when the pI of the protein of interest is between about 4 to about 8. In some embodiments, the dispersion efficiency of the protein of interest dissolved in PFH in the presence of PFNA is at least about 55%, 60%, 70%, 80%, or 90% when the pI of the protein of interest is between about 4 to about 8. In some embodiments, the dispersion efficiency of the protein of interest dissolved in PFH in the presence of PFNA is between about 55% to about 100% when the pI of the protein of interest is between about 4 to about 8. In some embodiments, the dispersion efficiency of the protein of interest dissolved in PFH in the presence of PFNA is at least about 30%, 40%, 50%, 60%, 70%, 80%, or 90% when the α helicity content of the protein of interest is between 0% and about 35%. In some embodiments, the dispersion efficiency of the protein of interest dissolved in PFH in the presence of PFNA is at least about 55%, 60%, 70%, 80%, or 90% when the α helicity content of the protein of interest is between 0% and about 35%. In some embodiments, the dispersion efficiency of the protein of interest dissolved in PFH in the presence of PFNA is between about 55% to about 100% when the α helicity content of the protein of interest is between 0 and about 35%. In some embodiments, the dispersion efficiency of the protein of interest dissolved in PFH in the presence of PFNA is at least about 55%, 60%, 70%, 80%, or 90% when the α helicity content of the protein of interest is between 0% and about 10%. In some embodiments, the dispersion efficiency of the protein of interest dissolved in PFH in the presence of PFNA is between about 55% to about 100% when the α helicity content of the protein of interest is between 0% and about 10%. In some embodiments, the dispersion efficiency of the protein of interest dissolved in PFH in the presence of PFNA is at least about 30%, 40%, 50%, 60%, 70%, 80%, or 90% Attorney Docket No.148411.002502 PATENT when the β sheet content of the protein of interest is between 0% and about 60%. In some embodiments, the dispersion efficiency of the protein of interest dissolved in PFH in the presence of PFNA is at least about 55%, 60%, 70%, 80%, or 90% when the β sheet content of the protein of interest is between about 10% and about 45%. In some embodiments, the dispersion efficiency of the protein of interest dissolved in PFH in the presence of PFNA is between about 55% to about 100% when the β sheet content of the protein of interest is between about 10% and about 45%. In some embodiments, the dispersion efficiency of the protein of interest dissolved in PFH in the presence of PFNA is at least about 55%, 60%, 70%, 80%, or 90% when the β sheet content of the protein of interest is between about 10% and about 45%. In some embodiments, the dispersion efficiency of the protein of interest dissolved in PFH in the presence of PFNA is between about 55% to about 100% when the β sheet content of the protein of interest is between about 10% and about 45%. In some embodiments, the dispersion efficiency of the protein of interest dissolved in PFH in the presence of PFNA is at least about 80%, or 90% when the β sheet content of the protein of interest is between about 35% and about 45%. In some embodiments, the dispersion efficiency of the protein of interest dissolved in PFH in the presence of PFNA is between about 80% to about 100% when the β sheet content of the protein of interest is between about 35% and about 45%. In some embodiments, the dispersion efficiency of the protein of interest dissolved in PFH in the presence of PFNA is at least about 85%, 90%, or 95% when the β sheet content of the protein of interest is between about 35% and about 45%. In some embodiments, the dispersion efficiency of the protein of interest dissolved in PFH in the presence of PFNA is between about 85% to about 100% when the β sheet content of the protein of interest is between about 35% and about 45%. In some embodiments, the dispersion efficiency of the protein of interest dissolved in PFH in the presence of PFNA is about 90% when the β sheet content of the protein of interest is between about 35% and about 45%. In some embodiments, the dispersion efficiency of the protein of interest dissolved in PFH in the presence of PFNA is about 95% when the β sheet content of the protein of interest is between about 35% and about 45%. In some embodiments, the dispersion efficiency of the protein of interest dissolved in PFH in the presence of PFNA is about 100% when the β sheet content of the protein of interest is between about 35% and about 45%. In some embodiments, the dispersion efficiency of the protein of interest dissolved in PFH in the presence of PFNA is between about 40% to about 100% when the protein of interest contains between about 0% to about 30% polar residues. In some embodiments, the dispersion efficiency of the protein of interest dissolved in PFH in the presence of PFNA is Attorney Docket No.148411.002502 PATENT between about 40% to about 100% when the protein of interest contains between about 0% to about 15% polar residues. In some embodiments, the dispersion efficiency of the protein of interest dissolved in PFH in the presence of PFNA is between about 40% to about 100% when the protein of interest contains about 0.5%, 1%, 2%, 3%, 4%, 5%, 6%, 7%, 8%, 9%, 10%, 11%, 12%, 13%, 14%, or 15% polar residues. In some embodiments, the dispersion efficiency of the protein of interest dissolved in PFH in the presence of PFNA is between about 40% to about 100% when the protein of interest contains between about 0% to about 15% polar residues, wherein the polar residues comprise lysine, arginine, histidine, aspartate, or glutamate, or any combination thereof. In some embodiments, the dispersion efficiency of the protein of interest dissolved in PFH in the presence of PFNA is between about 40% to about 100% when the protein of interest contains between about 0% to about 15% polar charged residues, wherein the polar charged residues comprise lysine, arginine, histidine, aspartate, or glutamate, or any combination thereof. In some embodiments, the dispersion efficiency of the protein of interest dissolved in PFH in the presence of PFNA is between about 40% to about 100% when the protein of interest contains between about 0% to about 15% polar residues, wherein the polar residues comprise serine, threonine, cysteine, asparagine, or glutamine, or any combination thereof. In some embodiments, the dispersion efficiency of the protein of interest dissolved in PFH in the presence of PFNA is between about 40% to about 100% when the protein of interest contains between about 0% to about 15% polar uncharged residues, wherein the polar uncharged residues comprise lysine, arginine, histidine, asparagine, or glutamine, or any combination thereof. In some embodiments, the dispersion efficiency of the protein of interest dissolved in PFH in the presence of PFNA is between about 40% to about 100% when the protein of interest contains between about 0% to about 15% polar residues, wherein the polar residues comprise lysine, arginine, histidine, aspartate, glutamate, lysine, arginine, histidine, asparagine, or glutamine, or any combination thereof. In some embodiments, the dispersion efficiency of the protein of interest dissolved in PFH in the presence of PFNA is between about 40% to about 100% when the protein of interest contains between about 0% to about 15% lysine residues. In some embodiments, the dispersion efficiency of the protein of interest dissolved in PFH in the presence of PFNA is between about 40% to about 100% when the protein of interest contains between about 0% to about 15% arginine residues. In some embodiments, the dispersion efficiency of the protein of interest dissolved in PFH in the presence of PFNA is between about 40% to about 100% when the protein of interest contains between about 0% to about 15% histidine residues. In Attorney Docket No.148411.002502 PATENT some embodiments, the dispersion efficiency of the protein of interest dissolved in PFH in the presence of PFNA is between about 40% to about 100% when the protein of interest contains between about 0% to about 15% aspartate residues. In some embodiments, the dispersion efficiency of the protein of interest dissolved in PFH in the presence of PFNA is between about 40% to about 100% when the protein of interest contains between about 0% to about 15% glutamate residues. In some embodiments, the dispersion efficiency of the protein of interest dissolved in PFH in the presence of PFNA is between about 40% to about 100% when the protein of interest contains between about 0% to about 15% serine residues. In some embodiments, the dispersion efficiency of the protein of interest dissolved in PFH in the presence of PFNA is between about 40% to about 100% when the protein of interest contains between about 0% to about 15% threonine residues. In some embodiments, the dispersion efficiency of the protein of interest dissolved in PFH in the presence of PFNA is between about 40% to about 100% when the protein of interest contains between about 0% to about 15% cystine residues. In some embodiments, the dispersion efficiency of the protein of interest dissolved in PFH in the presence of PFNA is between about 40% to about 100% when the protein of interest contains between about 0% to about 15% asparagine residues. In some embodiments, the dispersion efficiency of the protein of interest dissolved in PFH in the presence of PFNA is between about 40% to about 100% when the protein of interest contains between about 0% to about 15% glutamine residues. In some embodiments, the dispersion efficiency of the protein of interest dissolved in PFH in the presence of PFNA is between about 40% to about 100% when the protein of interest contains between about 1% to about 12% lysine residues. In some embodiments, the dispersion efficiency of the protein of interest dissolved in PFH in the presence of PFNA is between about 40% to about 100% when the protein of interest contains between about 1% to about 8% arginine residues. In some embodiments, the dispersion efficiency of the protein of interest dissolved in PFH in the presence of PFNA is between about 40% to about 100% when the protein of interest contains between about 1% to about 8% histidine residues. In some embodiments, the dispersion efficiency of the protein of interest dissolved in PFH in the presence of PFNA is between about 40% to about 100% when the protein of interest contains between about 3% to about 8% aspartate residues. In some embodiments, the dispersion efficiency of the protein of interest dissolved in PFH in the presence of PFNA is between about 40% to about 100% when the protein of interest contains between about 3% to about 11% glutamate residues. In some embodiments, the dispersion efficiency of the protein of interest dissolved in PFH in the presence of PFNA is between about 40% to about 100% Attorney Docket No.148411.002502 PATENT when the protein of interest contains between about 3% to about 15% serine residues. In some embodiments, the dispersion efficiency of the protein of interest dissolved in PFH in the presence of PFNA is between about 40% to about 100% when the protein of interest contains between about 4% to about 10% threonine residues. In some embodiments, the dispersion efficiency of the protein of interest dissolved in PFH in the presence of PFNA is between about 40% to about 100% when the protein of interest contains between about 0.5% to about 7% cysteine residues. In some embodiments, the dispersion efficiency of the protein of interest dissolved in PFH in the presence of PFNA is between about 40% to about 100% when the protein of interest contains between about 2% to about 7% asparagine residues. In some embodiments, the dispersion efficiency of the protein of interest dissolved in PFH in the presence of PFNA is between about 40% to about 100% when the protein of interest contains between about 1% to about 6% glutamine residues. In some embodiments, the dispersion efficiency of the protein of interest dissolved in PFH in the presence of PFNA is between about 40% to about 100% when the protein of interest contains between about 0% to about 45% nonpolar residues. In some embodiments, the dispersion efficiency of the protein of interest dissolved in PFH in the presence of PFNA is between about 40% to about 100% when the protein of interest contains between about 0% to about 30% nonpolar residues. In some embodiments, the dispersion efficiency of the protein of interest dissolved in PFH in the presence of PFNA is between about 40% to about 100% when the protein of interest contains between about 0% to about 15% nonpolar residues. In some embodiments, the dispersion efficiency of the protein of interest dissolved in PFH in the presence of PFNA is between about 40% to about 100% when the protein of interest contains about 0.5%, 1%, 2%, 3%, 4%, 5%, 6%, 7%, 8%, 9%, 10%, 11%, 12%, 13%, 14%, or 15% nonpolar residues. In some embodiments, the dispersion efficiency of the protein of interest dissolved in PFH in the presence of PFNA is between about 40% to about 100% when the protein of interest contains between about 0% to about 15% nonpolar residues, wherein the nonpolar residues comprise glycine, alanine, valine, leucine, isoleucine, methionine, phenylalanine, tyrosine, tryptophan, or proline, or any combination thereof. In some embodiments, the dispersion efficiency of the protein of interest dissolved in PFH in the presence of PFNA is between about 40% to about 100% when the protein of interest contains between about 0% to about 15% glycine residues. In some embodiments, the dispersion efficiency of the protein of interest dissolved in PFH in the presence of PFNA is between about 40% to about 100% when the protein of interest contains between about 0% to about 15% alanine residues. In some embodiments, the dispersion efficiency of the protein of Attorney Docket No.148411.002502 PATENT interest dissolved in PFH in the presence of PFNA is between about 40% to about 100% when the protein of interest contains between about 0% to about 15% valine residues. In some embodiments, the dispersion efficiency of the protein of interest dissolved in PFH in the presence of PFNA is between about 40% to about 100% when the protein of interest contains between about 0% to about 15% leucine residues. In some embodiments, the dispersion efficiency of the protein of interest dissolved in PFH in the presence of PFNA is between about 40% to about 100% when the protein of interest contains between about 0% to about 15% isoleucine residues. In some embodiments, the dispersion efficiency of the protein of interest dissolved in PFH in the presence of PFNA is between about 40% to about 100% when the protein of interest contains between about 0% to about 15% methionine residues. In some embodiments, the dispersion efficiency of the protein of interest dissolved in PFH in the presence of PFNA is between about 40% to about 100% when the protein of interest contains between about 0% to about 15% phenylalanine residues. In some embodiments, the dispersion efficiency of the protein of interest dissolved in PFH in the presence of PFNA is between about 40% to about 100% when the protein of interest contains between about 0% to about 15% tyrosine residues. In some embodiments, the dispersion efficiency of the protein of interest dissolved in PFH in the presence of PFNA is between about 40% to about 100% when the protein of interest contains between about 0% to about 15% tryptophan residues. In some embodiments, the dispersion efficiency of the protein of interest dissolved in PFH in the presence of PFNA is between about 40% to about 100% when the protein of interest contains between about 0% to about 15% proline residues. In some embodiments, the dispersion efficiency of the protein of interest dissolved in PFH in the presence of PFNA is between about 40% to about 100% when the protein of interest contains between about 2% to about 10% glycine residues. In some embodiments, the dispersion efficiency of the protein of interest dissolved in PFH in the presence of PFNA is between about 40% to about 100% when the protein of interest contains between about 2% to about 15% alanine residues. In some embodiments, the dispersion efficiency of the protein of interest dissolved in PFH in the presence of PFNA is between about 40% to about 100% when the protein of interest contains between about 4% to about 12% valine residues. In some embodiments, the dispersion efficiency of the protein of interest dissolved in PFH in the presence of PFNA is between about 40% to about 100% when the protein of interest contains between about 4% to about 14% leucine residues. In some embodiments, the dispersion efficiency of the protein of interest dissolved in PFH in the presence of PFNA is between about 40% to about 100% when the protein of interest contains between about 0% to Attorney Docket No.148411.002502 PATENT about 6% isoleucine residues. In some embodiments, the dispersion efficiency of the protein of interest dissolved in PFH in the presence of PFNA is between about 40% to about 100% when the protein of interest contains between about 0.25% to about 3% methionine residues. In some embodiments, the dispersion efficiency of the protein of interest dissolved in PFH in the presence of PFNA is between about 40% to about 100% when the protein of interest contains between about 1.5% to about 6% phenylalanine residues. In some embodiments, the dispersion efficiency of the protein of interest dissolved in PFH in the presence of PFNA is between about 40% to about 100% when the protein of interest contains between about 1% to about 5% tyrosine residues. In some embodiments, the dispersion efficiency of the protein of interest dissolved in PFH in the presence of PFNA is between about 40% to about 100% when the protein of interest contains between about 0% to about 5% tryptophan residues. In some embodiments, the dispersion efficiency of the protein of interest dissolved in PFH in the presence of PFNA is between about 40% to about 100% when the protein of interest contains between about 3% to about 8% proline residues. In some embodiments, the protein of interest dissolved in PFH in the presence of PFNA, wherein the dispersant compound PFNA interacts with the protein of interest via hydrogen bonding with solvent shell H2O molecules interacting with the protein of interest. In some embodiments, the protein of interest is dissolved in PFH in the presence of PFNA, wherein the dispersant compound PFNA interacts with the protein of interest via hydrogen bonding with nitrogen donors present in the protein backbone of the protein of interest. In some embodiments, the protein of interest is dissolved in PFH in the presence of PFNA, wherein the dispersant compound PFNA interacts with the protein of interest via hydrogen bonding with nitrogen donors present in the protein backbone of the protein of interest, wherein the amino acid comprises arginine, histidine, lysine, aspartate, glutamate, asparagine, glutamine, serine, threonine, cysteine, glycine, proline, alanine, valine, isoleucine, leucine, methionine, phenylalanine, tyrosine, or tryptophan. In some embodiments, the protein of interest is dissolved in PFH in the presence of PFNA, wherein the dispersant compound PFNA interacts with the protein of interest via hydrogen bonding with nitrogen donors present in the protein backbone of the protein of interest, wherein the amino acid comprises serine, threonine, cysteine, methionine, tyrosine, tryptophan, aspartate, glutamate, asparagine, glutamine, histidine, leucine, or arginine. In some embodiments, the protein of interest is dissolved in PFH in the presence of PFNA, wherein the dispersant compound PFNA interacts with the protein of interest via hydrogen bonding with oxygen donors present in the protein backbone of the protein of Attorney Docket No.148411.002502 PATENT interest, wherein the amino acid comprises arginine, histidine, lysine, aspartate, glutamate, asparagine, glutamine, serine, threonine, cysteine, glycine, proline, alanine, valine, isoleucine, leucine, methionine, phenylalanine, tyrosine, or tryptophan. In some embodiments, the protein of interest is dissolved in PFH in the presence of PFNA, wherein the dispersant compound PFNA interacts with the protein of interest via hydrogen bonding with oxygen donors present in the protein backbone of the protein of interest, wherein the amino acid comprises serine, threonine, cysteine, methionine, tyrosine, tryptophan, aspartate, glutamate, asparagine, glutamine, histidine, leucine, or arginine. In some embodiments, the protein of interest is dissolved in PFH in the presence of PFNA, wherein the dispersant compound PFNA interacts with the protein of interest via hydrogen bonding with nitrogen donors present in the amino acid side chains of the protein of interest wherein the amino acid comprises tryptophan, asparagine, glutamine, histidine, or arginine. In some embodiments, the protein of interest is dissolved in PFH in the presence of PFNA, wherein the dispersant compound PFNA interacts with the protein of interest via hydrogen bonding with nitrogen donors present in the protein backbone and amino acid side chains of the protein of interest, wherein the amino acid comprises tryptophan, asparagine, glutamine, histidine, or arginine. In some embodiments, the protein of interest is dissolved in PFH in the presence of PFNA, wherein the dispersant compound PFNA interacts with the protein of interest via hydrogen bonding with oxygen donors present in the amino acid side chains of the protein of interest, wherein the amino acid comprises serine, threonine, tyrosine, aspartate, glutamate, asparagine, or glutamine. In some embodiments, the protein of interest is dissolved in PFH in the presence of PFNA, wherein the dispersant compound PFNA interacts with the protein of interest via hydrogen bonding with oxygen donors present in the protein backbone and amino acid side chains of the protein of interest, wherein the amino acid comprises serine, threonine, tyrosine, aspartate, glutamate, asparagine, or glutamine. In some embodiments, the protein of interest is dissolved in PFH in the presence of PFNA, wherein the dispersant compound PFNA interacts with the protein of interest via hydrogen bonding with sulfur donors present in the amino acid side chains of the protein of interest, wherein the amino acid comprises cysteine or methionine. In some embodiments, the protein of interest dissolved in PFH in the presence of PFNA, wherein the carboxylic acid group of the dispersant compound PFNA interacts with the protein of interest via hydrogen bonding to the H2O molecules interacting with the protein of interest. In some embodiments, the protein of interest dissolved in PFH in the presence of Attorney Docket No.148411.002502 PATENT PFNA, wherein the carboxylic acid group of the dispersant compound PFNA interacts with the protein of interest via hydrogen bonding to the nitrogen donors present in the protein backbone of the protein of interest. In some embodiments, the protein of interest dissolved in PFH in the presence of PFNA, wherein the carboxylic acid group of the dispersant compound PFNA interacts with the protein of interest via hydrogen bonding to the oxygen donors present in the amino acid side chains of the protein of interest. In some embodiments, the amino acid is serine, threonine, tyrosine, aspartate, or glutamate. In some embodiments, the protein of interest dissolved in PFH in the presence of PFNA, wherein the carboxylic acid group of the dispersant compound PFNA interacts with the protein of interest via hydrogen bonding to the nitrogen donors present in the amino acid side chains of the protein of interest. In some embodiments, the amino acid is histidine. In some embodiments, the protein of interest dissolved in PFH in the presence of PFNA, wherein the carboxylic acid group of the dispersant compound PFNA interacts with the protein of interest via hydrogen bonding to the sulfur donors present in the amino acid side chains of the protein of interest. In some embodiments, the protein of interest dissolved in PFH in the presence of PFNA, wherein one or more fluorine group of the dispersant compound PFNA interacts with the protein of interest via hydrogen bonding to the H2O molecules interacting with the protein of interest. In some embodiments, the protein of interest dissolved in PFH in the presence of PFNA, wherein one or more fluorine group of the dispersant compound PFNA interacts with the protein of interest via hydrogen bonding to the nitrogen donors present in the protein backbone of the protein of interest. In some embodiments, the protein of interest dissolved in PFH in the presence of PFNA, wherein one or more fluorine group of the dispersant compound PFNA interacts with the protein of interest via hydrogen bonding to the oxygen donors present in the amino acid side chains of the protein of interest. In some embodiments, the amino acid is serine, threonine, tyrosine, asparagine, or glutamine. In some embodiments, the amino acid is serine, threonine, or tyrosine. In some embodiments, the protein of interest dissolved in PFH in the presence of PFNA, wherein one or more fluorine group of the dispersant compound PFNA interacts with the protein of interest via hydrogen bonding to the nitrogen donors present in the amino acid side chains of the protein of interest. In some embodiments, the amino acid is histidine or arginine. In some embodiments, the protein of interest dissolved in PFH in the presence of PFNA, wherein one or more fluorine group of the dispersant compound PFNA interacts with the protein of interest via hydrogen bonding to the sulfur donors present in the amino acid side chains of the protein of interest. Attorney Docket No.148411.002502 PATENT In some embodiments, the protein of interest is dissolved in PFH in the presence of PFNA, wherein the dispersant compound PFNA makes hydrophobic contacts with protein solvent accessible amino acids. In some embodiments, the protein of interest is dissolved in PFH in the presence of PFNA, wherein the dispersant compound PFNA makes hydrophobic contacts with protein solvent accessible amino acids, wherein the solvent accessible amino acid is G, A, S, T, C, V, L, I, M, P, F, Y, W, D, E, N, Q, H, L, or R. In some embodiments, the solvent accessible amino acid is G, A, S, T, V, L, I, P, F, Y, W, D, E, N, Q, H, L, or R. In some embodiments, the solvent