Improved method for extracting spider silk proteins

The method of using calcium chloride and alcohol solubilizes recombinant spider silk proteins, addressing aggregation issues and achieving high yields of biologically active, mechanically superior silk proteins.

JP7750520B2Active Publication Date: 2025-10-07BOLT THREADS INC
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Patent Information

Application Number
JP2022507782
Authority / Receiving Office
JP · JP
Patent Type
Patents
Current Assignee / Owner
Priority Date
2019-08-22
Filing Date
2020-08-21
Publication Date
2025-10-07
Estimated Expiration
2040-08-21

AI Technical Summary

Technical Problem

Recombinant spider silk polypeptides form undesirable aggregates during production and purification, making solubilization difficult and leading to low yields of biologically active proteins with poor mechanical properties.

Method used

A method involving the use of a solution containing calcium chloride and alcohol, such as methanol, to solubilize insoluble recombinant spider silk protein by adding the insoluble portion from a host cell culture, followed by incubation and optional evaporation to enhance solubility and purity.

Benefits of technology

The method achieves high solubilization of recombinant spider silk proteins, yielding up to 95% full-length protein with improved mechanical properties and purity, suitable for producing silk protein powders.

✦ Generated by Eureka AI based on patent content.

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Abstract

Provided herein is a method for improving the solubilization, extraction, and isolation of recombinant spider silk proteins using a salt and alcohol buffer. Provided herein is a method for solubilizing recombinant spider silk proteins from host cells, the method comprising the steps of: providing a cell culture comprising host cells, wherein the host cells express a recombinant spider silk protein; recovering an insoluble portion from the cell culture, wherein the insoluble portion comprises the recombinant spider silk protein; and adding the insoluble portion of the host cells to a solution comprising salt and alcohol, thereby solubilizing the recombinant spider silk protein in the solution.
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Description

[Technical Field]

[0001] CROSS-REFERENCE TO RELATED APPLICATIONS This application claims the benefit of U.S. Provisional Application No. 62 / 890,473, filed August 22, 2019, the entire contents of which are incorporated herein by reference.

[0002] Sequence Listing This application contains a Sequence Listing that was submitted via EFS-Web and is incorporated herein in its entirety. The ASCII copy, created on XX / XX / 20XX, is named XXXXXUS_sequencelisting.txt and is X,XXX,XXX bytes in size. [Background technology]

[0003] background Spider silk polypeptides are large (>150 kDa, >1000 amino acids) polypeptides that can be divided into three domains: the N-terminal non-repetitive domain (NTD), the repetitive domain (REP), and the C-terminal non-repetitive domain (CTD). The NTD and CTD are relatively small (approximately 150 and 100 amino acids, respectively), well-characterized, and are thought to confer aqueous stability, pH sensitivity, and molecular alignment upon aggregation. The NTD also possesses a strong predicted secretion tag, which is often removed during heterologous expression. The native polypeptide is approximately 90% repetitive and folds into crystalline and amorphous regions that confer strength and flexibility, respectively, to silk fibers.

[0004] Recombinant spider silk polypeptides form undesirable, insoluble aggregates during production and purification. Their ability to aggregate and form β-sheet structures makes solubilization of proteins based on silk sequences difficult. Solubilization of these proteins often requires chemical conditions unfavorable to biological molecules, often resulting in protein degradation, resulting in low yields and the inevitable production of solids or fibers with poor toughness and an unpleasant texture. Therefore, improved methods for purifying these polypeptides to increase their solubility and improve silk protein recovery are needed. Summary of the Invention

[0005] Provided herein is a method for solubilizing recombinant spider silk protein from a host cell, the method comprising the steps of: providing a cell culture comprising host cells, wherein the host cells express a recombinant spider silk protein; recovering an insoluble portion from the cell culture, wherein the insoluble portion comprises the recombinant spider silk protein; adding the insoluble portion of the host cells to a solution containing salt and alcohol, thereby solubilizing the recombinant spider silk protein in the solution.

[0006] In some embodiments, the salt comprises a calcium salt. In some embodiments, the calcium salt comprises at least one of calcium chloride, calcium nitrate, calcium thiocyanate, calcium iodide, or calcium bromide. In some embodiments, the calcium salt comprises calcium chloride.