accessible amino acid is S, T, Y, D, H, L, or R. In some embodiments, the protein of interest is dissolved in PFH in the presence of PFNA, wherein the Gibbs free energy between the PFNA and the protein of interest is between about -20 to about -50 kcal / mol. In some embodiments, the protein of interest is dissolved in PFH in the presence of PFNA, wherein the Gibbs free energy between the PFNA and the docked rotamers from the protein of interest is between about -20 to about -50 kcal / mol. In some embodiments, the structure of the protein of interest changes when dissolved in PFH in the presence of PFNA. In some embodiments, the protein of interest comprises a non-native secondary structure. In some embodiments, the change in molar ellipticity of the protein of interest is between about 2 deg cm-2dmol-1to about -6 deg cm-2dmol-1. In some embodiments, the change in molar ellipticity of the protein of interest is between about 1 deg cm-2dmol-1to about -1 deg cm-2dmol-1. In some embodiments, the molar ellipticity of the protein of interest decreases by about -1 deg cm-2dmol-1to about -6 deg cm-2dmol-1. In some embodiments, the molar ellipticity of the protein of interest increases by about 1 deg cm-2dmol-1to about 2 deg cm-2dmol-1. In some embodiments, the change in β-sheet content is between about -20% to about 20%. In some embodiments, the change in parallel β-sheet content is between about -20% to about 20%. In some embodiments, the change in antiparallel β-sheet content is between about -20% to about 20%. In some embodiments, the change in α-helix content is between about -20% to about 20%. In some embodiments, the change in turns content is between about -20% to about 20%. In some embodiments, the change in β-sheet content is between about -8% to about 8%. In some embodiments, the change in parallel β-sheet content is between about -8% to about 8%. In some embodiments, the change in antiparallel β-sheet content is between about -8% to about 3%. In some embodiments, the change in α-helix content is between about -1% to about 5%. In some embodiments, the change in turn content is between about -6% to about 1%. Attorney Docket No.148411.002502 PATENT In some embodiments, the protein of interest is dissolved in PFH in the presence of PFNA, wherein the binding of the protein to the PFNA is 1:1. In some embodiments, , the protein of interest is dissolved in PFH in the presence of PFNA, wherein the binding of the protein to the PFNA is not 1:1. In some embodiments, the protein of interest is dissolved in PFH in the presence of PFNA, wherein the thermal stability of the protein is increased compared to the thermal stability of the protein of interest dissolved in an aqueous solvent. In some embodiments, the protein of interest is dissolved in PFH in the presence of PFNA, wherein the melting temperature of the protein is increased by about 10 °C, 20 °C, 30 °C, or 40 °C compared to the melting temperature of the protein of interest in an aqueous solvent. In some embodiments, the protein of interest is active in an aqueous solvent at 25 °C, but is not active in an aqueous solvent at 75 °C, 80 °C, 85 °C, or 90 °C. In some embodiments, the protein of interest is active in an aqueous solvent at 25 °C, but the activity is reduced when the protein of interest is dissolved in an aqueous solvent at 75 °C, 80 °C, 85 °C, or 90 °C. In some embodiments, the activity is reduced by about 80% or by about 90%. In some embodiments, the protein of interest is dissolved in PFH in the presence of PFNA, wherein the protein of interest is active at 25 °C and is also active at 75 °C, 80 °C, 85 °C, or 90 °C. In some embodiments, the protein of interest is dissolved in PFH in the presence of PFNA, wherein the activity is reduced by about 1% to about 25% when the temperature is about 75 °C, 80 °C, 85 °C, or 90 °C, compared to when the temperature is about 25 °C. In some embodiments, the protein of interest is dissolved in PFH in the presence of PFNA, wherein the activity is reduced by about 1% to about 10% when the temperature is about 75 °C, 80 °C, 85 °C, or 90 °C, compared to when the temperature is about 25 °C. In some embodiments, the protein of interest is dissolved in PFH in the presence of PFNA, wherein the activity is increased by about 1% to about 25% when the temperature is about 75 °C, 80 °C, 85 °C, or 90 °C, compared to when the temperature is about 25 °C. In some embodiments, the protein of interest is dissolved in PFH in the presence of PFNA, wherein the activity is increased by about 1% to about 10% when the temperature is about 75 °C, 80 °C, 85 °C, or 90 °C, compared to when the temperature is about 25 °C. In some embodiments, the protein of interest is dissolved in PFH in the presence of PFNA, wherein the protein comprises a reduced risk of contamination compared to when the protein is dissolved in an aqueous solvent. In some embodiments, the protein of interest is dissolved in PFH in the presence of PFNA, wherein the protein comprises a reduced risk of bacterial or viral contamination compared to when the protein is dissolved in PBS. In some Attorney Docket No.148411.002502 PATENT embodiments, the protein of interest is dissolved in PFH in the presence of PFNA, wherein the protein comprises a reduced risk of E. coli contamination compared to when the protein is dissolved in PBS. In some embodiments, the dispersant compound comprises Compound 8. In some embodiments, Compound 8 comprises perfluorodecanoic acid (PFDA). In some embodiments, Compound 8 comprises the formula C10HF19O2. In some embodiments, the dispersant compound comprises Formula II ((CF2)XCF3COOH), wherein x is 8 ((CF2)8CF3COOH), and the compound is Compound 8 comprising perfluorodecanoic acid. In some embodiments, perfluorodecanoic acid is 2,2,3,3,4,4,5,5,6,6,7,7,8,8,9,9,10,10,10- nonadecafluorodecanoic acid. In some embodiments, the molecular weight of Compound 8 is about 514 g / mol, or about the molecular weight of PFDA. In some embodiments, Compound 8 comprises Formula II ((CF2)XCF3COOH), wherein x is 8 ((CF2)8CF3COOH), and the compound is Compound 8 comprising perfluorodecanoic acid. In some embodiments, Compound 8 is Compound 8. In some embodiments, the fluorinated solvent is chosen from the group that includes perfluoropentane, perfluorohexane, perfluoroheptane, perfluorooctane, perfluoromethylcyclohexane, perfluoro-1-3-dimethylcyclohexane, or perfluorodecalin, and the perfluorinated dispersant compound comprises Compound 8. In some embodiments, the fluorinated solvent is perfluorohexane and the perfluorinated dispersant compound comprises Compound 8. In some embodiments, the fluorinated solvent is perfluorooctane and the perfluorinated dispersant compound comprises Compound 8. In some embodiments, the fluorinated solvent is perfluoropentane and the perfluorinated dispersant compound comprises Compound 8. In some embodiments, the fluorinated solvent is perfluoroheptane and the perfluorinated dispersant compound comprises Compound 8. In some embodiments, the fluorinated solvent is perfluoromethylcyclohexane and the perfluorinated dispersant compound comprises Compound 8. In some embodiments, the fluorinated solvent is perfluoro-1-3-dimethylcyclohexane and the perfluorinated dispersant compound comprises Compound 8. In some embodiments, the fluorinated solvent is perfluorodecalin and the perfluorinated dispersant compound comprises Compound 8. In some embodiments, the protein of interest is dispersed in perfluorohexane in the presence of Compound 8. In some embodiments, the protein of interest can include, but is not limited to, human hemoglobin (Hb), green fluorescent protein (GFP), bovine serum albumin (BSA), β-Galactosidase (β-Gal), rabbit serum immunoglobulin (IgG), bovine apo-transferrin (TFN), or urease (URE). In some embodiments, the protein of interest has a molecular weight of at least 5 kDa, 10 kDa, 15 kDa, 20 kDa, 25 kDa, 30 kDa, 35 kDa, 40 kDa, 45 kDa, 50 kDa, Attorney Docket No.148411.002502 PATENT 55 kDa, 60 kDa, 65 kDa, 70 kDa, 75 kDa, 80 kDa, 85 kDa, 90 kDa, or 100 kDa. In some embodiments, the protein of interest has a molecular weight of about 27 kDa, 64.5 kDa, 66.5 kDa, 76 kDa, or 81 kDa. In some embodiments, the protein of interest has a molecular weight of at least 100 kDa, 110 kDa, 120 kDa, 130 kDa, 140 kDa, 150 kDa, 160 kDa, 170 kDa, 180 kDa, 190 kDa, or 200 kDa. In some embodiments, the protein of interest has a molecular weight of about 150 kDa. In some embodiments, the protein of interest has a molecular weight of at least 200 kDa, 250 kDa, 300 kDa, 350 kDa, 400 kDa, 450 kDa, 500 kDa, 550 kDa, or 600 kDa. In some embodiments, the protein of interest has a molecular weight of about 464 kDa, 483 kDa, or 520 kDa. In some embodiments, the protein of interest is dispersed in perfluorohexane in the presence of Compound 8, wherein the molar ratio of Compound 8 is about 100:1, 200:1, 300:1, 400:1, 500:1, 600:1, 700:1, 800:1, 900:1, 1000:1, 1250:1, 1500:1, 1750:1, 2000:1, 2500:1, 3000:1, 4000:1, or 5000:1 with the protein of interest. In some embodiments, the protein of interest is dispersed in perfluorohexane in the presence of Compound 8, wherein the molar ratio of Compound 8 is about 1000:1 with the protein of interest. In some embodiments, the protein of interest phase separates when dispersed in perfluorohexane in the presence of Compound 8, but does not phase separate when dispersed in perfluorohexane in the absence of Compound 8. In some embodiments, the protein of interest phase separates when dispersed in perfluorohexane in the presence of Compound 8, wherein the dispersion efficiency is about 10%, 15%, 20%, 25%, 30%, 35%, 40%, 45%, 50%, 55%, 60%, 65%, 70%, 75%, or about 80%. In some embodiments, the dispersion efficiency is between about 10% and about 80%. In some embodiments, the dispersion efficiency is about 80%. In some embodiments, the dispersion efficiency is about 50%. In some embodiments, the dispersion efficiency is about 40%. In some embodiments, the dispersant compound comprises Compound 9. In some embodiments, Compound 9 comprises perfluoroundecanoic acid (PFUnDA). In some embodiments, Compound 9 comprises the formula C11HF21O2. In some embodiments, the dispersant compound comprises Formula II ((CF2)XCF3COOH), wherein x is 9 ((CF2)9CF3COOH), and the compound is Compound 9 comprising perfluoroundecanoic acid. In some embodiments, perfluoroundecanoic acid is 2,2,3,3,4,4,5,5,6,6,7,7,8,8,9,9,10,10,11,11,11-henicosafluoroundecanoic acid. In some embodiments, the molecular weight of Compound 9 is about 564 g / mol, or about the molecular weight of PFUnDA. In some embodiments, Compound 9 comprises Formula II ((CF2)XCF3COOH), wherein x is 9 ((CF2)9CF3COOH), and the compound is Compound 9 comprising perfluoroundecanoic acid. In some embodiments, Compound 9 is Compound 9. Attorney Docket No.148411.002502 PATENT In some embodiments, the fluorinated solvent is chosen from the group that includes perfluoropentane, perfluorohexane, perfluoroheptane, perfluorooctane, perfluoromethylcyclohexane, perfluoro-1-3-dimethylcyclohexane, or perfluorodecalin, and the perfluorinated dispersant compound comprises Compound 9. In some embodiments, the fluorinated solvent is perfluorohexane and the perfluorinated dispersant compound comprises Compound 9. In some embodiments, the fluorinated solvent is perfluorooctane and the perfluorinated dispersant compound comprises Compound 9. In some embodiments, the fluorinated solvent is perfluoropentane and the perfluorinated dispersant compound comprises Compound 9. In some embodiments, the fluorinated solvent is perfluoroheptane and the perfluorinated dispersant compound comprises Compound 9. In some embodiments, the fluorinated solvent is perfluoromethylcyclohexane and the perfluorinated dispersant compound comprises Compound 9. In some embodiments, the fluorinated solvent is perfluoro-1-3-dimethylcyclohexane and the perfluorinated dispersant compound comprises Compound 9. In some embodiments, the fluorinated solvent is perfluorodecalin and the perfluorinated dispersant compound comprises Compound 9. In some embodiments, the protein of interest is dispersed in perfluorohexane in the presence of Compound 9. In some embodiments, the protein of interest can include, but is not limited to, human hemoglobin (Hb), green fluorescent protein (GFP), bovine serum albumin (BSA), β-Galactosidase (β-Gal), rabbit serum immunoglobulin (IgG), bovine apo-transferrin (TFN), or urease (URE). In some embodiments, the protein of interest has a molecular weight of at least 5 kDa, 10 kDa, 15 kDa, 20 kDa, 25 kDa, 30 kDa, 35 kDa, 40 kDa, 45 kDa, 50 kDa, 55 kDa, 60 kDa, 65 kDa, 70 kDa, 75 kDa, 80 kDa, 85 kDa, 90 kDa, or 100 kDa. In some embodiments, the protein of interest has a molecular weight of about 27 kDa, 64.5 kDa, 66.5 kDa, 76 kDa, or 81 kDa. In some embodiments, the protein of interest has a molecular weight of at least 100 kDa, 110 kDa, 120 kDa, 130 kDa, 140 kDa, 150 kDa, 160 kDa, 170 kDa, 180 kDa, 190 kDa, or 200 kDa. In some embodiments, the protein of interest has a molecular weight of about 150 kDa. In some embodiments, the protein of interest has a molecular weight of at least 200 kDa, 250 kDa, 300 kDa, 350 kDa, 400 kDa, 450 kDa, 500 kDa, 550 kDa, or 600 kDa. In some embodiments, the protein of interest has a molecular weight of about 464 kDa, 483 kDa, or 520 kDa. In some embodiments, the protein of interest is dispersed in perfluorohexane in the presence of Compound 9, wherein the molar ratio of Compound 9 is about 100:1, 200:1, 300:1, 400:1, 500:1, 600:1, 700:1, 800:1, 900:1, 1000:1, 1250:1, 1500:1, 1750:1, 2000:1, 2500:1, 3000:1, 4000:1, or 5000:1 with the protein of interest. In some embodiments, the protein of interest is dispersed in perfluorohexane in the Attorney Docket No.148411.002502 PATENT presence of Compound 9, wherein the molar ratio of Compound 9 is about 1000:1 with the protein of interest. In some embodiments, the protein of interest phase separates when dispersed in perfluorohexane in the presence of Compound 9, but does not phase separate when dispersed in perfluorohexane in the absence of Compound 9. In some embodiments, the protein of interest phase separates when dispersed in perfluorohexane in the presence of Compound 9, wherein the dispersion efficiency is about 5%, 10%, 15%, 20%, 25%, 30%, 35%, 40%, 45%, 50%, 55%, 60%, 65%, 70%, 75%, or about 80%. In some embodiments, the dispersion efficiency is between about 5% and about 80%. In some embodiments, the dispersion efficiency is about 80%. In some embodiments, the dispersion efficiency is about 50%. In some embodiments, the dispersion efficiency is about 25%. In some embodiments, the dispersant compound comprises Compound 10. In some embodiments, Compound 10 comprises perfluorododecanoic acid. In some embodiments, Compound 10 comprises the formula C12HF23O2. In some embodiments, the dispersant compound comprises Formula II ((CF2)X(CF3)2COOH), wherein x is 10 ((CF2)10CF3COOH), and the compound is Compound 10 comprising perfluorododecanoic acid. In some embodiments, perfluorododecanoic acid is 2,2,3,3,4,4,5,5,6,6,7,7,8,8,9,9,10,10,11,11,12,12,12-tricosafluorododecanoic acid. In some embodiments, the molecular weight of Compound 10 is about 614 g / mol, or about the molecular weight of perfluorododecanoic acid. In some embodiments, Compound 10 comprises Formula II ((CF2)X(CF3)2COOH), wherein x is 10 ((CF2)10CF3COOH), and the compound is Compound 10 comprising perfluorododecanoic acid. In some embodiments, Compound 10 is Compound 10. In some embodiments, the fluorinated solvent is chosen from the group that includes perfluoropentane, perfluorohexane, perfluoroheptane, perfluorooctane, perfluoromethylcyclohexane, perfluoro-1-3-dimethylcyclohexane, or perfluorodecalin, and the perfluorinated dispersant compound comprises Compound 10. In some embodiments, the fluorinated solvent is perfluorohexane and the perfluorinated dispersant compound comprises Compound 10. In some embodiments, the fluorinated solvent is perfluorooctane and the perfluorinated dispersant compound comprises Compound 10. In some embodiments, the fluorinated solvent is perfluoropentane and the perfluorinated dispersant compound comprises Compound 10. In some embodiments, the fluorinated solvent is perfluoroheptane and the perfluorinated dispersant compound comprises Compound 10. In some embodiments, the fluorinated solvent is perfluoromethylcyclohexane and the perfluorinated dispersant compound comprises Compound 10. In some embodiments, the fluorinated solvent is perfluoro-1-3-dimethylcyclohexane and the perfluorinated dispersant Attorney Docket No.148411.002502 PATENT compound comprises Compound 10. In some embodiments, the fluorinated solvent is perfluorodecalin and the perfluorinated dispersant compound comprises Compound 10. In some embodiments, the protein of interest is dispersed in perfluorohexane in the presence of Compound 10. In some embodiments, the protein of interest can include, but is not limited to, human hemoglobin (Hb), green fluorescent protein (GFP), bovine serum albumin (BSA), β-Galactosidase (β-Gal), rabbit serum immunoglobulin (IgG), bovine apo- transferrin (TFN), or urease (URE). In some embodiments, the protein of interest has a molecular weight of at least 5 kDa, 10 kDa, 15 kDa, 20 kDa, 25 kDa, 30 kDa, 35 kDa, 40 kDa, 45 kDa, 50 kDa, 55 kDa, 60 kDa, 65 kDa, 70 kDa, 75 kDa, 80 kDa, 85 kDa, 90 kDa, or 100 kDa. In some embodiments, the protein of interest has a molecular weight of about 27 kDa, 64.5 kDa, 66.5 kDa, 76 kDa, or 81 kDa. In some embodiments, the protein of interest has a molecular weight of at least 100 kDa, 110 kDa, 120 kDa, 130 kDa, 140 kDa, 150 kDa, 160 kDa, 170 kDa, 180 kDa, 190 kDa, or 200 kDa. In some embodiments, the protein of interest has a molecular weight of about 150 kDa. In some embodiments, the protein of interest has a molecular weight of at least 200 kDa, 250 kDa, 300 kDa, 350 kDa, 400 kDa, 450 kDa, 500 kDa, 550 kDa, or 600 kDa. In some embodiments, the protein of interest has a molecular weight of about 464 kDa, 483 kDa, or 520 kDa. In some embodiments, the protein of interest is dispersed in perfluorohexane in the presence of Compound 10, wherein the molar ratio of Compound 10 is about 100:1, 200:1, 300:1, 400:1, 500:1, 600:1, 700:1, 800:1, 900:1, 1000:1, 1250:1, 1500:1, 1750:1, 2000:1, 2500:1, 3000:1, 4000:1, or 5000:1 with the protein of interest. In some embodiments, the protein of interest is dispersed in perfluorohexane in the presence of Compound 10, wherein the molar ratio of Compound 10 is about 1000:1 with the protein of interest. In some embodiments, the protein of interest phase separates when dispersed in perfluorohexane in the presence of Compound 10, but does not phase separate when dispersed in perfluorohexane in the absence of Compound 10. In some embodiments, the protein of interest phase separates when dispersed in perfluorohexane in the presence of Compound 10, wherein the dispersion efficiency is about 5%, 10%, 15%, 20%, 25%, 30%, 35%, 40%, 45%, 50%, 55%, 60%, 65%, 70%, 75%, or about 80%. In some embodiments, the dispersion efficiency is between about 5% and about 80%. In some embodiments, the dispersion efficiency is about 80%. In some embodiments, the dispersion efficiency is about 50%. In some embodiments, the dispersion efficiency is about 25%. In some embodiments, the dispersion efficiency is about 15%. In some embodiments, the dispersant compound comprises Compound 11. In some embodiments, Compound 11 comprises perfluorotetradecanoic acid (PFTeDA). In some Attorney Docket No.148411.002502 PATENT embodiments, Compound 11 comprises the formula C13HF27O2. In some embodiments, the dispersant compound comprises Formula II ((CF2)X(CF3)2COOH), wherein x is 12 ((CF2)12CF3COOH), and the compound is Compound 11 comprising perfluorotetradecanoic acid. In some embodiments, perfluorotetradecanoic acid is 2,2,3,3,4,4,5,5,6,6,7,7,8,8,9,9,10,10,11,11,12,12,13,13,14,14,14-heptacosafluorotetradecanoic acid. In some embodiments, the molecular weight of Compound 11 is about 714 g / mol, or about the molecular weight of PFTeDA. In some embodiments, the fluorinated solvent is chosen from the group that includes perfluoropentane, perfluorohexane, perfluoroheptane, perfluorooctane, perfluoromethylcyclohexane, perfluoro-1-3-dimethylcyclohexane, or perfluorodecalin, and the perfluorinated dispersant compound comprises Compound 11. In some embodiments, the fluorinated solvent is perfluorohexane and the perfluorinated dispersant compound comprises Compound 11. In some embodiments, the fluorinated solvent is perfluorooctane and the perfluorinated dispersant compound comprises Compound 11. In some embodiments, the fluorinated solvent is perfluoropentane and the perfluorinated dispersant compound comprises Compound 11. In some embodiments, the fluorinated solvent is perfluoroheptane and the perfluorinated dispersant compound comprises Compound 11. In some embodiments, the fluorinated solvent is perfluoromethylcyclohexane and the perfluorinated dispersant compound comprises Compound 11. In some embodiments, the fluorinated solvent is perfluoro-1-3-dimethylcyclohexane and the perfluorinated dispersant compound comprises Compound 11. In some embodiments, the fluorinated solvent is perfluorodecalin and the perfluorinated dispersant compound comprises Compound 11. In some embodiments, the protein of interest is dispersed in perfluorohexane in the presence of Compound 11. In some embodiments, the protein of interest can include, but is not limited to, human hemoglobin (Hb), green fluorescent protein (GFP), bovine serum albumin (BSA), β-Galactosidase (β-Gal), rabbit serum immunoglobulin (IgG), bovine apo- transferrin (TFN), or urease (URE). In some embodiments, the protein of interest has a molecular weight of at least 5 kDa, 10 kDa, 15 kDa, 20 kDa, 25 kDa, 30 kDa, 35 kDa, 40 kDa, 45 kDa, 50 kDa, 55 kDa, 60 kDa, 65 kDa, 70 kDa, 75 kDa, 80 kDa, 85 kDa, 90 kDa, or 100 kDa. In some embodiments, the protein of interest has a molecular weight of about 27 kDa, 64.5 kDa, 66.5 kDa, 76 kDa, or 81 kDa. In some embodiments, the protein of interest has a molecular weight of at least 100 kDa, 110 kDa, 120 kDa, 130 kDa, 140 kDa, 150 kDa, 160 kDa, 170 kDa, 180 kDa, 190 kDa, or 200 kDa. In some embodiments, the protein of interest has a molecular weight of about 150 kDa. In some embodiments, the protein of interest has a molecular weight of at least 200 kDa, 250 kDa, 300 kDa, 350 kDa, 400 kDa, Attorney Docket No.148411.002502 PATENT 450 kDa, 500 kDa, 550 kDa, or 600 kDa. In some embodiments, the protein of interest has a molecular weight of about 464 kDa, 483 kDa, or 520 kDa. In some embodiments, the protein of interest is dispersed in perfluorohexane in the presence of Compound 11, wherein the molar ratio of Compound 11 is about 100:1, 200:1, 300:1, 400:1, 500:1, 600:1, 700:1, 800:1, 900:1, 1000:1, 1250:1, 1500:1, 1750:1, 2000:1, 2500:1, 3000:1, 4000:1, or 5000:1 with the protein of interest. In some embodiments, the protein of interest is dispersed in perfluorohexane in the presence of Compound 11, wherein the molar ratio of Compound 11 is about 1000:1 with the protein of interest. In some embodiments, the protein of interest phase separates when dispersed in perfluorohexane in the presence of Compound 11, but does not phase separate when dispersed in perfluorohexane in the absence of Compound 11. In some embodiments, the protein of interest phase separates when dispersed in perfluorohexane in the presence of Compound 11, wherein the dispersion efficiency is about 5%, 10%, 15%, 20%, 25%, 30%, 35%, 40%, 45%, 50%, 55%, or about 60%. In some embodiments, the dispersion efficiency is between about 5% and about 60%. In some embodiments, the dispersion efficiency is about 50%. In some embodiments, the dispersion efficiency is about 25%. In some embodiments, the dispersion efficiency is about 10%. In some embodiments, the dispersant compound comprises Compound 12. In some embodiments, Compound 12 comprises perfluorooctadecanoic acid. In some embodiments, Compound 12 comprises the formula C18HF35O2. In some embodiments, the dispersant compound comprises Formula II ((CF2)X(CF3)2COOH), wherein x is 16 ((CF2)16CF3COOH), and the compound is Compound 12 comprising perfluorooctadecanoic acid. In some embodiments, perfluorooctadecanoic acid is 2,2,3,3,4,4,5,5,6,6,7,7,8,8,9,9,10,10,11,11,12,12,13,13,14,14,15,15,16,16,17,17,18,18,18- pentatriacontafluorooctadecanoic acid. In some embodiments, the molecular weight of Compound 12 is about 914 g / mol, or about the molecular weight of perfluorooctadecanoic acid. In some embodiments, the fluorinated solvent is chosen from the group that includes perfluoropentane, perfluorohexane, perfluoroheptane, perfluorooctane, perfluoromethylcyclohexane, perfluoro-1-3-dimethylcyclohexane, or perfluorodecalin, and the perfluorinated dispersant compound comprises Compound 12. In some embodiments, the fluorinated solvent is perfluorohexane and the perfluorinated dispersant compound comprises Compound 12. In some embodiments, the fluorinated solvent is perfluorooctane and the perfluorinated dispersant compound comprises Compound 12. In some embodiments, the fluorinated solvent is perfluoropentane and the perfluorinated dispersant compound comprises Compound 12. In some embodiments, the fluorinated solvent is perfluoroheptane Attorney Docket No.148411.002502 PATENT and the perfluorinated dispersant compound comprises Compound 12. In some embodiments, the fluorinated solvent is perfluoromethylcyclohexane and the perfluorinated dispersant compound comprises Compound 12. In some embodiments, the fluorinated solvent is perfluoro-1-3-dimethylcyclohexane and the perfluorinated dispersant compound comprises Compound 12. In some embodiments, the fluorinated solvent is perfluorodecalin and the perfluorinated dispersant compound comprises Compound 12. In some embodiments, the protein of interest is dispersed in perfluorohexane in the presence of Compound 12. In some embodiments, the protein of interest can include, but is not limited to, human hemoglobin (Hb), green fluorescent protein (GFP), bovine serum albumin (BSA), β-Galactosidase (β-Gal), rabbit serum immunoglobulin (IgG), bovine apo- transferrin (TFN), or urease (URE). In some embodiments, the protein of interest has a molecular weight of at least 5 kDa, 10 kDa, 15 kDa, 20 kDa, 25 kDa, 30 kDa, 35 kDa, 40 kDa, 45 kDa, 50 kDa, 55 kDa, 60 kDa, 65 kDa, 70 kDa, 75 kDa, 80 kDa, 85 kDa, 90 kDa, or 100 kDa. In some embodiments, the protein of interest has a molecular weight of about 27 kDa, 64.5 kDa, 66.5 kDa, 76 kDa, or 81 kDa. In some embodiments, the protein of interest has a molecular weight of at least 100 kDa, 110 kDa, 120 kDa, 130 kDa, 140 kDa, 150 kDa, 160 kDa, 170 kDa, 180 kDa, 190 kDa, or 200 kDa. In some embodiments, the protein of interest has a molecular weight of about 150 kDa. In some embodiments, the protein of interest has a molecular weight of at least 200 kDa, 250 kDa, 300 kDa, 350 kDa, 400 kDa, 450 kDa, 500 kDa, 550 kDa, or 600 kDa. In some embodiments, the protein of interest has a molecular weight of about 464 kDa, 483 kDa, or 520 kDa. In some embodiments, the protein of interest is dispersed in perfluorohexane in the presence of Compound 12, wherein the molar ratio of Compound 12 is about 100:1, 200:1, 300:1, 400:1, 500:1, 600:1, 700:1, 800:1, 900:1, 1000:1, 1250:1, 1500:1, 1750:1, 2000:1, 2500:1, 3000:1, 4000:1, or 5000:1 with the protein of interest. In some embodiments, the protein of interest is dispersed in perfluorohexane in the presence of Compound 12, wherein the molar ratio of Compound 12 is about 1000:1 with the protein of interest. In some embodiments, the protein of interest phase separates when dispersed in perfluorohexane in the presence of Compound 12, but does not phase separate when dispersed in perfluorohexane in the absence of Compound 12. In some embodiments, the protein of interest phase separates when dispersed in perfluorohexane in the presence of Compound 12, wherein the dispersion efficiency is about 5%, 10%, 15%, 20%, or about 25%. In some embodiments, the dispersion efficiency is between about 5% and about 25%. In some embodiments, the dispersion efficiency is about 25%. In some embodiments, the dispersion efficiency is about 10%. Attorney Docket No.148411.002502 PATENT In some embodiments, the dispersant compound comprises Formula III: (Formula III). In some the formula C6F11COOH. In some embodiments, Formula III is acid. In some embodiments, Compound 13 comprises perfluorocyclohexanecarboxylic acid. In some embodiments, Compound 13 comprises the formula C7HF11O2. In some embodiments, the dispersant compound comprises Formula III (C6F11COOH), and the compound is Compound 13 comprising perfluorocyclohexanecarboxylic acid. In some embodiments, perfluorocyclohexanecarboxylic acid is 1,2,2,3,3,4,4,5,5,6,6-undecafluorocyclohexane-1- carboxylic acid. In some embodiments, the molecular weight of Compound 13 is about 326 g / mol, or about the molecular weight of perfluorocyclohexanecarboxylic acid. In some embodiments, the fluorinated solvent is chosen from the group that includes perfluoropentane, perfluorohexane, perfluoroheptane, perfluorooctane, perfluoromethylcyclohexane, perfluoro-1-3-dimethylcyclohexane, or perfluorodecalin, and the perfluorinated dispersant compound comprises Compound 13. In some embodiments, the fluorinated solvent is perfluorohexane and the perfluorinated dispersant compound comprises Compound 13. In some embodiments, the fluorinated solvent is perfluorooctane and the perfluorinated dispersant compound comprises Compound 13. In some embodiments, the fluorinated solvent is perfluoropentane and the perfluorinated dispersant compound comprises Compound 13. In some embodiments, the fluorinated solvent is perfluoroheptane and the perfluorinated dispersant compound comprises Compound 13. In some embodiments, the fluorinated solvent is perfluoromethylcyclohexane and the perfluorinated dispersant compound comprises Compound 13. In some embodiments, the fluorinated solvent is perfluoro-1-3-dimethylcyclohexane and the perfluorinated dispersant compound comprises Compound 13. In some embodiments, the fluorinated solvent is perfluorodecalin and the perfluorinated dispersant compound comprises Compound 13. In some embodiments, the protein of interest is dispersed in perfluorohexane in the presence of Compound 13. In some embodiments, the protein of interest can include, but is not limited to, human hemoglobin (Hb), green fluorescent protein (GFP), bovine serum albumin (BSA), β-Galactosidase (β-Gal), rabbit serum immunoglobulin (IgG), bovine apo- Attorney Docket No.148411.002502 PATENT transferrin (TFN), or urease (URE). In some embodiments, the protein of interest has a molecular weight of at least 5 kDa, 10 kDa, 15 kDa, 20 kDa, 25 kDa, 30 kDa, 35 kDa, 40 kDa, 45 kDa, 50 kDa, 55 kDa, 60 kDa, 65 kDa, 70 kDa, 75 kDa, 80 kDa, 85 kDa, 90 kDa, or 100 kDa. In some embodiments, the protein of interest has a molecular weight of about 27 kDa, 64.5 kDa, 66.5 kDa, 76 kDa, or 81 kDa. In some embodiments, the protein of interest has a molecular weight of at least 100 kDa, 110 kDa, 120 kDa, 130 kDa, 140 kDa, 150 kDa, 160 kDa, 170 kDa, 180 kDa, 190 kDa, or 200 kDa. In some embodiments, the protein of interest has a molecular weight of about 150 kDa. In some embodiments, the protein of interest has a molecular weight of at least 200 kDa, 250 kDa, 300 kDa, 350 kDa, 400 kDa, 450 kDa, 500 kDa, 550 kDa, or 600 kDa. In some embodiments, the protein of interest has a molecular weight of about 464 kDa, 483 kDa, or 520 kDa. In some embodiments, the protein of interest is dispersed in perfluorohexane in the presence of Compound 13, wherein the molar ratio of Compound 13 is about 100:1, 200:1, 300:1, 400:1, 500:1, 600:1, 700:1, 800:1, 900:1, 1000:1, 1250:1, 1500:1, 1750:1, 2000:1, 2500:1, 3000:1, 4000:1, or 5000:1 with the protein of interest. In some embodiments, the protein of interest is dispersed in perfluorohexane in the presence of Compound 13, wherein the molar ratio of Compound 13 is about 1000:1 with the protein of interest. In some embodiments, the protein of interest phase separates when dispersed in perfluorohexane in the presence of Compound 13, but does not phase separate when dispersed in perfluorohexane in the absence of Compound 13. In some embodiments, the protein of interest phase separates when dispersed in perfluorohexane in the presence of Compound 13, wherein the dispersion efficiency is about 5%, 10%, 15%, 20%, 25%, 30%, 35%, 40%, 45%, 50%, 55%, 60%, 65%, 70%, 75% or about 80%. In some embodiments, the dispersion efficiency is between about 5% and about 80%. In some embodiments, the dispersion efficiency is about 80%. In some embodiments, the dispersion efficiency is about 25%. In some embodiments, the dispersion efficiency is about 10%. In some embodiments, the dispersant compound comprises Formula IV: (Formula IV). In some embodiments, Formula IV comprises (2S) 2-FMOC-amino-3- pentafluorophenyl propanoic acid. In some embodiments, Formula IV comprises an 9- fluorenylmethyloxycarbonyl (FMOC) protecting group. In some embodiments, Formula IV Attorney Docket No.148411.002502 PATENT comprises Fmoc-L-pentafluorophenylalanine. In some embodiments, Formula IV comprises (2S)-2-({[(9H-fluoren-9-yl)methoxy]carbonyl}amino)-3-(2,3,4,5,6- pentafluorophenyl)propanoic acid. In some embodiments, the dispersant compound comprises Compound 14. In some embodiments, Compound 14 comprises (2S)-2-({[(9H- fluoren-9-yl)methoxy]carbonyl}amino)-3-(2,3,4,5,6-pentafluorophenyl)propanoic acid. In some embodiments, Compound 14 comprises the formula C24H16F5NO4. In some embodiments, the dispersant compound comprises Formula 14 (C24H16F5NO4), wherein and the compound is Compound 14 comprising (2S)-2-({[(9H-fluoren-9- yl)methoxy]carbonyl}amino)-3-(2,3,4,5,6-pentafluorophenyl)propanoic acid. In some embodiments, the molecular weight of Compound 14 is about 477 g / mol, or about the molecular weight of (2S)-2-({[(9H-fluoren-9-yl)methoxy]carbonyl}amino)-3-(2,3,4,5,6- pentafluorophenyl)propanoic acid. In some embodiments, the fluorinated solvent is chosen from the group that includes perfluoropentane, perfluorohexane, perfluoroheptane, perfluorooctane, perfluoromethylcyclohexane, perfluoro-1-3-dimethylcyclohexane, or perfluorodecalin, and the perfluorinated dispersant compound comprises Compound 14. In some embodiments, the fluorinated solvent is perfluorohexane and the perfluorinated dispersant compound comprises Compound 14. In some embodiments, the fluorinated solvent is perfluorooctane and the perfluorinated dispersant compound comprises Compound 14. In some embodiments, the fluorinated solvent is perfluoropentane and the perfluorinated dispersant compound comprises Compound 14. In some embodiments, the fluorinated solvent is perfluoroheptane and the perfluorinated dispersant compound comprises Compound 14. In some embodiments, the fluorinated solvent is perfluoromethylcyclohexane and the perfluorinated dispersant compound comprises Compound 14. In some embodiments, the fluorinated solvent is perfluoro-1-3-dimethylcyclohexane and the perfluorinated dispersant compound comprises Compound 14. In some embodiments, the fluorinated solvent is perfluorodecalin and the perfluorinated dispersant compound comprises Compound 14. In some embodiments, the protein of interest is dispersed in perfluorohexane in the presence of Compound 14. In some embodiments, the protein of interest can include, but is not limited to, human hemoglobin (Hb), green fluorescent protein (GFP), bovine serum albumin (BSA), β-Galactosidase (β-Gal), rabbit serum immunoglobulin (IgG), bovine apo- transferrin (TFN), or urease (URE). In some embodiments, the protein of interest has a molecular weight of at least 5 kDa, 10 kDa, 15 kDa, 20 kDa, 25 kDa, 30 kDa, 35 kDa, 40 kDa, 45 kDa, 50 kDa, 55 kDa, 60 kDa, 65 kDa, 70 kDa, 75 kDa, 80 kDa, 85 kDa, 90 kDa, or 100 kDa. In some embodiments, the protein of interest has a molecular weight of about 27 Attorney Docket No.148411.002502 PATENT kDa, 64.5 kDa, 66.5 kDa, 76 kDa, or 81 kDa. In some embodiments, the protein of interest has a molecular weight of at least 100 kDa, 110 kDa, 120 kDa, 130 kDa, 140 kDa, 150 kDa, 160 kDa, 170 kDa, 180 kDa, 190 kDa, or 200 kDa. In some embodiments, the protein of interest has a molecular weight of about 150 kDa. In some embodiments, the protein of interest has a molecular weight of at least 200 kDa, 250 kDa, 300 kDa, 350 kDa, 400 kDa, 450 kDa, 500 kDa, 550 kDa, or 600 kDa. In some embodiments, the protein of interest has a molecular weight of about 464 kDa, 483 kDa, or 520 kDa. In some embodiments, the protein of interest is dispersed in perfluorohexane in the presence of Compound 14, wherein the molar ratio of Compound 14 is about 100:1, 200:1, 300:1, 400:1, 500:1, 600:1, 700:1, 800:1, 900:1, 1000:1, 1250:1, 1500:1, 1750:1, 2000:1, 2500:1, 3000:1, 4000:1, or 5000:1 with the protein of interest. In some embodiments, the protein of interest is dispersed in perfluorohexane in the presence of Compound 14, wherein the molar ratio of Compound 14 is about 1000:1 with the protein of interest. In some embodiments, the protein of interest phase separates when dispersed in perfluorohexane in the presence of Compound 14, but does not phase separate when dispersed in perfluorohexane in the absence of Compound 14. In some embodiments, the protein of interest phase separates when dispersed in perfluorohexane in the presence of Compound 14, wherein the dispersion efficiency is about 1%, 2%, 3%, 4%, 5%, 6%, 7%, 8%, 9%, or 10%. In some embodiments, the dispersion efficiency is between about 1% and about 10%. In some embodiments, the dispersion efficiency is about 5%. In some embodiments, the dispersant compound comprises Formula V: (Formula V), wherein the formula is C6F5R COH. In some embodiments, R is OH and the compound is pentafluorophenol. In some embodiments, R is COH and the compound is pentafluorobenzaldehyde. In some embodiments, the dispersant compound comprises Compound 15. In some embodiments, Compound 15 comprises pentafluorophenol. In some embodiments, Compound 15 comprises the formula C6HF5O. In some embodiments, the dispersant compound comprises Formula V (C6F5R), where R is OH (C6F5OH), and the compound is Compound 15 comprising pentafluorophenol. In some embodiments, pentafluorophenol is 2,3,4,5,6-pentafluorophenol. In some embodiments, the molecular weight of Compound 15 is Attorney Docket No.148411.002502 PATENT about 184 g / mol, or about the molecular weight of pentafluorophenol. In some embodiments, the fluorinated solvent is chosen from the group that includes perfluoropentane, perfluorohexane, perfluoroheptane, perfluorooctane, perfluoromethylcyclohexane, perfluoro- 1-3-dimethylcyclohexane, or perfluorodecalin, and the perfluorinated dispersant compound comprises Compound 15. In some embodiments, the fluorinated solvent is perfluorohexane and the perfluorinated dispersant compound comprises Compound 15. In some embodiments, the fluorinated solvent is perfluorooctane and the perfluorinated dispersant compound comprises Compound 15. In some embodiments, the fluorinated solvent is perfluoropentane and the perfluorinated dispersant compound comprises Compound 15. In some embodiments, the fluorinated solvent is perfluoroheptane and the perfluorinated dispersant compound comprises Compound 15. In some embodiments, the fluorinated solvent is perfluoromethylcyclohexane and the perfluorinated dispersant compound comprises Compound 15. In some embodiments, the fluorinated solvent is perfluoro-1-3- dimethylcyclohexane and the perfluorinated dispersant compound comprises Compound 15. In some embodiments, the fluorinated solvent is perfluorodecalin and the perfluorinated dispersant compound comprises Compound 15. In some embodiments, the protein of interest is dispersed in perfluorohexane in the presence of Compound 15. In some embodiments, the protein of interest can include, but is not limited to, human hemoglobin (Hb), green fluorescent protein (GFP), bovine serum albumin (BSA), β-Galactosidase (β-Gal), rabbit serum immunoglobulin (IgG), bovine apo- transferrin (TFN), or urease (URE). In some embodiments, the protein of interest has a molecular weight of at least 5 kDa, 10 kDa, 15 kDa, 20 kDa, 25 kDa, 30 kDa, 35 kDa, 40 kDa, 45 kDa, 50 kDa, 55 kDa, 60 kDa, 65 kDa, 70 kDa, 75 kDa, 80 kDa, 85 kDa, 90 kDa, or 100 kDa. In some embodiments, the protein of interest has a molecular weight of about 27 kDa, 64.5 kDa, 66.5 kDa, 76 kDa, or 81 kDa. In some embodiments, the protein of interest has a molecular weight of at least 100 kDa, 110 kDa, 120 kDa, 130 kDa, 140 kDa, 150 kDa, 160 kDa, 170 kDa, 180 kDa, 190 kDa, or 200 kDa. In some embodiments, the protein of interest has a molecular weight of about 150 kDa. In some embodiments, the protein of interest has a molecular weight of at least 200 kDa, 250 kDa, 300 kDa, 350 kDa, 400 kDa, 450 kDa, 500 kDa, 550 kDa, or 600 kDa. In some embodiments, the protein of interest has a molecular weight of about 464 kDa, 483 kDa, or 520 kDa. In some embodiments, the protein of interest is dispersed in perfluorohexane in the presence of Compound 15, wherein the molar ratio of Compound 15 is about 100:1, 200:1, 300:1, 400:1, 500:1, 600:1, 700:1, 800:1, 900:1, 1000:1, 1250:1, 1500:1, 1750:1, 2000:1, 2500:1, 3000:1, 4000:1, or 5000:1 with the Attorney Docket No.148411.002502 PATENT protein of interest. In some embodiments, the protein of interest is dispersed in perfluorohexane in the presence of Compound 15, wherein the molar ratio of Compound 15 is about 1000:1 with the protein of interest. In some embodiments, the protein of interest phase separates when dispersed in perfluorohexane in the presence of Compound 15, but does not phase separate when dispersed in perfluorohexane in the absence of Compound 15. In some embodiments, the protein of interest phase separates when dispersed in perfluorohexane in the presence of Compound 15, wherein the dispersion efficiency is about 5%, 10%, 15%, 20%, 25%, 30%, 35%, or about 40%. In some embodiments, the dispersion efficiency is between about 5% and about 40%. In some embodiments, the dispersion efficiency is about 40%.In some embodiments, the dispersion efficiency is about 10%. In some embodiments, the dispersant compound comprises Compound 16. In some embodiments, Compound 16 comprises pentafluorobenzaldehyde. In some embodiments, Compound 16 comprises the formula C7HF5O. In some embodiments, the dispersant compound comprises Formula V (C6F5R), where R is COH (C6F5COH), and the compound is Compound 16 comprising pentafluorobenzaldehyde. In some embodiments, pentafluorobenzaldehyde is 2,3,4,5,6-pentafluorobenzaldehyde. In some embodiments, the molecular weight of Compound 16 is about 196 g / mol, or about the molecular weight of pentafluorobenzaldehyde. In some embodiments, the fluorinated solvent is chosen from the group that includes perfluoropentane, perfluorohexane, perfluoroheptane, perfluorooctane, perfluoromethylcyclohexane, perfluoro-1-3-dimethylcyclohexane, or perfluorodecalin, and the perfluorinated dispersant compound comprises Compound 16. In some embodiments, the fluorinated solvent is perfluorohexane and the perfluorinated dispersant compound comprises Compound 16. In some embodiments, the fluorinated solvent is perfluorooctane and the perfluorinated dispersant compound comprises Compound 16. In some embodiments, the fluorinated solvent is perfluoropentane and the perfluorinated dispersant compound comprises Compound 16. In some embodiments, the fluorinated solvent is perfluoroheptane and the perfluorinated dispersant compound comprises Compound 16. In some embodiments, the fluorinated solvent is perfluoromethylcyclohexane and the perfluorinated dispersant compound comprises Compound 16. In some embodiments, the fluorinated solvent is perfluoro-1-3-dimethylcyclohexane and the perfluorinated dispersant compound comprises Compound 16. In some embodiments, the fluorinated solvent is perfluorodecalin and the perfluorinated dispersant compound comprises Compound 16. In some embodiments, the protein of interest is dispersed in perfluorohexane in the presence of Compound 16. In some embodiments, the protein of interest can include, but is Attorney Docket No.148411.002502 PATENT not limited to, human hemoglobin (Hb), green fluorescent protein (GFP), bovine serum albumin (BSA), β-Galactosidase (β-Gal), rabbit serum immunoglobulin (IgG), bovine apo- transferrin (TFN), or urease (URE). In some embodiments, the protein of interest has a molecular weight of at least 5 kDa, 10 kDa, 15 kDa, 20 kDa, 25 kDa, 30 kDa, 35 kDa, 40 kDa, 45 kDa, 50 kDa, 55 kDa, 60 kDa, 65 kDa, 70 kDa, 75 kDa, 80 kDa, 85 kDa, 90 kDa, or 100 kDa. In some embodiments, the protein of interest has a molecular weight of about 27 kDa, 64.5 kDa, 66.5 kDa, 76 kDa, or 81 kDa. In some embodiments, the protein of interest has a molecular weight of at least 100 kDa, 110 kDa, 120 kDa, 130 kDa, 140 kDa, 150 kDa, 160 kDa, 170 kDa, 180 kDa, 190 kDa, or 200 kDa. In some embodiments, the protein of interest has a molecular weight of about 150 kDa. In some embodiments, the protein of interest has a molecular weight of at least 200 kDa, 250 kDa, 300 kDa, 350 kDa, 400 kDa, 450 kDa, 500 kDa, 550 kDa, or 600 kDa. In some embodiments, the protein of interest has a molecular weight of about 464 kDa, 483 kDa, or 520 kDa. In some embodiments, the protein of interest is dispersed in perfluorohexane in the presence of Compound 16, wherein the molar ratio of Compound 16 is about 100:1, 200:1, 300:1, 400:1, 500:1, 600:1, 700:1, 800:1, 900:1, 1000:1, 1250:1, 1500:1, 1750:1, 2000:1, 2500:1, 3000:1, 4000:1, or 5000:1 with the protein of interest. In some embodiments, the protein of interest is dispersed in perfluorohexane in the presence of Compound 16, wherein the molar ratio of Compound 16 is about 1000:1 with the protein of interest. In some embodiments, the protein of interest phase separates when dispersed in perfluorohexane in the presence of Compound 16, but does not phase separate when dispersed in perfluorohexane in the absence of Compound 16. In some embodiments, the protein of interest phase separates when dispersed in perfluorohexane in the presence of Compound 16, wherein the dispersion efficiency is about 5%, 10%, 15%, 20%, or about 25%. In some embodiments, the dispersion efficiency is between about 5% and about 80%. In some embodiments, the dispersion efficiency is about 10%. In some embodiments, the dispersant compound comprises Formula VI: (Formula VI), wherein the formula is (CF2) is 7. In some embodiments, the dispersant compound comprises Compound 17. In some embodiments, Compound 17 comprises perfluorooctanesulfonic acid (PFOS). In some embodiments, Compound 17 comprises the formula C8HF17O3S. In some embodiments, the dispersant compound comprises Formula VI Attorney Docket No.148411.002502 PATENT ((CF2)YCF3SO2OH), wherein y is 7 ((CF2)7CF3SO2OH), and the compound is Compound 17 comprising perfluorooctanesulfonic acid. In some embodiments, perfluorooctanesulfonic acid is 1,1,2,2,3,3,4,4,5,5,6,6,7,7,8,8,8-heptadecafluorooctane-1-sulfonic acid. In some embodiments, the molecular weight of Compound 17 is about 500 g / mol, or about the molecular weight of perfluorooctanesulfonic acid. In some embodiments, the fluorinated solvent is chosen from the group that includes perfluoropentane, perfluorohexane, perfluoroheptane, perfluorooctane, perfluoromethylcyclohexane, perfluoro-1-3- dimethylcyclohexane, or perfluorodecalin, and the perfluorinated dispersant compound comprises Compound 17. In some embodiments, the fluorinated solvent is perfluorohexane and the perfluorinated dispersant compound comprises Compound 17. In some embodiments, the fluorinated solvent is perfluorooctane and the perfluorinated dispersant compound comprises Compound 17. In some embodiments, the fluorinated solvent is perfluoropentane and the perfluorinated dispersant compound comprises Compound 17. In some embodiments, the fluorinated solvent is perfluoroheptane and the perfluorinated dispersant compound comprises Compound 17. In some embodiments, the fluorinated solvent is perfluoromethylcyclohexane and the perfluorinated dispersant compound comprises Compound 17. In some embodiments, the fluorinated solvent is perfluoro-1-3- dimethylcyclohexane and the perfluorinated dispersant compound comprises Compound 17. In some embodiments, the fluorinated solvent is perfluorodecalin and the perfluorinated dispersant compound comprises Compound 17. In some embodiments, the protein of interest is dispersed in perfluorohexane in the presence of Compound 17. In some embodiments, the protein of interest can include, but is not limited to, human hemoglobin (Hb), green fluorescent protein (GFP), bovine serum albumin (BSA), β-Galactosidase (β-Gal), rabbit serum immunoglobulin (IgG), bovine apo- transferrin (TFN), or urease (URE). In some embodiments, the protein of interest has a molecular weight of at least 5 kDa, 10 kDa, 15 kDa, 20 kDa, 25 kDa, 30 kDa, 35 kDa, 40 kDa, 45 kDa, 50 kDa, 55 kDa, 60 kDa, 65 kDa, 70 kDa, 75 kDa, 80 kDa, 85 kDa, 90 kDa, or 100 kDa. In some embodiments, the protein of interest has a molecular weight of about 27 kDa, 64.5 kDa, 66.5 kDa, 76 kDa, or 81 kDa. In some embodiments, the protein of interest has a molecular weight of at least 100 kDa, 110 kDa, 120 kDa, 130 kDa, 140 kDa, 150 kDa, 160 kDa, 170 kDa, 180 kDa, 190 kDa, or 200 kDa. In some embodiments, the protein of interest has a molecular weight of about 150 kDa. In some embodiments, the protein of interest has a molecular weight of at least 200 kDa, 250 kDa, 300 kDa, 350 kDa, 400 kDa, 450 kDa, 500 kDa, 550 kDa, or 600 kDa. In some embodiments, the protein of interest has a Attorney Docket No.148411.002502 PATENT molecular weight of about 464 kDa, 483 kDa, or 520 kDa. In some embodiments, the protein of interest is dispersed in perfluorohexane in the presence of Compound 17, wherein the molar ratio of Compound 17 is about 100:1, 200:1, 300:1, 400:1, 500:1, 600:1, 700:1, 800:1, 900:1, 1000:1, 1250:1, 1500:1, 1750:1, 2000:1, 2500:1, 3000:1, 4000:1, or 5000:1 with the protein of interest. In some embodiments, the protein of interest is dispersed in perfluorohexane in the presence of Compound 17, wherein the molar ratio of Compound 17 is about 1000:1 with the protein of interest. In some embodiments, the protein of interest phase separates when dispersed in perfluorohexane in the presence of Compound 17, but does not phase separate when dispersed in perfluorohexane in the absence of Compound 17. In some embodiments, the protein of interest phase separates when dispersed in perfluorohexane in the presence of Compound 17, wherein the dispersion efficiency is about 5%, 10%, 15%, 20%, 25%, 30%, 35%, 40%, 45%, 50%, 55%, or about 60%. In some embodiments, the dispersion efficiency is between about 5% and about 60%. In some embodiments, the dispersion efficiency is about 60%. In some embodiments, the dispersion efficiency is about 25%. In some embodiments, the dispersion efficiency is about 10%. In some embodiments, the dispersion efficiency of the protein of interest dissolved in PFH in the presence of PFOS is at least about 5%, 10%, 20%, 30%, 40%, 50%, 60%, 70%, 80%, or 90% when the protein of interest has a molecular weight of about 5 kDa to about 600 kDa. In some embodiments, the dispersion efficiency of the protein of interest is at least about 1%, 5%, 10%, 20%, 30%, 40%, 50%, 60%, 70%, 80%, or 90% when the protein of interest has a molecular weight of about 5 kDa to about 100 kDa. In some embodiments, the dispersion efficiency of the protein of interest dissolved in PFH in the presence of PFOS is at least about 35% when the protein of interest has a molecular weight of about 5 kDa to about 600 kDa. In some embodiments, the dispersion efficiency of the protein of interest dissolved in PFH in the presence of PFOS is at least about 5%, 10%, 20%, 30%, 40%, 50%, 60%, 70%, 80%, or 90% when the solvent accessible surface area (SASA) is between about 1 x104Å and about 15 x104Å. In some embodiments, the dispersion efficiency of the protein of interest dissolved in PFH in the presence of PFOS is at least about 5%, 10%, 20%, 30%, 40%, 50%, 60%, 70%, 80%, or 90% when the hydrodynamic radii of the protein of interest is between about 2 and to 8 nm. In some embodiments, the dispersion efficiency of the protein of interest dissolved in PFH in the presence of PFOS is at least about 5%, 10%, 20%, 30%, 40%, 50%, 60%, 70%, 80%, or 90% when the isoelectric point (pI) of the protein of interest is between about 4 to about 8. In some embodiments, the dispersion efficiency of the protein of interest Attorney Docket No.148411.002502 PATENT dissolved in PFH in the presence of PFOS is at least about 5%, 10%, 20%, 30%, 40%, 50%, 60%, 70%, 80%, or 90% when the α helicity content of the protein of interest is between 0% and about 35%. In some embodiments, the dispersion efficiency of the protein of interest dissolved in PFH in the