[0007] In some embodiments, the solution comprises 1 M, 1.5 M, 2 M, 2.5 M, 3 M, or 4 M calcium chloride. In some embodiments, the solution comprises 2 M calcium chloride. In some embodiments, the calcium salt comprises calcium nitrate.

[0008] In some embodiments, the salt comprises a strontium salt or a barium salt.

[0009] In some embodiments, the insoluble portion is at least 5%, 10%, 15%, 20%, 25%, 30%, or 35% (w / v) of the solution volume. In some embodiments, the insoluble portion is about 15% (w / v) of the solution volume. In some embodiments, the insoluble portion is at most about 35% (w / v) of the solution volume.

[0010] In some embodiments, the ratio of the volume of the solution to the insoluble portion is at least 3x, 5x, or 7x. In some embodiments, the ratio of the volume of the solution to the insoluble portion is at least 3x. In some embodiments, the ratio of the volume of the solution to the insoluble portion is about 7x.

[0011] In some embodiments, the alcohol comprises at least one of methanol, ethanol, or isopropanol. In some embodiments, the alcohol comprises methanol. In some embodiments, the solution comprises 2 M calcium chloride and methanol.

[0012] In some embodiments, the insoluble portion is incubated with the solution at a temperature between 20° C. and 70° C. In some embodiments, the insoluble portion is incubated at room temperature. In some embodiments, the insoluble portion is incubated at about 35° C. In some embodiments, the insoluble portion is incubated at about 55° C. In some embodiments, the insoluble portion is incubated at 70° C. or below. In some embodiments, the insoluble portion is incubated at 20° C. or above.

[0013] In some embodiments, the insoluble portion is incubated in the solution for 15 to 120 minutes. In some embodiments, the insoluble portion is incubated in the solution for 30 minutes. In some embodiments, the method further comprises evaporating the alcohol.

[0014] In some embodiments, the insoluble portion comprises a cell lysate pellet. In some embodiments, recovering the insoluble portion from the cell culture comprises lysing the host cells. In some embodiments, lysis comprises heat treatment, chemical treatment, shear disruption, physical homogenization, microfluidization, sonication, or chemical homogenization.

[0015] In some embodiments, the step of recovering the insoluble portion of the cell culture further comprises centrifuging the lysed cells to obtain a cell lysate pellet.

[0016] In some embodiments, the method further comprises removing impurities from the solution. In some embodiments, removing impurities comprises adding an aqueous solution to precipitate the impurities. In some embodiments, the aqueous solution comprises water.

[0017] In some embodiments, the step of removing the impurities comprises filtration, centrifugation, gravity settling, adsorption, dialysis, or phase separation, hi some embodiments, the filtration is ultrafiltration, microfiltration, or diafiltration.

[0018] In some embodiments, the method comprises: isolating the recombinant spider silk protein from the solution, thereby producing an isolated recombinant spider silk protein; Further includes:

[0019] In some embodiments, the amount of isolated recombinant spider silk protein is measured using Western blot. In some embodiments, the amount of isolated recombinant spider silk protein is measured using ELISA. In some embodiments, the amount of isolated recombinant spider silk protein is measured using size exclusion chromatography.

[0020] In some embodiments, the isolated recombinant spider silk protein is a full-length recombinant spider silk protein.

[0021] In some embodiments, the isolated recombinant spider silk protein comprises at least 60%, at least 65%, at least 70%, at least 75%, at least 80%, at least 85%, at least 90%, or at least 95% of the full-length recombinant spider silk protein.

[0022] In some embodiments, the amount of full-length recombinant spider silk protein is measured using Western blot. In some embodiments, the amount of full-length recombinant spider silk protein is measured using size exclusion chromatography.

[0023] In some embodiments, the purity of the isolated recombinant spider silk protein is 5-10%, 10-15%, 15-20%, 20-25%, 25-30%, 30-35%, 35-40%, 45-50%, 50-55%, 55-60%, 60-65%, 65-70%, 70-75%, 75-80%, 80-85%, 85-90%, 90-95%, or 95-100%.