presence of PFOS is at least about 5%, 10%, 20%, 30%, 40%, 50%, 60%, 70%, 80%, or 90% when the β sheet content of the protein of interest is between 0% and about 60%. In some embodiments, the dispersion efficiency of the protein of interest dissolved in PFH in the presence of PFOS is between about 5% to about 100% when the protein of interest contains between about 0% to about 30% polar residues. In some embodiments, the dispersion efficiency of the protein of interest dissolved in PFH in the presence of PFOS is between about 35% to about 100% when the protein of interest contains between about 0% to about 30% polar residues. In some embodiments, the dispersion efficiency of the protein of interest dissolved in PFH in the presence of PFOS is between about 5% to about 100% when the protein of interest contains between about 0% to about 45% nonpolar residues. In some embodiments, the dispersion efficiency of the protein of interest dissolved in PFH in the presence of PFOS is between about 35% to about 100% when the protein of interest contains between about 0% to about 45% nonpolar residues. In some embodiments, the protein of interest dissolved in PFH in the presence of PFOS, wherein the dispersant compound PFOS interacts with the protein of interest via hydrogen bonding with solvent shell H2O molecules interacting with the protein of interest. In some embodiments, the protein of interest is dissolved in PFH in the presence of PFOS, wherein the dispersant compound PFOS interacts with the protein of interest via hydrogen bonding with nitrogen donors present in the protein backbone or the amino acid side chains of the protein of interest. In some embodiments, the protein of interest is dissolved in PFH in the presence of PFOS, wherein the dispersant compound PFOS interacts with the protein of interest via hydrogen bonding with oxygen donors present in the protein backbone or the amino acid side chains of the protein of interest. In some embodiments, the protein of interest is dissolved in PFH in the presence of PFOS, wherein the dispersant compound PFOS interacts with the protein of interest via hydrogen bonding with sulfur donors present in the amino acid side chains of the protein of interest. In some embodiments, the protein of interest dissolved in PFH in the presence of PFOS, wherein the carboxylic acid group of the dispersant compound PFOS interacts with the protein of interest via hydrogen bonding to the H2O molecules interacting with the protein of interest. In some embodiments, the protein of interest dissolved in PFH in the presence of PFOS, wherein the carboxylic acid group of the Attorney Docket No.148411.002502 PATENT dispersant compound PFOS interacts with the protein of interest via hydrogen bonding to the nitrogen, oxygen, or sulfur donors in the protein backbone or the amino acid side chains of the protein of interest. In some embodiments, the protein of interest dissolved in PFH in the presence of PFOS, wherein the one or more fluorine group of the dispersant compound PFOS interacts with the protein of interest via hydrogen bonding to the H2O molecules interacting with the protein of interest. In some embodiments, the protein of interest dissolved in PFH in the presence of PFOS, wherein the one or more fluorine group of the dispersant compound PFOS interacts with the protein of interest via hydrogen bonding to the nitrogen, oxygen, or sulfur donors in the protein backbone or the amino acid side chains of the protein of interest. In some embodiments, the protein of interest is dissolved in PFH in the presence of PFOS, wherein the dispersant compound PFOS makes hydrophobic contacts with protein solvent accessible amino acids. In some embodiments, the protein of interest is dissolved in PFH in the presence of PFOS, wherein the Gibbs free energy between the PFOS and the protein of interest is between about -20 to about -50 kcal / mol. In some embodiments, the protein of interest is dissolved in PFH in the presence of PFOS, wherein the Gibbs free energy between the PFOS and the docked rotamers from the protein of interest is between about -20 to about -50 kcal / mol. In some embodiments, the structure of the protein of interest changes when dissolved in PFH in the presence of PFOS. In some embodiments, the protein of interest comprises a non-native secondary structure. In some embodiments, the change in molar ellipticity of the protein of interest is between about 2 deg cm-2dmol-1to about -6 deg cm-2dmol-1. In some embodiments, the change in β-sheet content is between about -20% to about 20%. In some embodiments, the change in parallel β-sheet content is between about -20% to about 20%. In some embodiments, the change in antiparallel β-sheet content is between about -20% to about 20%. In some embodiments, the change in α-helix content is between about -20% to about 20%. In some embodiments, the change in turns content is between about -20% to about 20%. In some embodiments, the protein of interest is dissolved in PFH in the presence of PFOS, wherein the binding of the protein to the PFOS is 1:1. In some embodiments, , the protein of interest is dissolved in PFH in the presence of PFOS, wherein the binding of the protein to the PFOS is not 1:1. In some embodiments, the protein of interest is dissolved in PFH in the presence of PFOS, wherein the thermal stability of the protein is increased compared to the thermal stability of the protein of interest dissolved in an aqueous solvent. In some embodiments, the protein of interest is dissolved in PFH in the presence of PFOS, wherein the melting Attorney Docket No.148411.002502 PATENT temperature of the protein is increased by about 5 °C, 10 °C, 20 °C, 30 °C, or 40 °C compared to the melting temperature of the protein of interest in an aqueous solvent. In some embodiments, the protein of interest is active in an aqueous solvent at 25 °C, but is not active in an aqueous solvent at 75 °C, 80 °C, 85 °C, or 90 °C. In some embodiments, the protein of interest is active in an aqueous solvent at 25 °C, but the activity is reduced when the protein of interest is dissolved in an aqueous solvent at 75 °C, 80 °C, 85 °C, or 90 °C. In some embodiments, the activity is reduced by about 80% or by about 90%. In some embodiments, the protein of interest is dissolved in PFH in the presence of PFOS, wherein the protein of interest is active at 25 °C and is also active at 75 °C, 80 °C, 85 °C, or 90 °C. In some embodiments, the protein of interest is dissolved in PFH in the presence of PFOS, wherein the activity is reduced by about 1% to about 25% when the temperature is about 75 °C, 80 °C, 85 °C, or 90 °C, compared to when the temperature is about 25 °C. In some embodiments, the protein of interest is dissolved in PFH in the presence of PFOS, wherein the activity is increased by about 1% to about 25% when the temperature is about 75 °C, 80 °C, 85 °C, or 90 °C, compared to when the temperature is about 25 °C. In some embodiments, the protein of interest is dissolved in PFH in the presence of PFOS, wherein the protein comprises a reduced risk of contamination compared to when the protein is dissolved in an aqueous solvent. In some embodiments, the protein of interest is dissolved in PFH in the presence of PFOS, wherein the protein comprises a reduced risk of bacterial or viral contamination compared to when the protein is dissolved in PBS. In some embodiments, the protein of interest is dissolved in PFH in the presence of PFOS, wherein the protein comprises a reduced risk of E. coli contamination compared to when the protein is dissolved in PBS. In some embodiments, the dispersant compound comprises Formula VII: (Formula VII), wherein the formula is NH2CH2(CF2)ZCF3and z is 2, 6, or 7. In some embodiments, z is 2 (1H,1H-heptafluorobutylamine). In some embodiments, z is 6 (1H,1H- pentadecafluorooctylamine). In some embodiments, z is 7 (1H,1H-perfluorononylamine). In some embodiments, the dispersant compound comprises Compound 18. In some embodiments, Compound 18 comprises 1H,1H-heptafluorobutylamine. In some Attorney Docket No.148411.002502 PATENT embodiments, Compound 18 comprises the formula C4H4F7N. In some embodiments, the dispersant compound comprises Formula VII (NH2CH2(CF2)ZCF3), wherein z is 2 (NH2CH2(CF2)2CF3), and the compound is Compound 18 comprising 1H,1H- heptafluorobutylamine. In some embodiments, 1H,1H-heptafluorobutylamine is 2,2,3,3,4,4,4- heptafluorobutylamine. In some embodiments, the molecular weight of Compound 18 is about 199 g / mol, or about the molecular weight of 1H,1H-heptafluorobutylamine. In some embodiments, the fluorinated solvent is chosen from the group that includes perfluoropentane, perfluorohexane, perfluoroheptane, perfluorooctane, perfluoromethylcyclohexane, perfluoro-1-3-dimethylcyclohexane, or perfluorodecalin, and the perfluorinated dispersant compound comprises Compound 18. In some embodiments, the fluorinated solvent is perfluorohexane and the perfluorinated dispersant compound comprises Compound 18. In some embodiments, the fluorinated solvent is perfluorooctane and the perfluorinated dispersant compound comprises Compound 18. In some embodiments, the fluorinated solvent is perfluoropentane and the perfluorinated dispersant compound comprises Compound 18. In some embodiments, the fluorinated solvent is perfluoroheptane and the perfluorinated dispersant compound comprises Compound 18. In some embodiments, the fluorinated solvent is perfluoromethylcyclohexane and the perfluorinated dispersant compound comprises Compound 18. In some embodiments, the fluorinated solvent is perfluoro-1-3-dimethylcyclohexane and the perfluorinated dispersant compound comprises Compound 18. In some embodiments, the fluorinated solvent is perfluorodecalin and the perfluorinated dispersant compound comprises Compound 18. In some embodiments, the protein of interest is dispersed in perfluorohexane in the presence of Compound 18. In some embodiments, the protein of interest can include, but is not limited to, human hemoglobin (Hb), green fluorescent protein (GFP), bovine serum albumin (BSA), β-Galactosidase (β-Gal), rabbit serum immunoglobulin (IgG), bovine apo- transferrin (TFN), or urease (URE). In some embodiments, the protein of interest has a molecular weight of at least 5 kDa, 10 kDa, 15 kDa, 20 kDa, 25 kDa, 30 kDa, 35 kDa, 40 kDa, 45 kDa, 50 kDa, 55 kDa, 60 kDa, 65 kDa, 70 kDa, 75 kDa, 80 kDa, 85 kDa, 90 kDa, or 100 kDa. In some embodiments, the protein of interest has a molecular weight of about 27 kDa, 64.5 kDa, 66.5 kDa, 76 kDa, or 81 kDa. In some embodiments, the protein of interest has a molecular weight of at least 100 kDa, 110 kDa, 120 kDa, 130 kDa, 140 kDa, 150 kDa, 160 kDa, 170 kDa, 180 kDa, 190 kDa, or 200 kDa. In some embodiments, the protein of interest has a molecular weight of about 150 kDa. In some embodiments, the protein of interest has a molecular weight of at least 200 kDa, 250 kDa, 300 kDa, 350 kDa, 400 kDa, Attorney Docket No.148411.002502 PATENT 450 kDa, 500 kDa, 550 kDa, or 600 kDa. In some embodiments, the protein of interest has a molecular weight of about 464 kDa, 483 kDa, or 520 kDa. In some embodiments, the protein of interest is dispersed in perfluorohexane in the presence of Compound 18, wherein the molar ratio of Compound 18 is about 100:1, 200:1, 300:1, 400:1, 500:1, 600:1, 700:1, 800:1, 900:1, 1000:1, 1250:1, 1500:1, 1750:1, 2000:1, 2500:1, 3000:1, 4000:1, or 5000:1 with the protein of interest. In some embodiments, the protein of interest is dispersed in perfluorohexane in the presence of Compound 18, wherein the molar ratio of Compound 18 is about 1000:1 with the protein of interest. In some embodiments, the protein of interest phase separates when dispersed in perfluorohexane in the presence of Compound 18, but does not phase separate when dispersed in perfluorohexane in the absence of Compound 18. In some embodiments, the protein of interest phase separates when dispersed in perfluorohexane in the presence of Compound 18, wherein the dispersion efficiency is about 5%, 10%, 15%, 20%, 25%, 30%, or about 35%. In some embodiments, the dispersion efficiency is between about 5% and about 35%. In some embodiments, the dispersion efficiency is about 80%. In some embodiments, the dispersion efficiency is about 25%. In some embodiments, the dispersion efficiency is about 10%. In some embodiments, the dispersant compound comprises Compound 19. In some embodiments, Compound 19 comprises 1H,1H-pentadecafluorooctylamine. In some embodiments, Compound 19 comprises the formula C8H4F15N. In some embodiments, the dispersant compound comprises Formula VII (NH2CH2(CF2)ZCF3), wherein z is 6 (NH2CH2(CF2)6CF3), and the compound is Compound 19 comprising 1H,1H- pentadecafluorooctylamine. In some embodiments, 1H,1H-pentadecafluorooctylamine is 2,2,3,3,4,4,5,5,6,6,7,7,8,8,8-pentadecafluorooctan-1-amine. In some embodiments, the molecular weight of Compound 19 is about 399 g / mol, or about the molecular weight of 1H,1H-pentadecafluorooctylamine. In some embodiments, the fluorinated solvent is chosen from the group that includes perfluoropentane, perfluorohexane, perfluoroheptane, perfluorooctane, perfluoromethylcyclohexane, perfluoro-1-3-dimethylcyclohexane, or perfluorodecalin, and the perfluorinated dispersant compound comprises Compound 19. In some embodiments, the fluorinated solvent is perfluorohexane and the perfluorinated dispersant compound comprises Compound 19. In some embodiments, the fluorinated solvent is perfluorooctane and the perfluorinated dispersant compound comprises Compound 19. In some embodiments, the fluorinated solvent is perfluoropentane and the perfluorinated dispersant compound comprises Compound 19. In some embodiments, the fluorinated solvent is perfluoroheptane and the perfluorinated dispersant compound comprises Compound 19. In Attorney Docket No.148411.002502 PATENT some embodiments, the fluorinated solvent is perfluoromethylcyclohexane and the perfluorinated dispersant compound comprises Compound 19. In some embodiments, the fluorinated solvent is perfluoro-1-3-dimethylcyclohexane and the perfluorinated dispersant compound comprises Compound 19. In some embodiments, the fluorinated solvent is perfluorodecalin and the perfluorinated dispersant compound comprises Compound 19. In some embodiments, the protein of interest is dispersed in perfluorohexane in the presence of Compound 19. In some embodiments, the protein of interest can include, but is not limited to, human hemoglobin (Hb), green fluorescent protein (GFP), bovine serum albumin (BSA), β-Galactosidase (β-Gal), rabbit serum immunoglobulin (IgG), bovine apo- transferrin (TFN), or urease (URE). In some embodiments, the protein of interest has a molecular weight of at least 5 kDa, 10 kDa, 15 kDa, 20 kDa, 25 kDa, 30 kDa, 35 kDa, 40 kDa, 45 kDa, 50 kDa, 55 kDa, 60 kDa, 65 kDa, 70 kDa, 75 kDa, 80 kDa, 85 kDa, 90 kDa, or 100 kDa. In some embodiments, the protein of interest has a molecular weight of about 27 kDa, 64.5 kDa, 66.5 kDa, 76 kDa, or 81 kDa. In some embodiments, the protein of interest has a molecular weight of at least 100 kDa, 110 kDa, 120 kDa, 130 kDa, 140 kDa, 150 kDa, 160 kDa, 170 kDa, 180 kDa, 190 kDa, or 200 kDa. In some embodiments, the protein of interest has a molecular weight of about 150 kDa. In some embodiments, the protein of interest has a molecular weight of at least 200 kDa, 250 kDa, 300 kDa, 350 kDa, 400 kDa, 450 kDa, 500 kDa, 550 kDa, or 600 kDa. In some embodiments, the protein of interest has a molecular weight of about 464 kDa, 483 kDa, or 520 kDa. In some embodiments, the protein of interest is dispersed in perfluorohexane in the presence of Compound 19, wherein the molar ratio of Compound 19 is about 100:1, 200:1, 300:1, 400:1, 500:1, 600:1, 700:1, 800:1, 900:1, 1000:1, 1250:1, 1500:1, 1750:1, 2000:1, 2500:1, 3000:1, 4000:1, or 5000:1 with the protein of interest. In some embodiments, the protein of interest is dispersed in perfluorohexane in the presence of Compound 19, wherein the molar ratio of Compound 19 is about 1000:1 with the protein of interest. In some embodiments, the protein of interest phase separates when dispersed in perfluorohexane in the presence of Compound 19, but does not phase separate when dispersed in perfluorohexane in the absence of Compound 19. In some embodiments, the protein of interest phase separates when dispersed in perfluorohexane in the presence of Compound 19, wherein the dispersion efficiency is about 5%, 10%, 15%, 20%, or about 25%. In some embodiments, the dispersion efficiency is between about 5% and about 25%. In some embodiments, the dispersion efficiency is about 10%. In some embodiments, the dispersant compound comprises Compound 20. In some embodiments, Compound 20 comprises 1H,1H-perfluorononylamine. In some embodiments, Attorney Docket No.148411.002502 PATENT Compound 20 comprises the formula C9H4F17N. In some embodiments, the dispersant compound comprises Formula VII (NH2CH2(CF2)ZCF3), wherein z is 7 (NH2CH2(CF2)7CF3), and the compound is Compound 20 comprising 1H,1H-perfluorononylamine. In some embodiments, 1H,1H-perfluorononylamine is 2,2,3,3,4,4,5,5,6,6,7,7,8,8,9,9,9- heptadecafluorononan-1-amine. In some embodiments, the molecular weight of Compound 20 is about 449 g / mol, or about the molecular weight of 1H,1H-perfluorononylamine. In some embodiments, the fluorinated solvent is chosen from the group that includes perfluoropentane, perfluorohexane, perfluoroheptane, perfluorooctane, perfluoromethylcyclohexane, perfluoro-1-3-dimethylcyclohexane, or perfluorodecalin, and the perfluorinated dispersant compound comprises Compound 20. In some embodiments, the fluorinated solvent is perfluorohexane and the perfluorinated dispersant compound comprises Compound 20. In some embodiments, the fluorinated solvent is perfluorooctane and the perfluorinated dispersant compound comprises Compound 20. In some embodiments, the fluorinated solvent is perfluoropentane and the perfluorinated dispersant compound comprises Compound 20. In some embodiments, the fluorinated solvent is perfluoroheptane and the perfluorinated dispersant compound comprises Compound 20. In some embodiments, the fluorinated solvent is perfluoromethylcyclohexane and the perfluorinated dispersant compound comprises Compound 20. In some embodiments, the fluorinated solvent is perfluoro-1-3-dimethylcyclohexane and the perfluorinated dispersant compound comprises Compound 20. In some embodiments, the fluorinated solvent is perfluorodecalin and the perfluorinated dispersant compound comprises Compound 20. In some embodiments, the protein of interest is dispersed in perfluorohexane in the presence of Compound 20. In some embodiments, the protein of interest can include, but is not limited to, human hemoglobin (Hb), green fluorescent protein (GFP), bovine serum albumin (BSA), β-Galactosidase (β-Gal), rabbit serum immunoglobulin (IgG), bovine apo- transferrin (TFN), or urease (URE). In some embodiments, the protein of interest has a molecular weight of at least 5 kDa, 10 kDa, 15 kDa, 20 kDa, 25 kDa, 30 kDa, 35 kDa, 40 kDa, 45 kDa, 50 kDa, 55 kDa, 60 kDa, 65 kDa, 70 kDa, 75 kDa, 80 kDa, 85 kDa, 90 kDa, or 100 kDa. In some embodiments, the protein of interest has a molecular weight of about 27 kDa, 64.5 kDa, 66.5 kDa, 76 kDa, or 81 kDa. In some embodiments, the protein of interest has a molecular weight of at least 100 kDa, 110 kDa, 120 kDa, 130 kDa, 140 kDa, 150 kDa, 160 kDa, 170 kDa, 180 kDa, 190 kDa, or 200 kDa. In some embodiments, the protein of interest has a molecular weight of about 150 kDa. In some embodiments, the protein of interest has a molecular weight of at least 200 kDa, 250 kDa, 300 kDa, 350 kDa, 400 kDa, Attorney Docket No.148411.002502 PATENT 450 kDa, 500 kDa, 550 kDa, or 600 kDa. In some embodiments, the protein of interest has a molecular weight of about 464 kDa, 483 kDa, or 520 kDa. In some embodiments, the protein of interest is dispersed in perfluorohexane in the presence of Compound 20, wherein the molar ratio of Compound 20 is about 100:1, 200:1, 300:1, 400:1, 500:1, 600:1, 700:1, 800:1, 900:1, 1000:1, 1250:1, 1500:1, 1750:1, 2000:1, 2500:1, 3000:1, 4000:1, or 5000:1 with the protein of interest. In some embodiments, the protein of interest is dispersed in perfluorohexane in the presence of Compound 20, wherein the molar ratio of Compound 20 is about 1000:1 with the protein of interest. In some embodiments, the protein of interest phase separates when dispersed in perfluorohexane in the presence of Compound 20, but does not phase separate when dispersed in perfluorohexane in the absence of Compound 20. In some embodiments, the protein of interest phase separates when dispersed in perfluorohexane in the presence of Compound 20, wherein the dispersion efficiency is about 5%, 10%, 15%, 20%, 25%, 30%, 35%, 40%, 45%, 50%, 55%, or about 60%. In some embodiments, the dispersion efficiency is between about 5% and about 60%. In some embodiments, the dispersion efficiency is about 50%. In some embodiments, the dispersion efficiency is about 25%. In some embodiments, the dispersion efficiency is about 10%. In some embodiments, the dispersant compound comprises Formula VIII: (Formula VIII), wherein the formula is C5H8 wherein R1is C6F13, C8F17, or C4F9, and wherein R2 is CN, H, or COOH. In some embodiments, the dispersant compound based on Formula VIII is chosen from: 2,2-(1,1,1,2,2,3,3,4,4,5,5,6,6-tridecafluorooctane)-2- cyanoacetic acid, 2,2-(1,1,1,2,2,3,3,4,4,5,5,6,6-tridecafluorooctane)-2-acetic acid, 2,2- (1,1,1,2,2,3,3,4,4,5,5,6,6,7,7,8,8-heptadecafluorodecane)-2-cyanoacetic acid, 2,2- (1,1,1,2,2,3,3,4,4,5,5,6,6,7,7,8,8-heptadecafluorodecane)-acetic acid, 2,2-(1,1,1,2,2,3,3,4,4- nonafluorohexane)-2-cyanoacetic acid, 2,2-(1,1,1,2,2,3,3,4,4-nonafluorohexane)-2-acetic acid, 2,2-(1,1,1,2,2,3,3,4,4-nonafluorohexane)-2-diacetic acid, 2,2-(1,1,1,2,2,3,3,4,4,5,5,6,6- tridecafluorooctane)-2-diacetic acid, or 2,2-(1,1,1,2,2,3,3,4,4,5,5,6,6,7,7,8,8- heptadecafluorodecane)-2-diacetic acid. In some embodiments, the dispersant compound comprises Compound 21, wherein the formula is based on Formula VIII, and wherein R1is C6F13and R2is CN. In some embodiments, the dispersant compound comprises Compound 22, wherein the formula is Attorney Docket No.148411.002502 PATENT based on Formula VIII, and wherein R1is C6F13and R2is H. In some embodiments, the dispersant compound comprises Compound 23, wherein the formula is based on Formula VIII, and wherein R1is C8F17and R2is CN. In some embodiments, the dispersant compound comprises Compound 24, wherein the formula is based on Formula VIII, and wherein R1is C8F17 and R2 is CN. In some embodiments, the dispersant compound comprises Compound 25, wherein the formula is based on Formula VIII, and wherein R1is C4F9and R2is CN. In some embodiments, the dispersant compound comprises Compound 26, wherein the formula is based on Formula VIII, and wherein R1is C4F9and R2is H. In some embodiments, the dispersant compound comprises Compound 27, wherein the formula is based on Formula VIII, and wherein R1is C4F9and R2is COOH. In some embodiments, the dispersant compound comprises Compound 28, wherein the formula is based on Formula VIII, and wherein R1is C6F13and R2is COOH. In some embodiments, the dispersant compound comprises Compound 29, wherein the formula is based on Formula VIII, and wherein R1 is C8F17 and R2 is COOH. In some embodiments, the perfluorinated dispersant compound comprises a chemical name chosen from the group described in Table 3, where R1_Extended comprises the chemical group R1_Extended chosen from the group described in Table 4. In some embodiments, the dispersant compound comprises Formula VIII_B: , wherein the formula is is C8H5F13, C10H5F17, or C6H5F9, and wherein R2is CN, H, or COOH. In some embodiments, the dispersant compound comprises Compound 21, wherein the formula is based on Formula VIII_B, and wherein R1_Extended is C8H5F13and R2is CN. In some embodiments, the dispersant compound comprises Compound 22, wherein the formula is based on Formula VIII_B, and wherein R1_Extended is C8H5F13 and R2 is H. In some embodiments, the dispersant compound comprises Compound 23, wherein the formula is based on Formula VIII_B, and wherein R1_Extended is C10H5F17 and R2 is CN. In some embodiments, the dispersant compound comprises Compound 24, wherein the formula is based on Formula VIII_B, and wherein R1_Extended is C10H5F17 and R2 is CN. In some embodiments, the dispersant compound comprises Compound 25, wherein the formula is based on Formula VIII_B, and wherein R1_Extended is C6H5F9 and R2 is CN. In some embodiments, the dispersant compound comprises Compound 26, wherein the formula is based on Formula Attorney Docket No.148411.002502 PATENT VIII_B, and wherein R1_Extended is C6H5F9and R2is H. In some embodiments, the dispersant compound comprises Compound 27, wherein the formula is based on Formula VIII_B, and wherein R1_Extended is C6H5F9and R2is COOH. In some embodiments, the dispersant compound comprises Compound 28, wherein the formula is based on Formula VIII_B, and wherein R1_Extended is C8H5F13 and R2 is COOH. In some embodiments, the dispersant compound comprises Compound 29, wherein the formula is based on Formula VIII_B, and wherein R1_Extended is C10H5F17 and R2 is COOH. In some embodiments, the Compound 21 comprises a chemical group R1, wherein R1 is C6F13. In some embodiments, the Compound 21 comprises two chemical groups R1, wherein R1 is C6F13. In some embodiments, the Compound 21 comprises the group R2, wherein R2 is CN. In some embodiments, the Compound 21 comprises two chemical groups R1, wherein R1 is C6F13, and additionally comprises the group R2, wherein R2is CN. In some embodiments, Compound 21 comprises Formula VIII: (Formula VIII), wherein the formula is C5H8 wherein R1is C6F13, and wherein R2is CN. In some embodiments, the Compound 21 comprises a chemical group R1_Extended, wherein R1_Extended is C8H5F13. In some embodiments, the Compound 21 comprises two chemical groups R1_Extended, wherein R1_Extended is C8H5F13. In some embodiments, the Compound 21 comprises two chemical groups R1_Extended, wherein R1_Extended is C8H5F13, and additionally comprises the group R2, wherein R2 is CN. In some embodiments, Compound 21 comprises Formula VIII_B: (Formula VIII_B), wherein the formula is 2(R2)COOH, wherein R1_Extended is C8H5F13 and wherein R2is CN. In some embodiments, Compound 21 comprises the chemical formula 2,2- (R1_Extended)-2-cyanoacetic acid, wherein R1_Extended is the chemical group 1,1,1,2,2,3,3,4,4,5,5,6,6-tridecafluorooctane. In some embodiments, Compound 21 comprises 2,2-(1,1,1,2,2,3,3,4,4,5,5,6,6-tridecafluorooctane)-2-cyanoacetic acid. In some embodiments, the fluorinated solvent is chosen from the group that includes perfluoropentane, perfluorohexane, perfluoroheptane, perfluorooctane, Attorney Docket No.148411.002502 PATENT perfluoromethylcyclohexane, perfluoro-1-3-dimethylcyclohexane, or perfluorodecalin, and the perfluorinated dispersant compound comprises Compound 21. In some embodiments, the fluorinated solvent is perfluorohexane and the perfluorinated dispersant compound comprises Compound 21. In some embodiments, the fluorinated solvent is perfluorooctane and the perfluorinated dispersant compound comprises Compound 21. In some embodiments, the fluorinated solvent is perfluoropentane and the perfluorinated dispersant compound comprises Compound 21. In some embodiments, the fluorinated solvent is perfluoroheptane and the perfluorinated dispersant compound comprises Compound 21. In some embodiments, the fluorinated solvent is perfluoromethylcyclohexane and the perfluorinated dispersant compound comprises Compound 21. In some embodiments, the fluorinated solvent is perfluoro-1-3-dimethylcyclohexane and the perfluorinated dispersant compound comprises Compound 21. In some embodiments, the fluorinated solvent is perfluorodecalin and the perfluorinated dispersant compound comprises Compound 21. In some embodiments, the protein of interest is dispersed in perfluorohexane in the presence of Compound 21. In some embodiments, the protein of interest can include, but is not limited to, human hemoglobin (Hb), green fluorescent protein (GFP), bovine serum albumin (BSA), β-Galactosidase (β-Gal), rabbit serum immunoglobulin (IgG), bovine apo- transferrin (TFN), or urease (URE). In some embodiments, the protein of interest has a molecular weight of at least 5 kDa, 10 kDa, 15 kDa, 20 kDa, 25 kDa, 30 kDa, 35 kDa, 40 kDa, 45 kDa, 50 kDa, 55 kDa, 60 kDa, 65 kDa, 70 kDa, 75 kDa, 80 kDa, 85 kDa, 90 kDa, or 100 kDa. In some embodiments, the protein of interest has a molecular weight of about 27 kDa, 64.5 kDa, 66.5 kDa, 76 kDa, or 81 kDa. In some embodiments, the protein of interest has a molecular weight of at least 100 kDa, 110 kDa, 120 kDa, 130 kDa, 140 kDa, 150 kDa, 160 kDa, 170 kDa, 180 kDa, 190 kDa, or 200 kDa. In some embodiments, the protein of interest has a molecular weight of about 150 kDa. In some embodiments, the protein of interest has a molecular weight of at least 200 kDa, 250 kDa, 300 kDa, 350 kDa, 400 kDa, 450 kDa, 500 kDa, 550 kDa, or 600 kDa. In some embodiments, the protein of interest has a molecular weight of about 464 kDa, 483 kDa, or 520 kDa. In some embodiments, the protein of interest is dispersed in perfluorohexane in the presence of Compound 21, wherein the molar ratio of Compound 21 is about 100:1, 200:1, 300:1, 400:1, 500:1, 600:1, 700:1, 800:1, 900:1, 1000:1, 1250:1, 1500:1, 1750:1, 2000:1, 2500:1, 3000:1, 4000:1, or 5000:1 with the protein of interest. In some embodiments, the protein of interest is dispersed in perfluorohexane in the presence of Compound 21, wherein the molar ratio of Compound 21 is about 1000:1 with the protein of interest. In some embodiments, the protein of interest Attorney Docket No.148411.002502 PATENT phase separates when dispersed in perfluorohexane in the presence of Compound 21, but does not phase separate when dispersed in perfluorohexane in the absence of Compound 21. In some embodiments, the protein of interest phase separates when dispersed in perfluorohexane in the presence of Compound 21, wherein the dispersion efficiency is about 5%, 10%, 15%, 20%, 25%, 30%, 35%, 40%, 45%, 50%, 55%, 60%, 65%, 70%, 75%, 80%, 85%, 90%, 95%, or about 100%. In some embodiments, the dispersion efficiency is between about 5% and about 100%. In some embodiments, the dispersion efficiency is about 100%. In some embodiments, the dispersion efficiency is at least about 50%. In some embodiments, the dispersion efficiency is at least about 40%. In some embodiments, the dispersion efficiency is at least about 25%. In some embodiments, the dispersant compound comprises Compound 22. In some embodiments, the Compound 22 comprises a chemical group R1, wherein R1 is C6F13. In some embodiments, the Compound 22 comprises two chemical groups R1, wherein R1 is C6F13. In some embodiments, the Compound 22 comprises the group R2, wherein R2 is CN. In some embodiments, the Compound 22 comprises two chemical groups R1, wherein R1 is C6F13, and additionally comprises the group R2, wherein R2 is H. In some embodiments, Compound 22 comprises Formula VIII: (Formula VIII), wherein the formula is C5H8 wherein R1is C6F13, and wherein R2is H. In some embodiments, the Compound 22 comprises a chemical group R1_Extended, wherein R1_Extended is C8H5F13. In some embodiments, the Compound 22 comprises two chemical groups R1_Extended, wherein R1_Extended is C8H5F13. In some embodiments, the Compound 22 comprises two chemical groups R1_Extended, wherein R1_Extended is C8H5F13, and additionally comprises the group R2, wherein R2is H. In some embodiments, Compound 22 comprises Formula VIII_B: (Formula VIII_B), wherein the formula is 2(R2)COOH, wherein R1_Extended is C8H5F13 and wherein R2 is H. In some embodiments, Compound 22 comprises the chemical formula 2,2- (R1_Extended)-2-acetic acid, wherein R1_Extended is the chemical group Attorney Docket No.148411.002502 PATENT 1,1,1,2,2,3,3,4,4,5,5,6,6-tridecafluorooctane. In some embodiments, Compound 22 comprises 2,2-(1,1,1,2,2,3,3,4,4,5,5,6,6-tridecafluorooctane)-2-acetic acid. In some embodiments, the fluorinated solvent is chosen from the group that includes perfluoropentane, perfluorohexane, perfluoroheptane, perfluorooctane, perfluoromethylcyclohexane, perfluoro-1-3-dimethylcyclohexane, or perfluorodecalin, and the perfluorinated dispersant compound comprises Compound 22. In some embodiments, the fluorinated solvent is perfluorohexane and the perfluorinated dispersant compound comprises Compound 22. In some embodiments, the fluorinated solvent is perfluorooctane and the perfluorinated dispersant compound comprises Compound 22. In some embodiments, the fluorinated solvent is perfluoropentane and the perfluorinated dispersant compound comprises Compound 22. In some embodiments, the fluorinated solvent is perfluoroheptane and the perfluorinated dispersant compound comprises Compound 22. In some embodiments, the fluorinated solvent is perfluoromethylcyclohexane and the perfluorinated dispersant compound comprises Compound 22. In some embodiments, the fluorinated solvent is perfluoro-1-3-dimethylcyclohexane and the perfluorinated dispersant compound comprises Compound 22. In some embodiments, the fluorinated solvent is perfluorodecalin and the perfluorinated dispersant compound comprises Compound 22. In some embodiments, the fluorinated solvent is perfluorohexane and the dispersant compound is perfluoronanonic acid. In some embodiments, the fluorinated solvent is perfluorooctane and the dispersant compound is perfluoronanonic acid. In some embodiments, the fluorinated solvent is perfluorohexane and the dispersant compound comprises Formula VIII: (Formula VIII), wherein R1is C6F13and R2is is Compound 22. In some embodiments, the fluorinated solvent is perfluorooctane and the dispersant compound comprises Formula VIII: (Formula VIII), wherein R1 is C6F13 and R2 is is Compound 22. Attorney Docket No.148411.002502 PATENT In some embodiments, the protein of interest is dispersed in perfluorohexane in the presence of Compound 22. In some embodiments, the protein of interest can include, but is not limited to, human hemoglobin (Hb), green fluorescent protein (GFP), bovine serum albumin (BSA), β-Galactosidase (β-Gal), rabbit serum immunoglobulin (IgG), bovine apo- transferrin (TFN), or urease (URE). In some embodiments, the protein of interest has a molecular weight of at least 5 kDa, 10 kDa, 15 kDa, 20 kDa, 25 kDa, 30 kDa, 35 kDa, 40 kDa, 45 kDa, 50 kDa, 55 kDa, 60 kDa, 65 kDa, 70 kDa, 75 kDa, 80 kDa, 85 kDa, 90 kDa, or 100 kDa. In some embodiments, the protein of interest has a molecular weight of about 27 kDa, 64.5 kDa, 66.5 kDa, 76 kDa, or 81 kDa. In some embodiments, the protein of interest has a molecular weight of at least 100 kDa, 110 kDa, 120 kDa, 130 kDa, 140 kDa, 150 kDa, 160 kDa, 170 kDa, 180 kDa, 190 kDa, or 200 kDa. In some embodiments, the protein of interest has a molecular weight of about 150 kDa. In some embodiments, the protein of interest has a molecular weight of at least 200 kDa, 250 kDa, 300 kDa, 350 kDa, 400 kDa, 450 kDa, 500 kDa, 550 kDa, or 600 kDa. In some embodiments, the protein of interest has a molecular weight of about 464 kDa, 483 kDa, or 520 kDa. In some embodiments, the protein of interest is dispersed in perfluorohexane in the presence of Compound 22, wherein the molar ratio of Compound 22 is about 100:1, 200:1, 300:1, 400:1, 500:1, 600:1, 700:1, 800:1, 900:1, 1000:1, 1250:1, 1500:1, 1750:1, 2000:1, 2500:1, 3000:1, 4000:1, or 5000:1 with the protein of interest. In some embodiments, the protein of interest is dispersed in perfluorohexane in the presence of Compound 22, wherein the molar ratio of Compound 22 is about 1000:1 with the protein of interest. In some embodiments, the protein of interest phase separates when dispersed in perfluorohexane in the presence of Compound 22, but does not phase separate when dispersed in perfluorohexane in the absence of Compound 22. In some embodiments, the protein of interest phase separates when dispersed in perfluorohexane in the presence of Compound 22, wherein the dispersion efficiency is about 5%, 10%, 15%, 20%, 25%, 30%, 35%, 40%, 45%, 50%, 55%, 60%, 65%, 70%, 75%, 80%, 85%, 90%, 95%, or about 100%. In some embodiments, the dispersion efficiency is between about 5% and about 100%. In some embodiments, the dispersion efficiency is about 100%. In some embodiments, the dispersion efficiency is at least about 90%. In some embodiments, the dispersion efficiency is at least about 50%. In some embodiments, the dispersion efficiency is at least about 25%. In some embodiments, the dispersant compound comprises Compound 23. In some embodiments, the Compound 23 comprises a chemical group R1, wherein R1 is C8F17. In some embodiments, the Compound 23 comprises two chemical groups R1, wherein R1 is Attorney Docket No.148411.002502 PATENT C8F17. In some embodiments, the Compound 23 comprises the group R2, wherein R2is CN. In some embodiments, the Compound 23 comprises two chemical groups R1, wherein R1 is C8F17, and additionally comprises the group R2, wherein R2is CN. In some embodiments, Compound 23 comprises Formula VIII: (Formula VIII), wherein the formula is C5H8wherein R1is C8F17, and wherein R2is CN. In some embodiments, the Compound 23 comprises a chemical group R1_Extended, wherein R1_Extended is C10H5F17. In some embodiments, the Compound 23 comprises two chemical groups R1_Extended, wherein R1_Extended is C10H5F17. In some embodiments, the Compound 23 comprises two chemical groups R1_Extended, wherein R1_Extended is C10H5F17, and additionally comprises the group R2, wherein R2is CN. In some embodiments, Compound 23 comprises Formula VIII_B: (Formula VIII_B), wherein the formula is 2(R2)COOH, wherein R1_Extended is C10H5F17 and wherein R2is CN. In some embodiments, Compound 23 comprises the chemical formula 2,2- (R1_Extended)-2-cyanoacetic acid, wherein R1_Extended is the chemical group 1,1,1,2,2,3,3,4,4,5,5,6,6,7,7,8,8-heptadecafluorodecane. In some embodiments, Compound 23 comprises 2,2-(1,1,1,2,2,3,3,4,4,5,5,6,6,7,7,8,8-heptadecafluorodecane)-2-cyanoacetic acid. In some embodiments, the fluorinated solvent is chosen from the group that includes perfluoropentane, perfluorohexane, perfluoroheptane, perfluorooctane, perfluoromethylcyclohexane, perfluoro-1-3-dimethylcyclohexane, or perfluorodecalin, and the perfluorinated dispersant compound comprises Compound 23. In some embodiments, the fluorinated solvent is perfluorohexane and the perfluorinated dispersant compound comprises Compound 23. In some embodiments, the fluorinated solvent is perfluorooctane and the perfluorinated dispersant compound comprises Compound 23. In some embodiments, the fluorinated solvent is perfluoropentane and the perfluorinated dispersant compound comprises Compound 23. In some embodiments, the fluorinated solvent is perfluoroheptane and the perfluorinated dispersant compound comprises Compound 23. In some embodiments, the fluorinated solvent is perfluoromethylcyclohexane and the perfluorinated dispersant Attorney Docket No.148411.002502 PATENT compound comprises Compound 23. In some embodiments, the fluorinated solvent is perfluoro-1-3-dimethylcyclohexane and the perfluorinated dispersant compound comprises Compound 23. In some embodiments, the fluorinated solvent is perfluorodecalin and the perfluorinated dispersant compound comprises Compound 23. In some embodiments, the protein of interest is dispersed in perfluorohexane in the presence of Compound 23. In some embodiments, the protein of interest can include, but is not limited to, human hemoglobin (Hb), green fluorescent protein (GFP), bovine serum albumin (BSA), β-Galactosidase (β-Gal), rabbit serum immunoglobulin (IgG), bovine apo- transferrin (TFN), or urease (URE). In some embodiments, the protein of interest has a molecular weight of at least 5 kDa, 10 kDa, 15 kDa, 20 kDa, 25 kDa, 30 kDa, 35 kDa, 40 kDa, 45 kDa, 50 kDa, 55 kDa, 60 kDa, 65 kDa, 70 kDa, 75 kDa, 80 kDa, 85 kDa, 90 kDa, or 100 kDa. In some embodiments, the protein of interest has a molecular weight of about 27 kDa, 64.5 kDa, 66.5 kDa, 76 kDa, or 81 kDa. In some embodiments, the protein of interest has a molecular weight of at least 100 kDa, 110 kDa, 120 kDa, 130 kDa, 140 kDa, 150 kDa, 160 kDa, 170 kDa, 180 kDa, 190 kDa, or 200 kDa. In some embodiments, the protein of interest has a molecular weight of about 150 kDa. In some embodiments, the protein of interest has a molecular weight of at least 200 kDa, 250 kDa, 300 kDa, 350 kDa, 400 kDa, 450 kDa, 500 kDa, 550 kDa, or 600 kDa. In some embodiments, the protein of interest has a molecular weight of about 464 kDa, 483 kDa, or 520 kDa. In some embodiments, the protein of interest is dispersed in perfluorohexane in the presence of Compound 23, wherein the molar ratio of Compound 23 is about 100:1, 200:1, 300:1, 400:1, 500:1, 600:1, 700:1, 800:1, 900:1, 1000:1, 1250:1, 1500:1, 1750:1, 2000:1, 2500:1, 3000:1, 4000:1, or 5000:1 with the protein of interest. In some embodiments, the protein of interest is dispersed in perfluorohexane in the presence of Compound 23, wherein the molar ratio of Compound 23 is about 1000:1 with the protein of interest. In some embodiments, the protein of interest phase separates when dispersed in perfluorohexane in the presence of Compound 23, but does not phase separate when dispersed in perfluorohexane in the absence of Compound 23. In some embodiments, the protein of interest phase separates when dispersed in perfluorohexane in the presence of Compound 23, wherein the dispersion efficiency is about 5%, 10%, 15%, 20%, 25%, 30%, 35%, 40%, 45%, 50%, 55%, 60%, 65%, 70%, 75%, 80%, 85%, 90%, 95%, or about 100%. In some embodiments, the dispersion efficiency is between about 5% and about 100%. In some embodiments, the dispersion efficiency is about 100%. In some embodiments, the dispersion efficiency is at least about 80%. In some embodiments, the Attorney Docket No.148411.002502 PATENT dispersion efficiency is at least about 50%. In some embodiments, the dispersion efficiency is at least about 25%. In some embodiments, the dispersion efficiency is at least about 15%. In some embodiments, the dispersant compound comprises Compound 24. In some embodiments, the Compound 24 comprises a chemical group R1, wherein R1 is C8F17. In some embodiments, the Compound 24 comprises two chemical groups R1, wherein R1 is C8F17. In some embodiments, the Compound 24 comprises the group R2, wherein R2is CN. In some embodiments, the Compound 24 comprises two chemical groups R1, wherein R1 is C8F17, and additionally comprises the group R2, wherein R2is H. In some embodiments, Compound 24 comprises Formula VIII: (Formula VIII), wherein the formula is C5H8wherein R1is C8F17, and wherein R2 is H. In some embodiments, the Compound 24 comprises a chemical group R1_Extended, wherein R1_Extended is C10H5F17. In some embodiments, the Compound 24 comprises two chemical groups R1_Extended, wherein R1_Extended is C10H5F17. In some embodiments, the Compound 24 comprises two chemical groups R1_Extended, wherein R1_Extended is C10H5F17, and additionally comprises the group R2, wherein R2 is H. In some embodiments, Compound 24 comprises Formula VIII_B: (Formula VIII_B), wherein the formula is 2(R2)COOH, wherein R1_Extended is C10H5F17 and wherein R2is H. In some embodiments, Compound 24 comprises the chemical formula 2,2- (R1_Extended)-2-acetic acid, wherein R1_Extended is the chemical group 1,1,1,2,2,3,3,4,4,5,5,6,6,7,7,8,8-heptadecafluorodecane. In some embodiments, Compound 24 comprises 2,2-(1,1,1,2,2,3,3,4,4,5,5,6,6,7,7,8,8-heptadecafluorodecane)-acetic acid. In some embodiments, the fluorinated solvent is chosen from the group that includes perfluoropentane, perfluorohexane, perfluoroheptane, perfluorooctane, perfluoromethylcyclohexane, perfluoro-1-3-dimethylcyclohexane, or perfluorodecalin, and the perfluorinated dispersant compound comprises Compound 24. In some embodiments, the fluorinated solvent is perfluorohexane and the perfluorinated dispersant compound comprises Compound 24. In some embodiments, the fluorinated solvent is perfluorooctane and the Attorney Docket No.148411.002502 PATENT perfluorinated dispersant compound comprises Compound 24. In some embodiments, the fluorinated solvent is perfluoropentane and the perfluorinated dispersant compound comprises Compound 24. In some embodiments, the fluorinated solvent is perfluoroheptane and the perfluorinated dispersant compound comprises Compound 24. In some embodiments, the fluorinated solvent is perfluoromethylcyclohexane and the perfluorinated dispersant compound comprises Compound 24. In some embodiments, the fluorinated solvent is perfluoro-1-3-dimethylcyclohexane and the perfluorinated dispersant compound comprises Compound 24. In some embodiments, the fluorinated solvent is perfluorodecalin and the perfluorinated dispersant compound comprises Compound 24. In some embodiments, the protein of interest is dispersed in perfluorohexane in the presence of Compound 24. In some embodiments, the protein of interest can include, but is not limited to, human hemoglobin (Hb), green fluorescent protein (GFP), bovine serum albumin (BSA), β-Galactosidase (β-Gal), rabbit serum immunoglobulin (IgG), bovine apo- transferrin (TFN), or urease (URE). In some embodiments, the protein of interest has a molecular weight of at least 5 kDa, 10 kDa, 15 kDa, 20 kDa, 25 kDa, 30 kDa, 35 kDa, 40 kDa, 45 kDa, 50 kDa, 55 kDa, 60 kDa, 65 kDa, 70 kDa, 75 kDa, 80 kDa, 85 kDa, 90 kDa, or 100 kDa. In some embodiments, the protein of interest has a molecular weight of about 27 kDa, 64.5 kDa, 66.5 kDa, 76 kDa, or 81 kDa. In some embodiments, the protein of interest has a molecular weight of at least 100 kDa, 110 kDa, 120 kDa, 130 kDa, 140 kDa, 150 kDa, 160 kDa, 170 kDa, 180 kDa, 190 kDa, or 200 kDa. In some embodiments, the protein of interest has a molecular weight of about 150 kDa. In some embodiments, the protein of interest has a molecular weight of at least 200 kDa, 250 kDa, 300 kDa, 350 kDa, 400 kDa, 450 kDa, 500 kDa, 550 kDa, or 600 kDa. In some embodiments, the protein of interest has a molecular weight of about 464 kDa, 483 kDa, or 520 kDa. In some embodiments, the protein of interest is dispersed in perfluorohexane in the presence of Compound 24, wherein the molar ratio of Compound 24 is about 100:1, 200:1, 300:1, 400:1, 500:1, 600:1, 700:1, 800:1, 900:1, 1000:1, 1250:1, 1500:1, 1750:1, 2000:1, 2500:1, 3000:1, 4000:1, or 5000:1 with the protein of interest. In some embodiments, the protein of interest is dispersed in perfluorohexane in the presence of Compound 24, wherein the molar ratio of Compound 24 is about 1000:1 with the protein of interest. In some embodiments, the protein of interest phase separates when dispersed in perfluorohexane in the presence of Compound 24, but does not phase separate when dispersed in perfluorohexane in the absence of Compound 24. In some embodiments, the protein of interest phase separates when dispersed in perfluorohexane in the presence of Compound 24, wherein the dispersion efficiency is about 5%, 10%, 15%, Attorney Docket No.148411.002502 PATENT 20%, 25%, 30%, 35%, 40%, 45%, 50%, 55%, 60%, 65%, 70%, 75%, 80%, 85%, 90%, 95%, or about 100%. In some embodiments, the dispersion efficiency is between about 5% and about 100%. In some embodiments, the dispersion efficiency is about 100%. In some embodiments, the dispersion efficiency is at least about 80%. In some embodiments, the dispersion efficiency is at least about 50%. In some embodiments, the dispersion efficiency is at least about 25%. In some embodiments, the dispersion efficiency is at least about 15%. In some embodiments, the dispersant compound comprises Compound 25. In some embodiments, the Compound 25 comprises a chemical group R1, wherein R1 is C4F9. In some embodiments, the Compound 25 comprises two chemical groups R1, wherein R1 is C4F9. In some embodiments, the Compound 25 comprises the group R2, wherein R2is CN. In some embodiments, the Compound 25 comprises two chemical groups R1, wherein R1 is C4F9, and additionally comprises the group R2, wherein R2is CN. In some embodiments, Compound 25 comprises Formula VIII: (Formula VIII), wherein the formula is C5H8 wherein R1is C4F9, and wherein R2is CN. In some embodiments, the Compound 25 comprises a chemical group R1_Extended, wherein R1_Extended is C6H5F9. In some embodiments, the Compound 25 comprises two chemical groups R1_Extended, wherein R1_Extended is C6H5F9. In some embodiments, the Compound 25 comprises two chemical groups R1_Extended, wherein R1_Extended is C6H5F9, and additionally comprises the group R2, wherein R2 is CN. In some embodiments, Compound 25 comprises Formula VIII_B: (Formula VIII_B), wherein the formula is 2(R2)COOH, wherein R1_Extended is C6H5F9 and wherein R2is CN. In some embodiments, Compound 25 comprises the chemical formula 2,2- (R1_Extended)-2-cyanoacetic acid, wherein R1_Extended is the chemical group 1,1,1,2,2,3,3,4,4-nonafluorohexane. In some embodiments, Compound 25 comprises 2,2- (1,1,1,2,2,3,3,4,4-nonafluorohexane)-2-cyanoacetic acid. In some embodiments, the fluorinated solvent is chosen from the group that includes perfluoropentane, perfluorohexane, perfluoroheptane, perfluorooctane, Attorney Docket No.148411.002502 PATENT perfluoromethylcyclohexane, perfluoro-1-3-dimethylcyclohexane, or perfluorodecalin, and the perfluorinated dispersant compound comprises Compound 25. In some embodiments, the fluorinated solvent is perfluorohexane and the perfluorinated dispersant compound comprises Compound 25. In some embodiments, the fluorinated solvent is perfluorooctane and the perfluorinated dispersant compound comprises Compound 25. In some embodiments, the fluorinated solvent is perfluoropentane and the perfluorinated dispersant compound comprises Compound 25. In some embodiments, the fluorinated solvent is perfluoroheptane and the perfluorinated dispersant compound comprises Compound 25. In some embodiments, the fluorinated solvent is perfluoromethylcyclohexane and the perfluorinated dispersant compound comprises Compound 25. In some embodiments, the fluorinated solvent is perfluoro-1-3-dimethylcyclohexane and the perfluorinated dispersant compound comprises Compound 25. In some embodiments, the fluorinated solvent is perfluorodecalin and the perfluorinated dispersant compound comprises Compound 25. In some embodiments, the protein of interest is dispersed in perfluorohexane in the presence of Compound 25. In some embodiments, the protein of interest can include, but is not limited to, human hemoglobin (Hb), green fluorescent protein (GFP), bovine serum albumin (BSA), β-Galactosidase (β-Gal), rabbit serum immunoglobulin (IgG), bovine apo- transferrin (TFN), or urease (URE). In some embodiments, the protein of interest has a molecular weight of at least 5 kDa, 10 kDa, 15 kDa, 20 kDa, 25 kDa, 30 kDa, 35 kDa, 40 kDa, 45 kDa, 50 kDa, 55 kDa, 60 kDa, 65 kDa, 70 kDa, 75 kDa, 80 kDa, 85 kDa, 90 kDa, or 100 kDa. In some embodiments, the protein of interest has a molecular weight of about 27 kDa, 64.5 kDa, 66.5 kDa, 76 kDa, or 81 kDa. In some embodiments, the protein of interest has a molecular weight of at least 100 kDa, 110 kDa, 120 kDa, 130 kDa, 140 kDa, 150 kDa, 160 kDa, 170 kDa, 180 kDa, 190 kDa, or 200 kDa. In some embodiments, the protein of interest has a molecular weight of about 150 kDa. In some embodiments, the protein of interest has a molecular weight of at least 200 kDa, 250 kDa, 300 kDa, 350 kDa, 400 kDa, 450 kDa, 500 kDa, 550 kDa, or 600 kDa. In some embodiments, the protein of interest has a molecular weight of about 464 kDa, 483 kDa, or 520 kDa. In some embodiments, the protein of interest is dispersed in perfluorohexane in the presence of Compound 25, wherein the molar ratio of Compound 25 is about 100:1, 200:1, 300:1, 400:1, 500:1, 600:1, 700:1, 800:1, 900:1, 1000:1, 1250:1, 1500:1, 1750:1, 2000:1, 2500:1, 3000:1, 4000:1, or 5000:1 with the protein of interest. In some embodiments, the protein of interest is dispersed in perfluorohexane in the presence of Compound 25, wherein the molar ratio of Compound 25 is about 1000:1 with the protein of interest. In some embodiments, the protein of interest Attorney Docket No.148411.002502 PATENT phase separates when dispersed in perfluorohexane in the presence of Compound 25, but does not phase separate when dispersed in perfluorohexane in the absence of Compound 25. In some embodiments, the protein of interest phase separates when dispersed in perfluorohexane in the presence of Compound 25, wherein the dispersion efficiency is about 5%, 10%, 15%, 20%, 25%, 30%, 35%, 40%, 45%, 50%, 55%, 60%, 65%, 70%, 75%, 80%, 85%, 90%, 95%, or about 100%. In some embodiments, the dispersion efficiency is between about 5% and about 100%. In some embodiments, the dispersion efficiency is about 100%. In some embodiments, the dispersion efficiency is at least about 80%. In some embodiments, the dispersion efficiency is at least about 50%. In some embodiments, the dispersion efficiency is