[0024] In some embodiments, the recombinant spider silk protein is a highly crystalline silk protein, a silk protein with a high beta-sheet content, or a low solubility silk protein. In some embodiments, the cell culture comprises fungal, bacterial, or yeast cells. In some embodiments, the bacterial cells are Escherichia coli cells. In some embodiments, the method further comprises drying the isolated recombinant spider silk protein to produce a silk protein powder.

[0025] In another aspect, provided herein is a method for isolating recombinant spider silk protein from a host cell, the method comprising the steps of: providing a cell culture comprising host cells, wherein the host cells express a recombinant spider silk protein; recovering an insoluble portion from the cell culture, wherein the insoluble portion comprises the recombinant spider silk protein; adding the insoluble portion of the host cells to a solution comprising 2M calcium chloride and methanol, thereby solubilizing the recombinant spider silk protein in the solution; and isolating the recombinant spider silk protein from the solution, thereby producing an isolated recombinant spider silk protein. In some embodiments, the method further comprises drying the isolated recombinant spider silk protein to produce a silk protein powder.

[0026] In another aspect, provided herein are compositions comprising recombinant spider silk proteins produced by the methods described herein.

[0027] In some embodiments, the composition comprises recombinant spider silk protein powder, in some embodiments, the recombinant spider silk comprises at least 55%, at least 60%, at least 65%, at least 70%, at least 75%, at least 80%, at least 85%, at least 90%, at least 95%, or 100% full-length recombinant spider silk.