at least about 25%. In some embodiments, the dispersion efficiency is at least about 15%. In some embodiments, the dispersant compound comprises Compound 26. In some embodiments, the Compound 26 comprises a chemical group R1, wherein R1 is C4F9. In some embodiments, the Compound 26 comprises two chemical groups R1, wherein R1 is C4F9. In some embodiments, the Compound 26 comprises the group R2, wherein R2 is CN. In some embodiments, the Compound 26 comprises two chemical groups R1, wherein R1 is C4F9, and additionally comprises the group R2, wherein R2 is H. In some embodiments, Compound 26 comprises Formula VIII: (Formula VIII), wherein the formula is C5H8 wherein R1is C4F9, and wherein R2is H. In some embodiments, the Compound 26 comprises a chemical group R1_Extended, wherein R1_Extended is C6H5F9. In some embodiments, the Compound 26 comprises two chemical groups R1_Extended, wherein R1_Extended is C6H5F9. In some embodiments, the Compound 26 comprises two chemical groups R1_Extended, wherein R1_Extended is C6H5F9, and additionally comprises the group R2, wherein R2is H. In some embodiments, Compound 26 comprises Formula VIII_B: (Formula VIII_B), wherein the formula is 2(R2)COOH, wherein R1_Extended is C6H5F9 and wherein R2 is H. In some embodiments, Compound 26 comprises the chemical formula 2,2- (R1_Extended)-2-acetic acid, wherein R1_Extended is the chemical group 1,1,1,2,2,3,3,4,4- Attorney Docket No.148411.002502 PATENT nonafluorohexane. In some embodiments, Compound 26 comprises 2,2-(1,1,1,2,2,3,3,4,4- nonafluorohexane)-2-acetic acid. In some embodiments, the fluorinated solvent is chosen from the group that includes perfluoropentane, perfluorohexane, perfluoroheptane, perfluorooctane, perfluoromethylcyclohexane, perfluoro-1-3-dimethylcyclohexane, or perfluorodecalin, and the perfluorinated dispersant compound comprises Compound 26. In some embodiments, the fluorinated solvent is perfluorohexane and the perfluorinated dispersant compound comprises Compound 26. In some embodiments, the fluorinated solvent is perfluorooctane and the perfluorinated dispersant compound comprises Compound 26. In some embodiments, the fluorinated solvent is perfluoropentane and the perfluorinated dispersant compound comprises Compound 26. In some embodiments, the fluorinated solvent is perfluoroheptane and the perfluorinated dispersant compound comprises Compound 26. In some embodiments, the fluorinated solvent is perfluoromethylcyclohexane and the perfluorinated dispersant compound comprises Compound 26. In some embodiments, the fluorinated solvent is perfluoro-1-3-dimethylcyclohexane and the perfluorinated dispersant compound comprises Compound 26. In some embodiments, the fluorinated solvent is perfluorodecalin and the perfluorinated dispersant compound comprises Compound 26. In some embodiments, the protein of interest is dispersed in perfluorohexane in the presence of Compound 26. In some embodiments, the protein of interest can include, but is not limited to, human hemoglobin (Hb), green fluorescent protein (GFP), bovine serum albumin (BSA), β-Galactosidase (β-Gal), rabbit serum immunoglobulin (IgG), bovine apo- transferrin (TFN), or urease (URE). In some embodiments, the protein of interest has a molecular weight of at least 5 kDa, 10 kDa, 15 kDa, 20 kDa, 25 kDa, 30 kDa, 35 kDa, 40 kDa, 45 kDa, 50 kDa, 55 kDa, 60 kDa, 65 kDa, 70 kDa, 75 kDa, 80 kDa, 85 kDa, 90 kDa, or 100 kDa. In some embodiments, the protein of interest has a molecular weight of about 27 kDa, 64.5 kDa, 66.5 kDa, 76 kDa, or 81 kDa. In some embodiments, the protein of interest has a molecular weight of at least 100 kDa, 110 kDa, 120 kDa, 130 kDa, 140 kDa, 150 kDa, 160 kDa, 170 kDa, 180 kDa, 190 kDa, or 200 kDa. In some embodiments, the protein of interest has a molecular weight of about 150 kDa. In some embodiments, the protein of interest has a molecular weight of at least 200 kDa, 250 kDa, 300 kDa, 350 kDa, 400 kDa, 450 kDa, 500 kDa, 550 kDa, or 600 kDa. In some embodiments, the protein of interest has a molecular weight of about 464 kDa, 483 kDa, or 520 kDa. In some embodiments, the protein of interest is dispersed in perfluorohexane in the presence of Compound 26, wherein the molar ratio of Compound 26 is about 100:1, 200:1, 300:1, 400:1, 500:1, 600:1, 700:1, 800:1, Attorney Docket No.148411.002502 PATENT 900:1, 1000:1, 1250:1, 1500:1, 1750:1, 2000:1, 2500:1, 3000:1, 4000:1, or 5000:1 with the protein of interest. In some embodiments, the protein of interest is dispersed in perfluorohexane in the presence of Compound 26, wherein the molar ratio of Compound 26 is about 1000:1 with the protein of interest. In some embodiments, the protein of interest phase separates when dispersed in perfluorohexane in the presence of Compound 26, but does not phase separate when dispersed in perfluorohexane in the absence of Compound 26. In some embodiments, the protein of interest phase separates when dispersed in perfluorohexane in the presence of Compound 26, wherein the dispersion efficiency is about 5%, 10%, 15%, 20%, 25%, 30%, 35%, 40%, 45%, 50%, 55%, 60%, 65%, 70%, 75%, 80%, 85%, 90%, 95%, or about 100%. In some embodiments, the dispersion efficiency is between about 5% and about 100%. In some embodiments, the dispersion efficiency is about 100%. In some embodiments, the dispersion efficiency is at least about 80%. In some embodiments, the dispersion efficiency is at least about 50%. In some embodiments, the dispersion efficiency is at least about 25%. In some embodiments, the dispersion efficiency is at least about 15%. In some embodiments, the dispersant compound comprises Compound 27. In some embodiments, the Compound 27 comprises a chemical group R1, wherein R1 is C4F9. In some embodiments, the Compound 27 comprises two chemical groups R1, wherein R1 is C4F9. In some embodiments, the Compound 27 comprises the group R2, wherein R2 is CN. In some embodiments, the Compound 27 comprises two chemical groups R1, wherein R1 is C4F9, and additionally comprises the group R2, wherein R2 is COOH. In some embodiments, Compound 27 comprises Formula VIII: (Formula VIII), wherein the formula is C5H8 wherein R1 is C4F9, and wherein R2 is COOH. In some embodiments, the Compound 27 comprises a chemical group R1_Extended, wherein R1_Extended is C6H5F9. In some embodiments, the Compound 27 comprises two chemical groups R1_Extended, wherein R1_Extended is C6H5F9. In some embodiments, the Compound 27 comprises two chemical groups R1_Extended, wherein R1_Extended is C6H5F9, and additionally comprises the group R2, wherein R2is COOH. In some embodiments, Compound 27 comprises Formula VIII_B: Attorney Docket No.148411.002502 PATENT , wherein the formula is is C6H5F9and wherein R 2 is COOH. the chemical formula 2,2-(R1_Extended)-2-diacetic acid, wherein R1_Extended is the chemical group 1,1,1,2,2,3,3,4,4-nonafluorohexane. In some embodiments, Compound 27 comprises 2,2- (1,1,1,2,2,3,3,4,4-nonafluorohexane)-2-diacetic acid. In some embodiments, the fluorinated solvent is chosen from the group that includes perfluoropentane, perfluorohexane, perfluoroheptane, perfluorooctane, perfluoromethylcyclohexane, perfluoro-1-3-dimethylcyclohexane, or perfluorodecalin, and the perfluorinated dispersant compound comprises Compound 27. In some embodiments, the fluorinated solvent is perfluorohexane and the perfluorinated dispersant compound comprises Compound 27. In some embodiments, the fluorinated solvent is perfluorooctane and the perfluorinated dispersant compound comprises Compound 27. In some embodiments, the fluorinated solvent is perfluoropentane and the perfluorinated dispersant compound comprises Compound 27. In some embodiments, the fluorinated solvent is perfluoroheptane and the perfluorinated dispersant compound comprises Compound 27. In some embodiments, the fluorinated solvent is perfluoromethylcyclohexane and the perfluorinated dispersant compound comprises Compound 27. In some embodiments, the fluorinated solvent is perfluoro-1-3-dimethylcyclohexane and the perfluorinated dispersant compound comprises Compound 27. In some embodiments, the fluorinated solvent is perfluorodecalin and the perfluorinated dispersant compound comprises Compound 27. In some embodiments, the protein of interest is dispersed in perfluorohexane in the presence of Compound 27. In some embodiments, the protein of interest can include, but is not limited to, human hemoglobin (Hb), green fluorescent protein (GFP), bovine serum albumin (BSA), β-Galactosidase (β-Gal), rabbit serum immunoglobulin (IgG), bovine apo- transferrin (TFN), or urease (URE). In some embodiments, the protein of interest has a molecular weight of at least 5 kDa, 10 kDa, 15 kDa, 20 kDa, 25 kDa, 30 kDa, 35 kDa, 40 kDa, 45 kDa, 50 kDa, 55 kDa, 60 kDa, 65 kDa, 70 kDa, 75 kDa, 80 kDa, 85 kDa, 90 kDa, or 100 kDa. In some embodiments, the protein of interest has a molecular weight of about 27 kDa, 64.5 kDa, 66.5 kDa, 76 kDa, or 81 kDa. In some embodiments, the protein of interest has a molecular weight of at least 100 kDa, 110 kDa, 120 kDa, 130 kDa, 140 kDa, 150 kDa, 160 kDa, 170 kDa, 180 kDa, 190 kDa, or 200 kDa. In some embodiments, the protein of Attorney Docket No.148411.002502 PATENT interest has a molecular weight of about 150 kDa. In some embodiments, the protein of interest has a molecular weight of at least 200 kDa, 250 kDa, 300 kDa, 350 kDa, 400 kDa, 450 kDa, 500 kDa, 550 kDa, or 600 kDa. In some embodiments, the protein of interest has a molecular weight of about 464 kDa, 483 kDa, or 520 kDa. In some embodiments, the protein of interest is dispersed in perfluorohexane in the presence of Compound 27, wherein the molar ratio of Compound 27 is about 100:1, 200:1, 300:1, 400:1, 500:1, 600:1, 700:1, 800:1, 900:1, 1000:1, 1250:1, 1500:1, 1750:1, 2000:1, 2500:1, 3000:1, 4000:1, or 5000:1 with the protein of interest. In some embodiments, the protein of interest is dispersed in perfluorohexane in the presence of Compound 27, wherein the molar ratio of Compound 27 is about 1000:1 with the protein of interest. In some embodiments, the protein of interest phase separates when dispersed in perfluorohexane in the presence of Compound 27, but does not phase separate when dispersed in perfluorohexane in the absence of Compound 27. In some embodiments, the protein of interest phase separates when dispersed in perfluorohexane in the presence of Compound 27, wherein the dispersion efficiency is about 5%, 10%, 15%, 20%, 25%, 30%, 35%, 40%, 45%, 50%, 55%, 60%, 65%, 70%, 75%, 80%, 85%, 90%, 95%, or about 100%. In some embodiments, the dispersion efficiency is between about 5% and about 100%. In some embodiments, the dispersion efficiency is about 100%. In some embodiments, the dispersion efficiency is at least about 80%. In some embodiments, the dispersion efficiency is at least about 50%. In some embodiments, the dispersion efficiency is at least about 25%. In some embodiments, the dispersion efficiency is at least about 15%. In some embodiments, the dispersant compound comprises Compound 28. In some embodiments, the Compound 28 comprises a chemical group R1, wherein R1 is C6F13. In some embodiments, the Compound 28 comprises two chemical groups R1, wherein R1 is C6F13. In some embodiments, the Compound 28 comprises the group R2, wherein R2 is CN. In some embodiments, the Compound 28 comprises two chemical groups R1, wherein R1 is C6F13, and additionally comprises the group R2, wherein R2 is COOH. In some embodiments, Compound 28 comprises Formula VIII: (Formula VIII), wherein the formula is C5H8 wherein R1 is C6F13, and wherein R2 is COOH. In some embodiments, the Compound 28 comprises a chemical group R1_Extended, wherein R1_Extended is C8H5F13. In some embodiments, the Compound 28 comprises two chemical Attorney Docket No.148411.002502 PATENT groups R1_Extended, wherein R1_Extended is C8H5F13. In some embodiments, the Compound 28 comprises two chemical groups R1_Extended, wherein R1_Extended is C8H5F13, and additionally comprises the group R2, wherein R2is COOH. In some embodiments, Compound 28 comprises Formula VIII_B: (Formula VIII_B), wherein the formula is C(R1_Extended)2(R2)COOH, wherein R1_Extended is C8H5F13and wherein R2 is COOH. In some embodiments, Compound 28 comprises the chemical formula 2,2-(R1_Extended)-2-diacetic acid, wherein R1_Extended is the chemical group 1,1,1,2,2,3,3,4,4,5,5,6,6-tridecafluorooctane. In some embodiments, Compound 28 comprises 2,2-(1,1,1,2,2,3,3,4,4,5,5,6,6-tridecafluorooctane)-2-diacetic acid. In some embodiments, the fluorinated solvent is chosen from the group that includes perfluoropentane, perfluorohexane, perfluoroheptane, perfluorooctane, perfluoromethylcyclohexane, perfluoro-1-3-dimethylcyclohexane, or perfluorodecalin, and the perfluorinated dispersant compound comprises Compound 28. In some embodiments, the fluorinated solvent is perfluorohexane and the perfluorinated dispersant compound comprises Compound 28. In some embodiments, the fluorinated solvent is perfluorooctane and the perfluorinated dispersant compound comprises Compound 28. In some embodiments, the fluorinated solvent is perfluoropentane and the perfluorinated dispersant compound comprises Compound 28. In some embodiments, the fluorinated solvent is perfluoroheptane and the perfluorinated dispersant compound comprises Compound 28. In some embodiments, the fluorinated solvent is perfluoromethylcyclohexane and the perfluorinated dispersant compound comprises Compound 28. In some embodiments, the fluorinated solvent is perfluoro-1-3-dimethylcyclohexane and the perfluorinated dispersant compound comprises Compound 28. In some embodiments, the fluorinated solvent is perfluorodecalin and the perfluorinated dispersant compound comprises Compound 28. In some embodiments, the protein of interest is dispersed in perfluorohexane in the presence of Compound 28. In some embodiments, the protein of interest can include, but is not limited to, human hemoglobin (Hb), green fluorescent protein (GFP), bovine serum albumin (BSA), β-Galactosidase (β-Gal), rabbit serum immunoglobulin (IgG), bovine apo- transferrin (TFN), or urease (URE). In some embodiments, the protein of interest has a molecular weight of at least 5 kDa, 10 kDa, 15 kDa, 20 kDa, 25 kDa, 30 kDa, 35 kDa, 40 kDa, 45 kDa, 50 kDa, 55 kDa, 60 kDa, 65 kDa, 70 kDa, 75 kDa, 80 kDa, 85 kDa, 90 kDa, or Attorney Docket No.148411.002502 PATENT 100 kDa. In some embodiments, the protein of interest has a molecular weight of about 27 kDa, 64.5 kDa, 66.5 kDa, 76 kDa, or 81 kDa. In some embodiments, the protein of interest has a molecular weight of at least 100 kDa, 110 kDa, 120 kDa, 130 kDa, 140 kDa, 150 kDa, 160 kDa, 170 kDa, 180 kDa, 190 kDa, or 200 kDa. In some embodiments, the protein of interest has a molecular weight of about 150 kDa. In some embodiments, the protein of interest has a molecular weight of at least 200 kDa, 250 kDa, 300 kDa, 350 kDa, 400 kDa, 450 kDa, 500 kDa, 550 kDa, or 600 kDa. In some embodiments, the protein of interest has a molecular weight of about 464 kDa, 483 kDa, or 520 kDa. In some embodiments, the protein of interest is dispersed in perfluorohexane in the presence of Compound 28, wherein the molar ratio of Compound 28 is about 100:1, 200:1, 300:1, 400:1, 500:1, 600:1, 700:1, 800:1, 900:1, 1000:1, 1250:1, 1500:1, 1750:1, 2000:1, 2500:1, 3000:1, 4000:1, or 5000:1 with the protein of interest. In some embodiments, the protein of interest is dispersed in perfluorohexane in the presence of Compound 28, wherein the molar ratio of Compound 28 is about 1000:1 with the protein of interest. In some embodiments, the protein of interest phase separates when dispersed in perfluorohexane in the presence of Compound 28, but does not phase separate when dispersed in perfluorohexane in the absence of Compound 28. In some embodiments, the protein of interest phase separates when dispersed in perfluorohexane in the presence of Compound 28, wherein the dispersion efficiency is about 5%, 10%, 15%, 20%, 25%, 30%, 35%, 40%, 45%, 50%, 55%, 60%, 65%, 70%, 75%, 80%, 85%, 90%, 95%, or about 100%. In some embodiments, the dispersion efficiency is between about 5% and about 100%. In some embodiments, the dispersion efficiency is about 100%. In some embodiments, the dispersion efficiency is at least about 80%. In some embodiments, the dispersion efficiency is at least about 50%. In some embodiments, the dispersion efficiency is at least about 25%. In some embodiments, the dispersion efficiency is at least about 15%. In some embodiments, the dispersant compound comprises Compound 29. In some embodiments, the Compound 29 comprises a chemical group R1, wherein R1 is C8F17. In some embodiments, the Compound 29 comprises two chemical groups R1, wherein R1 is C8F17. In some embodiments, the Compound 29 comprises the group R2, wherein R2is CN. In some embodiments, the Compound 29 comprises two chemical groups R1, wherein R1 is C8F17, and additionally comprises the group R2, wherein R2is COOH. In some embodiments, Compound 29 comprises Formula VIII: Attorney Docket No.148411.002502 PATENT (Formula VIII), wherein the formula is C5H8wherein R1is C8F17, and wherein R2is COOH. In some embodiments, the a chemical group R1_Extended, wherein R1_Extended is C10H5F17. In some embodiments, the Compound 29 comprises two chemical groups R1_Extended, wherein R1_Extended is C10H5F17. In some embodiments, the Compound 29 comprises two chemical groups R1_Extended, wherein R1_Extended is C10H5F17, and additionally comprises the group R2, wherein R2 is COOH. In some embodiments, Compound 29 comprises Formula VIII_B: , wherein the formula is is C10H5F17 and wherein R2is COOH. In some embodiments, Compound 29 comprises the chemical formula 2,2-(R1_Extended)-2-diacetic acid, wherein R1_Extended is the chemical group 1,1,1,2,2,3,3,4,4,5,5,6,6,7,7,8,8-heptadecafluorodecane. In some embodiments, Compound 29 comprises 2,2-(1,1,1,2,2,3,3,4,4,5,5,6,6,7,7,8,8-heptadecafluorodecane)-2-diacetic acid. In some embodiments, the fluorinated solvent is chosen from the group that includes perfluoropentane, perfluorohexane, perfluoroheptane, perfluorooctane, perfluoromethylcyclohexane, perfluoro-1-3-dimethylcyclohexane, or perfluorodecalin, and the perfluorinated dispersant compound comprises Compound 29. In some embodiments, the fluorinated solvent is perfluorohexane and the perfluorinated dispersant compound comprises Compound 29. In some embodiments, the fluorinated solvent is perfluorooctane and the perfluorinated dispersant compound comprises Compound 29. In some embodiments, the fluorinated solvent is perfluoropentane and the perfluorinated dispersant compound comprises Compound 29. In some embodiments, the fluorinated solvent is perfluoroheptane and the perfluorinated dispersant compound comprises Compound 29. In some embodiments, the fluorinated solvent is perfluoromethylcyclohexane and the perfluorinated dispersant compound comprises Compound 29. In some embodiments, the fluorinated solvent is perfluoro-1-3-dimethylcyclohexane and the perfluorinated dispersant compound comprises Compound 29. In some embodiments, the fluorinated solvent is perfluorodecalin and the perfluorinated dispersant compound comprises Compound 29. Attorney Docket No.148411.002502 PATENT In some embodiments, the protein of interest is dispersed in perfluorohexane in the presence of Compound 29. In some embodiments, the protein of interest can include, but is not limited to, human hemoglobin (Hb), green fluorescent protein (GFP), bovine serum albumin (BSA), β-Galactosidase (β-Gal), rabbit serum immunoglobulin (IgG), bovine apo- transferrin (TFN), or urease (URE). In some embodiments, the protein of interest has a molecular weight of at least 5 kDa, 10 kDa, 15 kDa, 20 kDa, 25 kDa, 30 kDa, 35 kDa, 40 kDa, 45 kDa, 50 kDa, 55 kDa, 60 kDa, 65 kDa, 70 kDa, 75 kDa, 80 kDa, 85 kDa, 90 kDa, or 100 kDa. In some embodiments, the protein of interest has a molecular weight of about 27 kDa, 64.5 kDa, 66.5 kDa, 76 kDa, or 81 kDa. In some embodiments, the protein of interest has a molecular weight of at least 100 kDa, 110 kDa, 120 kDa, 130 kDa, 140 kDa, 150 kDa, 160 kDa, 170 kDa, 180 kDa, 190 kDa, or 200 kDa. In some embodiments, the protein of interest has a molecular weight of about 150 kDa. In some embodiments, the protein of interest has a molecular weight of at least 200 kDa, 250 kDa, 300 kDa, 350 kDa, 400 kDa, 450 kDa, 500 kDa, 550 kDa, or 600 kDa. In some embodiments, the protein of interest has a molecular weight of about 464 kDa, 483 kDa, or 520 kDa. In some embodiments, the protein of interest is dispersed in perfluorohexane in the presence of Compound 29, wherein the molar ratio of Compound 29 is about 100:1, 200:1, 300:1, 400:1, 500:1, 600:1, 700:1, 800:1, 900:1, 1000:1, 1250:1, 1500:1, 1750:1, 2000:1, 2500:1, 3000:1, 4000:1, or 5000:1 with the protein of interest. In some embodiments, the protein of interest is dispersed in perfluorohexane in the presence of Compound 29, wherein the molar ratio of Compound 29 is about 1000:1 with the protein of interest. In some embodiments, the protein of interest phase separates when dispersed in perfluorohexane in the presence of Compound 29, but does not phase separate when dispersed in perfluorohexane in the absence of Compound 29. In some embodiments, the protein of interest phase separates when dispersed in perfluorohexane in the presence of Compound 29, wherein the dispersion efficiency is about 5%, 10%, 15%, 20%, 25%, 30%, 35%, 40%, 45%, 50%, 55%, 60%, 65%, 70%, 75%, 80%, 85%, 90%, 95%, or about 100%. In some embodiments, the dispersion efficiency is between about 5% and about 100%. In some embodiments, the dispersion efficiency is about 100%. In some embodiments, the dispersion efficiency is at least about 80%. In some embodiments, the dispersion efficiency is at least about 50%. In some embodiments, the dispersion efficiency is at least about 25%. In some embodiments, the dispersion efficiency is at least about 15%. In some embodiments, a composition is provided, the composition comprising a fluorinated solvent, a perfluorinated dispersant compound, and a protein of interest, wherein: the perfluorinated dispersant compound interacts with the protein of interest; the protein of Attorney Docket No.148411.002502 PATENT interest is dissolved in the fluorinated solvent; the fluorinated solvent is chosen from perfluoropentane, perfluorohexane, perfluoroheptane, perfluorooctane, perfluoromethylcyclohexane, perfluoro-1,3-dimethylcyclohexane, or perfluorodecalin; and the perfluorinated dispersant comprises Formula IX: (Formula IX), wherein R1is CN, H, or lysosomal targeting group C7H15N2O, wherein R3 is C4F9, C6F13, C8F17, and wherein R4 is CN, H, or COOH. In some embodiments, the dispersant compound comprises Formula IX, wherein R1is COOH, wherein R2is the lysosomal targeting group C7H15N2O, wherein R3 is C8F17, and wherein R4 is H. In some embodiments, the dispersant compound comprises Compound 30: (Compound 30). In some embodiments, a composition is provided, the composition comprising a fluorinated solvent, a perfluorinated dispersant compound, and a protein of interest, wherein: the perfluorinated dispersant compound interacts with the protein of interest; the protein of interest is dissolved in the fluorinated solvent; the fluorinated solvent is chosen from perfluoropentane, perfluorohexane, perfluoroheptane, perfluorooctane, perfluoromethylcyclohexane, perfluoro-1,3-dimethylcyclohexane, or perfluorodecalin; and the perfluorinated dispersant compound comprises Formula IX, wherein the compound is Attorney Docket No.148411.002502 PATENT Compound 30 comprising the chemical formula that can be derived from the SMILES ID from Table 6. In some embodiments, the fluorinated solvent is chosen from the group that includes perfluoropentane, perfluorohexane, perfluoroheptane, perfluorooctane, perfluoromethylcyclohexane, perfluoro-1-3-dimethylcyclohexane, or perfluorodecalin, and the perfluorinated dispersant compound comprises Formula IX. In some embodiments, the fluorinated solvent is chosen from the group that includes perfluoropentane, perfluorohexane, perfluoroheptane, perfluorooctane, perfluoromethylcyclohexane, perfluoro-1-3- dimethylcyclohexane, or perfluorodecalin, and the perfluorinated dispersant compound comprises Formula IX, wherein the compound is Compound 30. In some embodiments, the fluorinated solvent is perfluorohexane and the perfluorinated dispersant compound comprises Formula IX. In some embodiments, the fluorinated solvent is perfluorooctane and the perfluorinated dispersant compound comprises Formula IX. In some embodiments, the fluorinated solvent is perfluoropentane and the perfluorinated dispersant compound comprises Formula IX. In some embodiments, the fluorinated solvent is perfluoroheptane and the perfluorinated dispersant compound comprises Formula IX. In some embodiments, the fluorinated solvent is perfluoromethylcyclohexane and the perfluorinated dispersant compound comprises Formula IX. In some embodiments, the fluorinated solvent is perfluoro- 1-3-dimethylcyclohexane and the perfluorinated dispersant compound comprises Formula IX. In some embodiments, the fluorinated solvent is perfluorodecalin and the perfluorinated dispersant compound comprises Formula IX. In some embodiments, a composition is provided, the composition comprising a fluorinated solvent, a perfluorinated dispersant compound, and a protein of interest, wherein: the perfluorinated dispersant compound interacts with the protein of interest; the protein of interest is dissolved in the fluorinated solvent; the fluorinated solvent is chosen from perfluoropentane, perfluorohexane, perfluoroheptane, perfluorooctane, perfluoromethylcyclohexane, perfluoro-1,3-dimethylcyclohexane, or perfluorodecalin; and the perfluorinated dispersant comprises Formula X: Attorney Docket No.148411.002502 PATENT (Formula X), wherein R1 is CN, H, or targeting group C7H15N2O, wherein R3 is C4F9, C6F13, C8F17, and wherein R4 is CN, H, or COOH. In some embodiments, the dispersant compound comprises Formula X, wherein R1 is COOH, wherein R2 is the lysosomal targeting group C7H15N2O, wherein R3is C6F13, and wherein R4is H. In some embodiments, the dispersant compound comprises Compound 31: . In some embodiments, a composition is provided, the composition comprising a fluorinated solvent, a perfluorinated dispersant compound, and a protein of interest, wherein: the perfluorinated dispersant compound interacts with the protein of interest; the protein of interest is dissolved in the fluorinated solvent; the fluorinated solvent is chosen from perfluoropentane, perfluorohexane, perfluoroheptane, perfluorooctane, perfluoromethylcyclohexane, perfluoro-1,3-dimethylcyclohexane, or perfluorodecalin; and the perfluorinated dispersant compound comprises Formula X, wherein the compound is Compound 31 comprising the chemical formula that can be derived from the SMILES ID from Table 6. In some embodiments, the fluorinated solvent is chosen from the group that includes perfluoropentane, perfluorohexane, perfluoroheptane, perfluorooctane, perfluoromethylcyclohexane, perfluoro-1-3-dimethylcyclohexane, or perfluorodecalin, and the perfluorinated dispersant compound comprises Formula X. In some embodiments, the Attorney Docket No.148411.002502 PATENT fluorinated solvent is chosen from the group that includes perfluoropentane, perfluorohexane, perfluoroheptane, perfluorooctane, perfluoromethylcyclohexane, perfluoro-1-3- dimethylcyclohexane, or perfluorodecalin, and the perfluorinated dispersant compound comprises Formula X, wherein the compound is Compound 31. In some embodiments, the fluorinated solvent is perfluorohexane and the perfluorinated dispersant compound comprises Formula X. In some embodiments, the fluorinated solvent is perfluorooctane and the perfluorinated dispersant compound comprises Formula X. In some embodiments, the fluorinated solvent is perfluoropentane and the perfluorinated dispersant compound comprises Formula X. In some embodiments, the fluorinated solvent is perfluoroheptane and the perfluorinated dispersant compound comprises Formula X. In some embodiments, the fluorinated solvent is perfluoromethylcyclohexane and the perfluorinated dispersant compound comprises Formula X. In some embodiments, the fluorinated solvent is perfluoro- 1-3-dimethylcyclohexane and the perfluorinated dispersant compound comprises Formula X. In some embodiments, the fluorinated solvent is perfluorodecalin and the perfluorinated dispersant compound comprises Formula X. In some embodiments, the protein of interest is dispersed in perfluorohexane in the presence of a compound comprising Formula IX. In some embodiments, the protein of interest can include, but is not limited to, human hemoglobin (Hb), green fluorescent protein (GFP), bovine serum albumin (BSA), β-Galactosidase (β-Gal), rabbit serum immunoglobulin (IgG), bovine apo-transferrin (TFN), or urease (URE). In some embodiments, the protein of interest has a molecular weight of at least 5 kDa, 10 kDa, 15 kDa, 20 kDa, 25 kDa, 30 kDa, 35 kDa, 40 kDa, 45 kDa, 50 kDa, 55 kDa, 60 kDa, 65 kDa, 70 kDa, 75 kDa, 80 kDa, 85 kDa, 90 kDa, or 100 kDa. In some embodiments, the protein of interest has a molecular weight of about 27 kDa, 64.5 kDa, 66.5 kDa, 76 kDa, or 81 kDa. In some embodiments, the protein of interest has a molecular weight of at least 100 kDa, 110 kDa, 120 kDa, 130 kDa, 140 kDa, 150 kDa, 160 kDa, 170 kDa, 180 kDa, 190 kDa, or 200 kDa. In some embodiments, the protein of interest has a molecular weight of about 150 kDa. In some embodiments, the protein of interest has a molecular weight of at least 200 kDa, 250 kDa, 300 kDa, 350 kDa, 400 kDa, 450 kDa, 500 kDa, 550 kDa, or 600 kDa. In some embodiments, the protein of interest has a molecular weight of about 464 kDa, 483 kDa, or 520 kDa. In some embodiments, the protein of interest is dispersed in perfluorohexane in the presence of a compound comprising Formula IX, wherein the molar ratio of a compound comprising Formula IX is about 100:1, 200:1, 300:1, 400:1, 500:1, 600:1, 700:1, 800:1, 900:1, 1000:1, 1250:1, 1500:1, 1750:1, 2000:1, 2500:1, 3000:1, 4000:1, or 5000:1 with the protein of Attorney Docket No.148411.002502 PATENT interest. In some embodiments, the protein of interest is dispersed in perfluorohexane in the presence of a compound comprising Formula IX, wherein the molar ratio of a compound comprising Formula IX is about 1000:1 with the protein of interest. In some embodiments, the protein of interest phase separates when dispersed in perfluorohexane in the presence of a compound comprising Formula IX, but does not phase separate when dispersed in perfluorohexane in the absence of a compound comprising Formula IX. In some embodiments, the protein of interest phase separates when dispersed in perfluorohexane in the presence of a compound comprising Formula IX, wherein the dispersion efficiency is about 1%, 2%, 3%, 4%, 5%, 10%, 15%, 20%, 25%, 30%, 35%, 40%, 45%, 50%, 55%, 60%, 65%, 70%, 75%, 80%, 85%, 90%, 95%, or about 100%. In some embodiments, the dispersion efficiency is between about 5% and about 100%. In some embodiments, the dispersion efficiency is at least about 10%. In some embodiments, the protein of interest is dispersed in perfluorohexane in the presence of a compound comprising Formula X. In some embodiments, the protein of interest can include, but is not limited to, human hemoglobin (Hb), green fluorescent protein (GFP), bovine serum albumin (BSA), β-Galactosidase (β-Gal), rabbit serum immunoglobulin (IgG), bovine apo-transferrin (TFN), or urease (URE). In some embodiments, the protein of interest has a molecular weight of at least 5 kDa, 10 kDa, 15 kDa, 20 kDa, 25 kDa, 30 kDa, 35 kDa, 40 kDa, 45 kDa, 50 kDa, 55 kDa, 60 kDa, 65 kDa, 70 kDa, 75 kDa, 80 kDa, 85 kDa, 90 kDa, or 100 kDa. In some embodiments, the protein of interest has a molecular weight of about 27 kDa, 64.5 kDa, 66.5 kDa, 76 kDa, or 81 kDa. In some embodiments, the protein of interest has a molecular weight of at least 100 kDa, 110 kDa, 120 kDa, 130 kDa, 140 kDa, 150 kDa, 160 kDa, 170 kDa, 180 kDa, 190 kDa, or 200 kDa. In some embodiments, the protein of interest has a molecular weight of about 150 kDa. In some embodiments, the protein of interest has a molecular weight of at least 200 kDa, 250 kDa, 300 kDa, 350 kDa, 400 kDa, 450 kDa, 500 kDa, 550 kDa, or 600 kDa. In some embodiments, the protein of interest has a molecular weight of about 464 kDa, 483 kDa, or 520 kDa. In some embodiments, the protein of interest is dispersed in perfluorohexane in the presence of a compound comprising Formula X, wherein the molar ratio of a compound comprising Formula X is about 100:1, 200:1, 300:1, 400:1, 500:1, 600:1, 700:1, 800:1, 900:1, 1000:1, 1250:1, 1500:1, 1750:1, 2000:1, 2500:1, 3000:1, 4000:1, or 5000:1 with the protein of interest. In some embodiments, the protein of interest is dispersed in perfluorohexane in the presence of a compound comprising Formula X, wherein the molar ratio of a compound comprising Formula X is about 1000:1 with the protein of interest. In some embodiments, the protein of interest phase Attorney Docket No.148411.002502 PATENT separates when dispersed in perfluorohexane in the presence of a compound comprising Formula X, but does not phase separate when dispersed in perfluorohexane in the absence of a compound comprising Formula X. In some embodiments, the protein of interest phase separates when dispersed in perfluorohexane in the presence of a compound comprising Formula X, wherein the dispersion efficiency is about 1%, 2%, 3%, 4%, 5%, 10%, 15%, 20%, 25%, 30%, 35%, 40%, 45%, 50%, 55%, 60%, 65%, 70%, 75%, 80%, 85%, 90%, 95%, or about 100%. In some embodiments, the dispersion efficiency is between about 5% and about 100%. In some embodiments, the dispersion efficiency is at least about 10%. In some embodiments, the protein of interest is dispersed in perfluorohexane in the presence of Compound 30. In some embodiments, the protein of interest can include, but is not limited to, human hemoglobin (Hb), green fluorescent protein (GFP), bovine serum albumin (BSA), β-Galactosidase (β-Gal), rabbit serum immunoglobulin (IgG), bovine apo- transferrin (TFN), or urease (URE). In some embodiments, the protein of interest has a molecular weight of at least 5 kDa, 10 kDa, 15 kDa, 20 kDa, 25 kDa, 30 kDa, 35 kDa, 40 kDa, 45 kDa, 50 kDa, 55 kDa, 60 kDa, 65 kDa, 70 kDa, 75 kDa, 80 kDa, 85 kDa, 90 kDa, or 100 kDa. In some embodiments, the protein of interest has a molecular weight of about 27 kDa, 64.5 kDa, 66.5 kDa, 76 kDa, or 81 kDa. In some embodiments, the protein of interest has a molecular weight of at least 100 kDa, 110 kDa, 120 kDa, 130 kDa, 140 kDa, 150 kDa, 160 kDa, 170 kDa, 180 kDa, 190 kDa, or 200 kDa. In some embodiments, the protein of interest has a molecular weight of about 150 kDa. In some embodiments, the protein of interest has a molecular weight of at least 200 kDa, 250 kDa, 300 kDa, 350 kDa, 400 kDa, 450 kDa, 500 kDa, 550 kDa, or 600 kDa. In some embodiments, the protein of interest has a molecular weight of about 464 kDa, 483 kDa, or 520 kDa. In some embodiments, the protein of interest is dispersed in perfluorohexane in the presence of Compound 30, wherein the molar ratio of Compound 30 is about 100:1, 200:1, 300:1, 400:1, 500:1, 600:1, 700:1, 800:1, 900:1, 1000:1, 1250:1, 1500:1, 1750:1, 2000:1, 2500:1, 3000:1, 4000:1, or 5000:1 with the protein of interest. In some embodiments, the protein of interest is dispersed in perfluorohexane in the presence of Compound 30, wherein the molar ratio of Compound 30 is about 1000:1 with the protein of interest. In some embodiments, the protein of interest phase separates when dispersed in perfluorohexane in the presence of Compound 30, but does not phase separate when dispersed in perfluorohexane in the absence of Compound 30. In some embodiments, the protein of interest phase separates when dispersed in perfluorohexane in the presence of Compound 30, wherein the dispersion efficiency is about 1%, 2%, 3%, 4%, 5%, 10%, 15%, 20%, 25%, 30%, 35%, 40%, 45%, 50%, 55%, 60%, 65%, 70%, 75%, 80%, Attorney Docket No.148411.002502 PATENT 85%, 90%, 95%, or about 100%. In some embodiments, the dispersion efficiency is between about 5% and about 100%. In some embodiments, the dispersion efficiency is at least about 10%. In some embodiments, the protein of interest is dispersed in perfluorohexane in the presence of Compound 31. In some embodiments, the protein of interest can include, but is not limited to, human hemoglobin (Hb), green fluorescent protein (GFP), bovine serum albumin (BSA), β-Galactosidase (β-Gal), rabbit serum immunoglobulin (IgG), bovine apo- transferrin (TFN), or urease (URE). In some embodiments, the protein of interest has a molecular weight of at least 5 kDa, 10 kDa, 15 kDa, 20 kDa, 25 kDa, 30 kDa, 35 kDa, 40 kDa, 45 kDa, 50 kDa, 55 kDa, 60 kDa, 65 kDa, 70 kDa, 75 kDa, 80 kDa, 85 kDa, 90 kDa, or 100 kDa. In some embodiments, the protein of interest has a molecular weight of about 27 kDa, 64.5 kDa, 66.5 kDa, 76 kDa, or 81 kDa. In some embodiments, the protein of interest has a molecular weight of at least 100 kDa, 110 kDa, 120 kDa, 130 kDa, 140 kDa, 150 kDa, 160 kDa, 170 kDa, 180 kDa, 190 kDa, or 200 kDa. In some embodiments, the protein of interest has a molecular weight of about 150 kDa. In some embodiments, the protein of interest has a molecular weight of at least 200 kDa, 250 kDa, 300 kDa, 350 kDa, 400 kDa, 450 kDa, 500 kDa, 550 kDa, or 600 kDa. In some embodiments, the protein of interest has a molecular weight of about 464 kDa, 483 kDa, or 520 kDa. In some embodiments, the protein of interest is dispersed in perfluorohexane in the presence of Compound 31, wherein the molar ratio of Compound 31 is about 100:1, 200:1, 300:1, 400:1, 500:1, 600:1, 700:1, 800:1, 900:1, 1000:1, 1250:1, 1500:1, 1750:1, 2000:1, 2500:1, 3000:1, 4000:1, or 5000:1 with the protein of interest. In some embodiments, the protein of interest is dispersed in perfluorohexane in the presence of Compound 31, wherein the molar ratio of Compound 31 is about 1000:1 with the protein of interest. In some embodiments, the protein of interest phase separates when dispersed in perfluorohexane in the presence of Compound 31, but does not phase separate when dispersed in perfluorohexane in the absence of Compound 31. In some embodiments, the protein of interest phase separates when dispersed in perfluorohexane in the presence of Compound 31, wherein the dispersion efficiency is about 1%, 2%, 3%, 4%, 5%, 10%, 15%, 20%, 25%, 30%, 35%, 40%, 45%, 50%, 55%, 60%, 65%, 70%, 75%, 80%, 85%, 90%, 95%, or about 100%. In some embodiments, the dispersion efficiency is between about 5% and about 100%. In some embodiments, the dispersion efficiency is at least about 10%. In some embodiments, a composition is provided, the composition comprising a fluorinated solvent, a perfluorinated dispersant compound, and a protein of interest, wherein: Attorney Docket No.148411.002502 PATENT the perfluorinated dispersant compound interacts with the protein of interest; the protein of interest is dissolved in the fluorinated solvent; the fluorinated solvent is chosen from perfluoropentane, perfluorohexane, perfluoroheptane, perfluorooctane, perfluoromethylcyclohexane, perfluoro-1,3-dimethylcyclohexane, or perfluorodecalin; and the perfluorinated dispersant compound is chosen from a compound that comprises: Formula I, Formula II, Formula III, Formula IV, Formula V, Formula VI, Formula VII, Formula VIII, Formula IX, or Formula X, or any combination thereof. In some embodiments, a composition is provided, the composition comprising a fluorinated solvent, a perfluorinated dispersant compound, and a protein of interest, wherein: the perfluorinated dispersant compound interacts with the protein of interest; the protein of interest is dissolved in the fluorinated solvent; the fluorinated solvent is chosen from perfluoropentane, perfluorohexane, perfluoroheptane, perfluorooctane, perfluoromethylcyclohexane, perfluoro-1,3- dimethylcyclohexane, or perfluorodecalin; and the perfluorinated dispersant compound is chosen from: perfluorooctane (Compound 1), perfluorotetradecane (Compound 2), trifluoroacetic acid (Compound 3), perfluoropropionic acid (Compound 4), perfluoropentanoic acid (Compound 5), perfluorooctanoic acid (Compound 6), perfluoronanonic acid (Compound 7), perfluorodecanoic acid (Compound 8), perfluoroundecanoic acid (Compound 9), perfluorododecanoic acid (Compound 10), perfluorotetradecanoic acid (Compound 11), perfluorooctadecanoic acid (Compound 12), perfluorocyclohexanecarboxylic acid (Compound 13), (2S) 2-FMOC-amino-3- pentafluorophenyl propanoic acid (Compound 14), pentafluorophenol (Compound 15), pentafluorobenzaldehyde (Compound 16), perfluorooctanesulfonic acid (Compound 17), 1H,1H-heptafluorobutylamine (Compound 18), perfluorooctylamine (Compound 19), and 1H,1H-perfluorononylamine (Compound 20). In some embodiments, the dispersant compound is perfluorinated. In some embodiments, the dispersant compound is a perfluorinated compound chosen from the group that includes: perfluorooctanoic acid (Compound 6), perfluoronanonic acid (Compound 7), perfluorodecanoic acid (Compound 8) perfluoroundecanoic acid (Compound 9), perfluorododecanoic acid (Compound 10), 2,2- (1,1,1,2,2,3,3,4,4,5,5,6,6-tridecafluorooctane)-2-cyanoacetic acid (Compound 21), 2,2- (1,1,1,2,2,3,3,4,4,5,5,6,6-tridecafluorooctane)-2-acetic acid (Compound 22), 2,2- (1,1,1,2,2,3,3,4,4,5,5,6,6,7,7,8,8-heptadecafluorodecane)-2-cyanoacetic acid (Compound 23), 2,2-(1,1,1,2,2,3,3,4,4,5,5,6,6,7,7,8,8-heptadecafluorodecane)-acetic acid (Compound 24), 2,2- (1,1,1,2,2,3,3,4,4-nonafluorohexane)-2-cyanoacetic acid (Compound 25), 2,2- (1,1,1,2,2,3,3,4,4-nonafluorohexane)-2-acetic acid (Compound 26), 2,2-(1,1,1,2,2,3,3,4,4- Attorney Docket No.148411.002502 PATENT nonafluorohexane)-2-diacetic acid (Compound 27), 2,2-(1,1,1,2,2,3,3,4,4,5,5,6,6- tridecafluorooctane)-2-diacetic acid (Compound 28), 2,2-(1,1,1,2,2,3,3,4,4,5,5,6,6,7,7,8,8- heptadecafluorodecane)-2-diacetic acid (Compound 29), Compound 30, or Compound 31, or any combination thereof, as described herein. In some embodiments, a composition is provided, wherein the composition comprises a protein of interest dissolved in the fluorinated solvent perfluorohexane, and a dispersant compound, wherein the dispersant compound interacts with the protein of interest and the dispersant compound comprises the formula of Formula: I, II, III, IV, V, VI, VII, VIII, IX, or X. In some embodiments, the dispersant compound is chosen from Compounds: 1, 2, 3, 4, 5, 6, 7, 8, 9, 10, 11, 12, 13, 14, 15, 16, 17, 18, 19, 20, 6, 7, 8, 9, 10, 21, 22, 23, 24, 25, 26, 27, 28, 29, 30, or 31. In some embodiments, a composition is provided, wherein the composition comprises a protein of interest dissolved in the fluorinated solvent perfluorohexane, and a dispersant compound, wherein the dispersant compound interacts with the protein of interest and the dispersant compound is chosen from Compounds: 1, 2, 3, 4, 5, 6, 7, 8, 9, 10, 11, 12, 13, 14, 15, 16, 17, 18, 19, 20, 6, 7, 8, 9, 10, 21, 22, 23, 24, 25, 26, 27, 28, 29, 30, or 31. In some embodiments, the protein of interest is human hemoglobin (Hb), green fluorescent protein (GFP), bovine serum albumin (BSA), β-Galactosidase (β-Gal), rabbit serum immunoglobulin (IgG), bovine apo-transferrin (TFN), or urease (URE). In some embodiments, the dispersant compound comprises the formula of Formula: I, II, III, IV, V, VI, VII, VIII, IX, or X; and protein of interest is chosen from the group that includes, but is not limited to: human hemoglobin (Hb), green fluorescent protein (GFP), bovine serum albumin (BSA), β-Galactosidase (β-Gal), rabbit serum immunoglobulin (IgG), bovine apo- transferrin (TFN), and urease (URE). In some embodiments, the dispersant compound is chosen from Compounds: 1, 2, 3, 4, 5, 6, 7, 8, 9, 10, 11, 12, 13, 14, 15, 16, 17, 18, 19, 20, 6, 7, 8, 9, 10, 21, 22, 23, 24, 25, 26, 27, 28, 29, 30, or 31; and protein of interest is chosen from the group that includes, but is not limited to: human hemoglobin (Hb), green fluorescent protein (GFP), bovine serum albumin (BSA), β-Galactosidase (β-Gal), rabbit serum immunoglobulin (IgG), bovine apo-transferrin (TFN), and urease (URE). In some embodiments, the protein of interest is dispersed in into perfluorohexane in the presence of the dispersion compound, wherein the dispersion compound is at a molar ratio of 1000:1 with the protein, and wherein the dispersion compound is chosen from a compound comprising the formula of Formula: I, II, III, IV, V, VI, VII, VIII, IX, or X. In some embodiments, the protein of interest is dispersed in into perfluorohexane in the presence of the dispersion compound, wherein the dispersion compound is at a molar ratio of Attorney Docket No.148411.002502 PATENT 1000:1 with the protein, and wherein the dispersion compound is chosen from Compounds: 1, 2, 3, 4, 5, 6, 7, 8, 9, 10, 11, 12, 13, 14, 15, 16, 17, 18, 19, 20, 6, 7, 8, 9, 10, 21, 22, 23, 24, 25, 26, 27, 28, 29, 30, or 31. In some embodiments, the dispersant compound interacts with the protein of interest via hydrogen bonding with nitrogen donors present in the protein backbone and amino acid side chains of the protein of interest, wherein the dispersant compound is chosen from a compound comprising the formula of Formula: I, II, III, IV, V, VI, VII, VIII, IX, or X. In some embodiments, the dispersant compound interacts with the protein of interest via hydrogen bonding with nitrogen donors present in the protein backbone and amino acid side chains of the protein of interest, wherein the dispersant compound is chosen from Compounds: 1, 2, 3, 4, 5, 6, 7, 8, 9, 10, 11, 12, 13, 14, 15, 16, 17, 18, 19, 20, 6, 7, 8, 9, 10, 21, 22, 23, 24, 25, 26, 27, 28, 29, 30, or 31. In some embodiments, the dispersant compound interacts with the protein of interest via hydrogen bonding with nitrogen donors present in the protein backbone and amino acid side chains of the protein of interest, wherein the dispersant compound is at a molar ratio of 1000:1 with the protein. In some embodiments, the protein of interest comprises a non-native secondary structure. In some embodiments, the dispersant compound interacts with the protein of interest via hydrogen bonding with nitrogen donors present in the protein backbone and amino acid side chains of the protein of interest, wherein the protein of interest comprises a non-native secondary structure, and wherein the dispersant compound is chosen from a compound comprising the formula of Formula: I, II, III, IV, V, VI, VII, VIII, IX, or X. In some embodiments, the dispersant compound interacts with the protein of interest via hydrogen bonding with nitrogen donors present in the protein backbone and amino acid side chains of the protein of interest, wherein the protein of interest comprises a non-native secondary structure, and wherein the dispersant compound is chosen from Compounds: 1, 2, 3, 4, 5, 6, 7, 8, 9, 10, 11, 12, 13, 14, 15, 16, 17, 18, 19, 20, 6, 7, 8, 9, 10, 21, 22, 23, 24, 25, 26, 27, 28, 29, 30, or 31. In some embodiments, the dispersant compound interacts with the protein of interest via hydrogen bonding with nitrogen donors present in the protein backbone and amino acid side chains of the protein of interest, wherein the protein of interest comprises a non-native secondary structure, and wherein the dispersant compound is at a molar ratio of about 100:1, 200:1, 300:1, 400:1, 500:1, 600:1, 700:1, 800:1, 900:1, 1000:1, 1250:1, 1500:1, 1750:1, 2000:1, 2500:1, 3000:1, 4000:1, or 5000:1 with the protein of interest. In some embodiments, the dispersant compound interacts with the protein of interest via hydrogen bonding with nitrogen donors present in the protein backbone and amino acid side chains of Attorney Docket No.148411.002502 PATENT the protein of interest, wherein the protein of interest comprises a non-native secondary structure, and wherein the dispersant compound is at a molar ratio of about 1000:1 with the protein. In some embodiments, the protein of interest phase separates when dispersed in perfluorohexane in the presence of the dispersion compound comprising the formula of Formula: I, II, III, IV, V, VI, VII, VIII, IX, or X, wherein the dispersion efficiency is at least about 1%, 2%, 3%, 4%, 5%, 10%, 15%, 20%, 25%, 30%, 35%, 40%, 45%, 50%, 55%, 60%, 65%, 70%, 75%, 80%, 85%, 90%, or 95%. In some embodiments, the protein of interest phase separates when dispersed in perfluorohexane in the presence of the dispersion compound comprising the formula of Formula: I, II, III, IV, V, VI, VII, VIII, IX, or X, wherein the dispersion efficiency is at least about 10%, 15%, 20%, 25%, 30%, 35%, 40%, 45%, 50%, 55%, 60%, 65%, 70%, 75%, 80%, 85%, 90%, or 95%. In some embodiments, the protein of interest phase separates when dispersed in perfluorohexane in the presence of the dispersion compound comprising the formula of Formula: I, II, III, IV, V, VI, VII, VIII, IX, or X, wherein the dispersion efficiency is at least about 95%, 96%, 97%, 98%, or 99%. In some embodiments, the protein of interest phase separates when dispersed in perfluorohexane in the presence of the dispersion compound comprising the formula of Formula: I, II, III, IV, V, VI, VII, VIII, IX, or X, wherein the dispersion efficiency is between about 10% to about 100%. In some embodiments, the protein of interest phase separates when dispersed in perfluorohexane in the presence of the dispersion compound comprising the formula of Formula: I, II, III, IV, V, VI, VII, VIII, IX, or X, wherein the dispersion efficiency is about 100%. In some embodiments, the protein of interest phase separates when dispersed in perfluorohexane in the presence of the dispersion compound comprising the formula of Formula: I, II, III, IV, V, VI, VII, VIII, IX, or X, wherein the dispersion efficiency is about at least 80%. In some embodiments, the protein of interest phase separates when dispersed in perfluorohexane in the presence of the dispersion compound comprising the formula of Formula: I, II, III, IV, V, VI, VII, VIII, IX, or X, wherein the dispersion efficiency is at least about 50%. In some embodiments, the protein of interest phase separates when dispersed in perfluorohexane in the presence of the dispersion compound comprising the formula of Formula: I, II, III, IV, V, VI, VII, VIII, IX, or X, wherein the dispersion efficiency is at least about 25%. In some embodiments, the protein of interest phase separates when dispersed in perfluorohexane in the presence of the dispersion compound comprising the formula of Formula: I, II, III, IV, V, VI, VII, VIII, IX, or X, wherein the dispersion efficiency is at least about 10%. In some embodiments, the protein of interest phase separates when dispersed in Attorney Docket No.148411.002502 PATENT perfluorohexane in the presence of the dispersion compound comprising the formula of Formula: I, II, III, IV, V, VI, VII, VIII, IX, or X, wherein the dispersion efficiency is at least about 5%. In some embodiments, the protein of interest phase separates when dispersed in perfluorohexane in the presence of the dispersion Compound 1, 2, 3, 4, 5, 6, 7, 8, 9, 10, 11, 12, 13, 14, 15, 16, 17, 18, 19, 20, 6, 7, 8, 9, 10, 21, 22, 23, 24, 25, 26, 27, 28, 29, 30, or 31, wherein the dispersion efficiency is at least about 1%, 2%, 3%, 4%, 5%, 10%, 15%, 20%, 25%, 30%, 35%, 40%, 45%, 50%, 55%, 60%, 65%, 70%, 75%, 80%, 85%, 90%, or 95%. In some embodiments, the protein of interest phase separates when dispersed in perfluorohexane in the presence of the dispersion Compound 1, 2, 3, 4, 5, 6, 7, 8, 9, 10, 11, 12, 13, 14, 15, 16, 17, 18, 19, 20, 6, 7, 8, 9, 10, 21, 22, 23, 24, 25, 26, 27, 28, 29, 30, or 31, wherein the dispersion efficiency is at least about 10%, 15%, 20%, 25%, 30%, 35%, 40%, 45%, 50%, 55%, 60%, 65%, 70%, 75%, 80%, 85%, 90%, or 95%. In some embodiments, the protein of interest phase separates when dispersed in perfluorohexane in the presence of the dispersion Compound 1, 2, 3, 4, 5, 6, 7, 8, 9, 10, 11, 12, 13, 14, 15, 16, 17, 18, 19, 20, 6, 7, 8, 9, 10, 21, 22, 23, 24, 25, 26, 27, 28, 29, 30, or 31, wherein the dispersion efficiency is at least about 95%, 96%, 97%, 98%, or 99%. In some embodiments, the protein of interest phase separates when dispersed in perfluorohexane in the presence of the dispersion Compound 1, 2, 3, 4, 5, 6, 7, 8, 9, 10, 11, 12, 13, 14, 15, 16, 17, 18, 19, 20, 6, 7, 8, 9, 10, 21, 22, 23, 24, 25, 26, 27, 28, 29, 30, or 31, wherein the dispersion efficiency is between about 10% to about 100%. In some embodiments, the protein of interest phase separates when dispersed in perfluorohexane in the presence of the dispersion Compound 1, 2, 3, 4, 5, 6, 7, 8, 9, 10, 11, 12, 13, 14, 15, 16, 17, 18, 19, 20, 6, 7, 8, 9, 10, 21, 22, 23, 24, 25, 26, 27, 28, 29, 30, or 31, wherein the dispersion efficiency is about 100%. In some embodiments, the protein of interest phase separates when dispersed in perfluorohexane in the presence of the dispersion Compound 1, 2, 3, 4, 5, 6, 7, 8, 9, 10, 11, 12, 13, 14, 15, 16, 17, 18, 19, 20, 6, 7, 8, 9, 10, 21, 22, 23, 24, 25, 26, 27, 28, 29, 30, or 31, wherein the dispersion efficiency is about at least 80%. In some embodiments, the protein of interest phase separates when dispersed in perfluorohexane in the presence of the dispersion Compound 1, 2, 3, 4, 5, 6, 7, 8, 9, 10, 11, 12, 13, 14, 15, 16, 17, 18, 19, 20, 6, 7, 8, 9, 10, 21, 22, 23, 24, 25, 26, 27, 28, 29, 30, or 31, wherein the dispersion efficiency is at least about 50%. In some embodiments, the protein of interest phase separates when dispersed in perfluorohexane in the presence of the dispersion Compound 1, 2, 3, 4, 5, 6, 7, 8, 9, 10, 11, 12, 13, 14, 15, 16, 17, 18, 19, 20, 6, 7, 8, 9, 10, 21, 22, 23, 24, 25, 26, 27, 28, 29, 30, or 31, wherein the dispersion efficiency is at least about 25%. In some Attorney Docket No.148411.002502 PATENT embodiments, the protein of interest phase separates when dispersed in perfluorohexane in the presence of the dispersion Compound 1, 2, 3, 4, 5, 6, 7, 8, 9, 10, 11, 12, 13, 14, 15, 16, 17, 18, 19, 20, 6, 7, 8, 9, 10, 21, 22, 23, 24, 25, 26, 27, 28, 29, 30, or 31, wherein the dispersion efficiency is at least about 10%. In some embodiments, the protein of interest phase separates when dispersed in perfluorohexane in the presence of the dispersion Compound 1, 2, 3, 4, 5, 6, 7, 8, 9, 10, 11, 12, 13, 14, 15, 16, 17, 18, 19, 20, 6, 7, 8, 9, 10, 21, 22, 23, 24, 25, 26, 27, 28, 29, 30, or 31, wherein the dispersion efficiency is at least about 5%. In some embodiments, the protein of interest dissolved in PFH in the presence of PFOA, PFNA, or PFOS wherein the protein of interest is taken into cells. In some embodiments, the cells can include, but are not limited to, human cells, animal cells, plant cells, insect cells, or any combination thereof. In some embodiments, the cells can include, but are not limited to, primary cells, transformed cells, self-renewing cells, any cell type that can be cultured in suspension culture, or any combination thereof. Self-renewing cells can include immortal cell lines, stem cells, or any combination thereof. In some embodiments, the cells comprise immortal cell lines. Immortal cell lines can include, but are not limited to, Chinese Hamster Ovary (CHO) cells, Henrietta Lacks (HeLa) cells, H-9 cells, Jurkat cells, C6 / 36 cells, High Five cells, Schneider 2 (S2) cells, Spodoptera frugiperda 21 (Sf21) cells, Spodoptera frugiperda 9 (Sf9) cells, SH-SY5Y cells, A549 cells, or PC-3 cells. In some embodiments, the cells comprise stem cells. Stem cells can include, but are not limited to, embryonic stem cells, adult stem cells, or induced pluripotent stem cells. Embryonic stem cells can include, but are not limited to, any embryonic stem cell with qualities of pluripotency. Pluripotency refers to the ability to give rise to cell types representative of all the embryonic tissues and representative of all adult tissues when differentiated. Adult stem cells can include, but are not limited to, hematopoietic stem cells, mesenchymal stem cells, fibroblast stem cells, any tissue-specific stem cell, or any combination thereof. Tissue- specific stem cells can include, but are not limited to, neural stem cells, epithelial stem cells, and skin stem cells. Induced pluripotent stem cells can be any stem cell derived from adult stem cells that has been induced for pluripotency. Induced pluripotent stem cells can include, but are not limited to induced mesenchymal stem cells, induced fibroblast stem cells, induced neural stem cells, induced epithelial stem cells, and induced skin stem cells. In some embodiments, the protein of interest is taken up into cells at an efficiency of at least 50%. In some embodiments, the protein of interest is labeled with a fluorophore. In some embodiments, a method of dissolving a protein of interest in a fluorinated solvent is provided, the method comprising: contacting the protein of interest with a Attorney Docket No.148411.002502 PATENT dispersant compound, and dissolving the protein of interest and dispersant compound in the fluorinated solvent. In some embodiments, the method comprises any of the compositions described in the above embodiments. In some embodiments, the method of dissolving a protein of interest in a fluorinated solvent comprises a fluorinated solvent selected from the group consisting of perfluoropentane, perfluorohexane, perfluoroheptane, perfluorooctane, perfluoromethylcyclohexane, perfluoro-1,3-dimethylcyclohexane, and perfluorodecalin. In some embodiments, the fluorinated solvent is perfluorohexane. In some embodiments, the fluorinated solvent is perfluorooctane. In some embodiments, the method of dissolving a protein of interest in a fluorinated solvent comprises a dispersant compound, wherein the dispersant compound is perfluorinated. In some embodiments, the dispersant compound comprises Formula II: (Formula II), wherein x is 6, 7, 8, 9, 10, 12, or 16. In some embodiments, x is 7 (perfluoronanonic acid). In some embodiments, the dispersant compound comprises Formula III: (Formula III). In some embodiments, the comprises Formula V: (Formula V), wherein R is OH or COH. In the dispersant compound comprises Formula VI: (Formula VI), wherein y is 7. In some the dispersant compound comprises Formula VIII: Attorney Docket No.148411.002502 PATENT (Formula VIII), wherein R1is C6F13, C8F17, or R2is CN, H, or COOH. In some embodiments, R1 is C6F13 and In some embodiments, the method of dissolving a protein of interest in a fluorinated solvent comprises a dispersant compound, wherein the dispersant compound interacts with the protein of interest via hydrogen bonding with nitrogen donors present in the protein backbone and amino acid side chains of the protein of interest. In some embodiments, the protein of interest comprises a non-native secondary structure. In some embodiments, the method of dissolving a protein of interest in a fluorinated solvent comprises a fluorinated solvent, wherein the fluorinated solvent is perfluorohexane and the dispersant compound is perfluoronanonic acid. In some embodiments, the fluorinated solvent is perfluorooctane and the dispersant compound comprises Formula VIII: (Formula VIII), wherein R1 is C6F13 and R2 is Enumerated Embodiments The following examples are illustrative, but not limiting, of the compounds, compositions and methods described herein. Other suitable modifications and adaptations known to those skilled in the art are within the scope of the following embodiments. Embodiment 1. A composition comprising a fluorinated solvent, a dispersant compound, and a protein of interest, wherein: the dispersant compound interacts with the protein of interest; and the protein of interest is dissolved in the fluorinated solvent. Embodiment 2. The composition of embodiment 1, wherein the fluorinated solvent is selected from the group consisting of perfluoropentane, perfluorohexane, perfluoroheptane, perfluorooctane, perfluoromethylcyclohexane, perfluoro-1,3-dimethylcyclohexane, and perfluorodecalin. Attorney Docket No.148411.002502 PATENT Embodiment 3. The composition of embodiments 1 or 2, wherein the fluorinated solvent is perfluorohexane. Embodiment 4. The composition of embodiments 1 or 2, wherein the fluorinated solvent is perfluorooctane. Embodiment 5. The composition of any proceeding embodiment, wherein the dispersant compound is perfluorinated. Embodiment 6. The composition of embodiment 5, wherein the dispersant compound comprises Formula II: (Formula II), wherein x is 6, 7, 8, 9, Embodiment 7. The composition of embodiment 6, wherein x is 7 (perfluoronanonic acid). Embodiment 8. The composition of embodiment 5, wherein the dispersant compound comprises Formula III: (Formula III). Embodiment 9. The composition of embodiment 5, wherein the dispersant compound comprises Formula V: (Formula V), Attorney Docket No.148411.002502 PATENT wherein R is OH or COH. Embodiment 10. The composition of embodiment 5, wherein the dispersant compound comprises Formula VI: (Formula VI), wherein y is 7. Embodiment 11. The composition of embodiment 5, wherein the dispersant compound comprises Formula VIII: (Formula VIII), wherein R1 is C6F13, wherein R2is CN, H, or COOH. Embodiment 12. The composition of embodiment 11, wherein R1is C6F13and R2is H. Embodiment 13. The composition of any proceeding embodiment, wherein the dispersant compound interacts with the protein of interest via hydrogen bonding with nitrogen donors present in the protein backbone and amino acid side chains of the protein of interest. Embodiment 14. The composition of any proceeding embodiments, wherein the protein of interest comprises a non-native secondary structure. Embodiment 15. The composition of embodiment 1, wherein the fluorinated solvent is perfluorohexane and the dispersant compound is perfluoronanonic acid. Embodiment 16. The composition of embodiment 1, wherein the fluorinated solvent is perfluorooctane and the dispersant compound comprises Formula VIII: Attorney Docket No.148411.002502 PATENT (Formula VIII), wherein R1is C6F13 Embodiment 16. A method of dissolving a protein of interest in a fluorinated solvent, the method comprising: contacting the protein of interest with a dispersant compound, and dissolving the protein of interest and dispersant compound in the fluorinated solvent. Embodiment 17. The method of embodiment 16, wherein the fluorinated solvent is selected from the group consisting of perfluoropentane, perfluorohexane, perfluoroheptane, perfluorooctane, perfluoromethylcyclohexane, perfluoro-1,3-dimethylcyclohexane, and perfluorodecalin. Embodiment 18. The method of embodiment 16 or 17, wherein the fluorinated solvent is perfluorohexane. Embodiment 19. The method of embodiment 16 or 17, wherein the fluorinated solvent is perfluorooctane. Embodiment 20. The method of any one of embodiments 16-19, wherein the dispersant compound is perfluorinated. Embodiment 21. The method of embodiment 20, wherein the dispersant compound comprises Formula II: (Formula II), wherein x is 6, 7, 8, 9, Embodiment 22. The method of embodiment 21, wherein x is 7 (perfluoronanonic acid). Attorney Docket No.148411.002502 PATENT Embodiment 23. The method of embodiment 20, wherein the dispersant compound comprises Formula III: (Formula III). Embodiment 24. The 20, wherein the dispersant compound comprises Formula V: (Formula V), wherein R is OH or Embodiment 25. The method of embodiment 20, wherein the dispersant compound comprises Formula VI: (Formula VI), wherein y is 7. Embodiment 26. The method of embodiment 20, wherein the dispersant compound comprises Formula VIII: (Formula VIII), wherein R1 is C6F13, wherein R2is CN, H, or COOH. Embodiment 27. The method of embodiment 26, wherein R1is C6F13and R2is H. Attorney Docket No.148411.002502 PATENT Embodiment 28. The method of any one of embodiments 16-27, wherein the dispersant compound interacts with the protein of interest via hydrogen bonding with nitrogen donors present in the protein backbone and amino acid side chains of the protein of interest. Embodiment 29. The method of any one of embodiments 16-28, wherein the protein of interest comprises a non-native secondary structure. Embodiment 30. The method of embodiment 16, wherein the fluorinated solvent is perfluorohexane and the dispersant compound is perfluoronanonic acid. Embodiment 31. The method of embodiment 16, wherein the fluorinated solvent is perfluorooctane and the dispersant compound comprises Formula VIII: (Formula VIII), wherein R1 is C6F13 Examples The following Examples are presented to illustrate various aspects of the present application but are not intended to limit the scope of the disclosures herein. Example 1: Deciphering the mechanistic basis for perfluoroalkyl-protein interactions Although rarely used in nature, fluorine has emerged as an important elemental ingredient in the design of proteins with altered folding, stability, oligomerization propensities and bioactivity. Here, a molecular modification toolkit is described, wherein the ability of privileged perfluorinated amphiphiles to non-covalently decorate proteins is used to alter protein conformational plasticity and potentiate protein dispersion into fluorous phases. A complementary suite of biophysical, in silico and in vitro approaches were used to establish structure-activity relationships defining these phenomena and their impact on protein structural dynamics and intracellular trafficking. Notably, the lead compound, perfluoronanonic acid, was 106more potent in inducing non-native protein secondary structure compared to the well-known helix inducer trifluoroethanol. Perfluoronanonic acid additionally significantly enhanced the cellular uptake of complexed proteins. These findings Attorney Docket No.148411.002502 PATENT may advance the rational design of fluorinated proteins, inform on potential modes of toxicity for perfluoroalkyl substances, and guide the development of fluorine-modified biologics with desirable functional properties for drug discovery and delivery applications. Introduction Perfluoroalkyl substances (PFAS) are organofluorine compounds that possess C-F bonds and other heteroatom functional groups (e.g. -OH, -CO2H). These chemicals are utilized in several industries, including automotive, household goods, construction, electronics, and biomedicine. As examples in chemical biology, PFAS represent key ingredients in supramolecular biomaterials, for use as functional handles in bio-imaging and - spectroscopy probes, and as chemical tags in metabolomic / proteomic studies. These applications frequently rely on the chemically and biologically inert nature of fluorinated compounds. However, this long-standing paradigm is being revisited as evidence suggests perfluoroalkyl compounds elicit a plurality of bioeffects in cells. Early evidence of bio-interactions previously emerged when groups reported the ability of perfluorinated amphiphiles to insert into hydrocarbon lipid bilayers and phase- separate into fluorine-rich microdomains. This phenomenon has since been exploited to develop fluorinated nano-carriers and drug delivery technologies that permit the intracellular transport of otherwise membrane-impermeable biologic cargo. However, not all these interactions are constructive. A growing body of evidence demonstrates toxicologic effects of certain PFAS chemicals, of which a select group are now recognized as environmental contaminants. A common observation across these prior studies is that minute changes in PFAS composition and structure can have profound effects on their bioactivity. Yet, thorough structure-activity relationships defining these outcomes are lacking. Here, it is shown that, in addition to their known ability to interact with cellular lipids, select PFAS chemicals noncovalently adsorb to proteins and allow proteins to partition into fluorous phases. Utilizing complementary biophysical, chemical, and computational assays, the mechanistic basis for PFAS-protein interactions was probed. Fundamental structure- activity relationships defining the association of select PFAS chemicals and proteins are delineated, and their impact on protein conformational dynamics and intracellular trafficking are investigated. In summary, the findings reveal previously unknown interactions of PFAS compounds with a wide variety of protein classes. This work may enable a deeper understanding of the bioeffects of PFAS chemicals and lead to the identification of new fluorochemical-mediated protein formulation methods. Results and Discussion Attorney Docket No.148411.002502 PATENT Screening Perfluoroalkyl-Protein Interaction Affinity Perfluorinated compounds possess unusual physicochemical properties that result from the juxtaposition of weak intermolecular forces, caused by the low polarizability of fluorines, and the strong intramolecular C-F bond. For PFAS amphiphiles, the combination of polar head group and fluorophilic tail additionally leads to their preferential assembly at water-fluorous interfaces. Based on these unique properties, it was speculated that PFAS compounds may noncovalently associate with proteins to mediate their phase separation into fluorous media. To test this, a screening assay was developed to qualitatively investigate the binding affinity of a library of perfluorinated chemicals with seven model proteins, which include human hemoglobin (Hb), green fluorescent protein (GFP), bovine serum albumin (BSA), β-Galactosidase (β-Gal), rabbit serum immunoglobulin (IgG), bovine apo-transferrin (TFN), and urease (URE). This group of model proteins captures an array of physicochemical properties ranging in molecular weight, solvent accessible surface area (SASA), isoelectric point (pI), and hydrodynamic radii. A corresponding perfluorinated small molecule test set was selected to contain a plurality of functional groups, linear perfluorocarbon chain lengths, and cyclic or aromatic geometries (FIGs.1-7). Selection of these compounds was based on their potential to form noncovalent bonds (i.e., hydrogen or ionic) with the solvent exposed protein surfaces. Notably, perfluorooctanoic (PFOA, 6), perfluoronanonic (PFNA, 7), and perfluorooctanesulfonic (PFOS, 17) acids were included. These three linear PFAS chemicals are currently regulated by the US Environmental Protection Agency based on their reproductive, immune, and hepatic toxicity (References: 44-46). In sum, the structural and biochemical diversity represented in the protein and fluorochemical libraries was rationally selected to allow structure-function-performance relationships to be ascertained from binding studies. To investigate PFAS-protein binding avidity, an assay was developed to measure the concentration of protein dispersed into perfluorohexane (PFH) in the presence of each fluorochemical compound (1000:1 molar ratio with protein). Protein dispersion into PFH served as a quantitative measure of PFAS-protein avidity, where the amount of dispersed protein was normalized to its initial concentration to evaluate binding interactions. Results (FIG.8A-8G) showed that, in the absence of a fluorochemical dispersant, all seven proteins were insoluble within PFH (see compound 0). However, compound 7, the ionic perfluoroalkyl PFNA, showed a marked capacity to phase separate all of the tested proteins into the fluorous solvent, with dispersion efficiencies of 53% – 100%. Perfluorocyclohexanecarboxylic acid (compound 13), PFOS (compound 17) and 1H,1H- Attorney Docket No.148411.002502 PATENT Perfluorononylamine also demonstrated a capacity to disperse many of the protein candidates into PFH; however, their behavior was not as consistent or as potent as PFNA. Two interesting conclusions emerged from this data. The first is that carboxylic acids possessed superior binding avidity relative to other heteroatom functional groups represented in the compound library. The second is a distinct optimum of the tail length at eight perfluorocarbons (FIG.9A). In fact, subtraction or addition of a single -CF2group from / to PFNA (e.g., compound 6 and 8, respectively) significantly compromised its association with most proteins. The notable exception was β-Gal, which showed a stepwise increase in dispersion efficiency as the perfluorocarbon tail was increased from -(CF)7CF3 (compound 7) to -(CF)10CF3(compound 10). A sharp drop off in dispersion efficiency was observed at - (CF)12CF3 (compound 11). This demonstrates that, although PFNA was optimal for the dispersion of most proteins, high molecular weight biomacromolecules, like β-Gal (MW = 464 kDa, the largest in the studied set), required a slightly longer chain length to produce a stable fluorous coating and maximize fluorous dispersion. More broadly, the data suggested that there exists a threshold of fluorine content required to efficiently solubilize PFAS decorated proteins into fluorous media. Increasing the fluorine content beyond this threshold may promote fluorine-fluorine driven association to generate supramolecular assemblies and / or protein flocculates; an assertion that was further supported by the observation of protein precipitates in the low dispersion efficiency trials. These large aggregates were subsequently removed during the centrifugation step of the screening assay to ensure only soluble protein were measured. In addition to an optimal tail length (–(CF2)7CF3), further analyses revealed an ideal logP of ~5 for fluorochemical protein dispersion (FIG.9B). Conversely, a correlation between fluoroamphiphile dissociation constant (pKa) and dispersion trends was not observed (FIG.9C). Taken together, this data suggested that four properties were important to PFAS- protein interaction avidity. First, perfluorinated carboxylic acids were found to be privileged among the functional groups tested. Secondly, an amphiphilic character that balanced interaction of the fluorochemical with polar protein surfaces and the fluorous solvent was found to be preferred. Next, it was necessary that the compounds possess an acidic proton, but there was no correlation between PFAS pKa and protein adsorption. Finally, linear perfluorocarbons outperformed cyclic and aromatic species. Structure-Function-Performance Relationships of PFNA-Protein Complexation Next, several physicochemical properties of the tested proteins to their phase separation efficiency were compared, with the goal of mechanistically elucidating structural Attorney Docket No.148411.002502 PATENT and chemical determinants of PFAS binding activity (FIG.10A-10F). Given the unique affinity of PFNA, this compound was prioritized for subsequent biophysical experiments. Previous studies suggested that perfluoralkanoic acids decorate proteins via noncovalent hydrogen bonding and electrostatic interactions. Therefore, the hypothesize was that protein size (e.g., molecular weight, solvent-accessible surface area (SASA), hydrodynamic radius) and ionization potential (e.g., isoelectric point (pI)) have predictive capabilities for the potency of PFNA-protein interactions. An inve...
Claims
Attorney Docket No. 148411.002502 PATENT What is claimed is:
1. A composition comprising a fluorinated solvent, a dispersant compound, and a protein of interest, wherein: the dispersant compound interacts with the protein of interest; and the protein of interest is dissolved in the fluorinated solvent.
2. The composition of claim 1, wherein the fluorinated solvent is selected from the group consisting of perfluoropentane, perfluorohexane, perfluoroheptane, perfluorooctane, perfluoromethylcyclohexane, perfluoro-1,3-dimethylcyclohexane, and perfluorodecalin.
3. The composition of claims 1 or 2, wherein the fluorinated solvent is perfluorohexane.
4. The composition of claims 1 or 2, wherein the fluorinated solvent is perfluorooctane.
5. The composition of any proceeding claim, wherein the dispersant compound is perfluorinated.
6. The composition of claim 5, wherein the dispersant compound comprises Formula II: (Formula II), wherein x is 6, 7, 8, 9,7. The composition of claim 6, wherein x is 7 (perfluoronanonic acid).
8. The composition of claim 5, wherein the dispersant compound comprises Formula III: (Formula III).Attorney Docket No. 148411.002502 PATENT 9. The composition of claim 5, wherein the dispersant compound comprises Formula V: (Formula V), wherein R is OH or COH.
10. The composition of claim 5, wherein the dispersant compound comprises Formula VI: (Formula VI), wherein y is 7.
11. The composition of claim 5, wherein the dispersant compound comprises Formula VIII: (Formula VIII), wherein R1is C6F13,wherein R2 is CN, H, or COOH.
12. The composition of claim 11, wherein R1is C6F13and R2is H.
13. The composition of any proceeding claim, wherein the dispersant compound interacts with the protein of interest via hydrogen bonding with nitrogen donors present in the protein backbone and amino acid side chains of the protein of interest.
14. The composition of any proceeding claims, wherein the protein of interest comprises a non-native secondary structure.Attorney Docket No. 148411.002502 PATENT 15. The composition of claim 1, wherein the fluorinated solvent is perfluorohexane and the dispersant compound is perfluoronanonic acid.
16. The composition of claim 1, wherein the fluorinated solvent is perfluorooctane and the dispersant compound comprises Formula VIII: (Formula VIII), wherein R1is C6F13and16. A method of dissolving a protein of interest in a fluorinated solvent, the method comprising: contacting the protein of interest with a dispersant compound, and dissolving the protein of interest and dispersant compound in the fluorinated solvent.
17. The method of claim 16, wherein the fluorinated solvent is selected from the group consisting of perfluoropentane, perfluorohexane, perfluoroheptane, perfluorooctane, perfluoromethylcyclohexane, perfluoro-1,3-dimethylcyclohexane, and perfluorodecalin.
18. The method of claim 16 or 17, wherein the fluorinated solvent is perfluorohexane.
19. The method of claim 16 or 17, wherein the fluorinated solvent is perfluorooctane.
20. The method of any one of claims 16-19, wherein the dispersant compound is perfluorinated.
21. The method of claim 20, wherein the dispersant compound comprises Formula II: (Formula II), wherein x is 6, 7, 8, 9,Attorney Docket No. 148411.002502 PATENT 22. The method of claim 21, wherein x is 7 (perfluoronanonic acid).
23. The method of claim 20, wherein the dispersant compound comprises Formula III: (Formula III).
24. The method of claim 20, wherein the dispersant compound comprises Formula V: (Formula V), wherein R is OH or COH.
25. The method of claim 20, wherein the dispersant compound comprises Formula VI: (Formula VI), wherein y is 7.
26. The method of claim 20, wherein the dispersant compound comprises Formula VIII: (Formula VIII), wherein R1is C6F13,wherein R2 is CN, H, or COOH.
27. The method of claim 26, wherein R1is C6F13and R2is H.Attorney Docket No. 148411.002502 PATENT 28. The method of any one of claims 16-27, wherein the dispersant compound interacts with the protein of interest via hydrogen bonding with nitrogen donors present in the protein backbone and amino acid side chains of the protein of interest.
29. The method of any one of claims 16-28, wherein the protein of interest comprises a non- native secondary structure.
30. The method of claim 16, wherein the fluorinated solvent is perfluorohexane and the dispersant compound is perfluoronanonic acid.
31. The method of claim 16, wherein the fluorinated solvent is perfluorooctane and the dispersant compound comprises Formula VIII: (Formula VIII), wherein R1 is C6F13 and