[0028] In another aspect, provided herein is a silk solid comprising a recombinant spider silk protein produced by the methods described herein. [The present invention 1001] 1. A method for solubilizing recombinant spider silk proteins from a host cell, the method comprising the steps of: providing a cell culture comprising host cells, said host cells expressing a recombinant spider silk protein; recovering an insoluble portion from the cell culture, wherein the insoluble portion comprises the recombinant spider silk protein; and adding the insoluble portion of the host cells to a solution comprising salt and alcohol, thereby solubilizing the recombinant spider silk protein in the solution. [The present invention 1002] 1001. The method of claim 1001, wherein the salt comprises a calcium salt. [The present invention 1003] 1002. The method of claim 1002, wherein said calcium salt comprises at least one of calcium chloride, calcium nitrate, calcium thiocyanate, calcium iodide, or calcium bromide. [The present invention 1004] 1003. The method of claim 1003, wherein the calcium salt comprises calcium chloride. [The present invention 1005] The method of any of claims 1001 to 1004, wherein said solution comprises at least 1M, 1.5M, 2M, 2.5M, 3M, or 4M calcium chloride. [The present invention 1006] 1005. The method of claim 1004, wherein said solution comprises at least 2M calcium chloride. [The present invention 1007] 1003. The method of claim 1003, wherein the calcium salt comprises calcium nitrate. [The present invention 1008] 1001. The method of claim 1001, wherein the salt comprises a strontium salt or a barium salt. [The present invention 1009] 9. The method of any of claims 1001 to 1008, wherein said insoluble portion is at least 5%, 10%, 15%, 20%, 25%, 30%, or 35% (w / v) of the solution volume. [The present invention 1010] 1009. The method of claim 10, wherein the insoluble portion is about 15% (w / v) of the solution volume. [The present invention 1011] 1009. The method of claim 10, wherein said insoluble portion is at most about 35% (w / v) of the solution volume. [The present invention 1012] 1012. The method of any one of claims 1001 to 1011, wherein the ratio of the volume of said solution to said insoluble portion is at least 3x, 5x, or 7x. [The present invention 1013] 1013. The method of claim 1012, wherein the ratio of the volume of the solution to the volume of the insoluble portion is at least 3x. [The present invention 1014] 1012. The method of claim 1012, wherein the ratio of the volume of the solution to the volume of the insoluble portion is about 7x. [The present invention 1015] The method of any of the preceding inventions, wherein the alcohol comprises at least one of methanol, ethanol, or isopropanol. [The present invention 1016] 1015. The method of claim 1015, wherein the alcohol comprises methanol. [The present invention 1017] 1017. The method of any one of claims 1001 to 1016, wherein the solution comprises 2M calcium chloride and methanol. [The present invention 1018] The method according to any one of claims 1001 to 1017, wherein the insoluble portion is incubated with the solution at a temperature of 20°C to 70°C. [The present invention 1019] The method of claim 1018, wherein the insoluble portion is incubated at room temperature. [The present invention 1020] The method of claim 1018, wherein the insoluble portion is incubated at about 35°C. [The present invention 1021] The method of claim 1018, wherein the insoluble portion is incubated at about 55°C. [The present invention 1022] The method of claim 1018, wherein the insoluble portion is incubated at 70°C or less. [The present invention 1023] The method of claim 1018, wherein the insoluble portion is incubated at 20°C or higher. [The present invention 1024] The method according to any one of claims 1001 to 1024, wherein the insoluble portion is incubated in the solution for 15 to 120 minutes. [The present invention 1025] 1025. The method of claim 1024, wherein the insoluble portion is incubated in the solution for 30 minutes. [The present invention 1026] The method of any one of claims 1001 to 1025, further comprising the step of evaporating the alcohol. [The present invention 1027] 1027. The method of any one of claims 1001 to 1026, wherein said insoluble portion comprises a cell lysate pellet. [The present invention 1028] The method of any of claims 1001 to 1027, wherein the step of recovering the insoluble portion from the cell culture comprises lysing the host cells. [The present invention 1029] 1028. The method of claim 1028, wherein said lysing comprises heat treatment, chemical treatment, shear disruption, physical homogenization, microfluidization, sonication, or chemical homogenization. [The present invention 1030] 1029. The method of any one of claims 1028 to 1029, wherein the step of recovering said insoluble portion of said cell culture further comprises centrifuging the lysed cells to obtain a cell lysate pellet. [The present invention 1031] The method of any one of claims 1001 to 1030, further comprising the step of removing impurities from said solution. [The present invention 1032] 1031. The process of claim 1031, wherein the step of removing said impurities comprises adding an aqueous solution to precipitate said impurities. [The present invention 1033] 1032. The method of claim 1032, wherein the aqueous solution is water. [The present invention 1034] 1031. The method of claim 1031, wherein the step of removing impurities comprises filtration, centrifugation, gravity settling, adsorption, dialysis, or phase separation. [This invention 1035] 1034. The method of claim 1034, wherein said filtration is ultrafiltration, microfiltration, or diafiltration. [The present invention 1036] 1036. The method of any of claims 1001 to 1035, wherein the solubilized recombinant spider silk protein comprises at least 60%, at least 65%, at least 70%, at least 75%, at least 80%, at least 85%, at least 90%, or at least 95% of full-length recombinant spider silk protein. [This invention 1037] isolating the recombinant spider silk protein from said solution, thereby producing an isolated recombinant spider silk protein. Any of the methods of claims 1001 to 1036, further comprising: [The present invention 1038] 1037. The method of claim 1037, wherein the amount of isolated recombinant spider silk protein is measured using Western blot. [This invention 1039] 1039. The method of claim 1037 or 1038, wherein the amount of isolated recombinant spider silk protein is measured using ELISA. [The present invention 1040] 1039. The method of any of claims 1037 to 1039, wherein the amount of isolated recombinant spider silk protein is measured using size exclusion chromatography. [This invention 1041] 1041. The method of any of claims 1037 to 1040, wherein said isolated recombinant spider silk protein is a full-length recombinant spider silk protein. [The present invention 1042] 1040. The method of any of claims 1037 to 1040, wherein said isolated recombinant spider silk protein comprises at least 60%, at least 65%, at least 70%, at least 75%, at least 80%, at least 85%, at least 90%, or at least 95% of the full-length recombinant spider silk protein. [This invention 1043] 1041. The method of claim 1041, wherein the amount of full-length recombinant spider silk protein is measured using Western blot. [This invention 1044] 1041. The method of claim 1041, wherein the amount of full-length recombinant spider silk protein is measured using size exclusion chromatography. [This invention 1045] Any of the methods of inventions 1001 to 1044, wherein the purity of the isolated recombinant spider silk protein is 5-10%, 10-15%, 15-20%, 20-25%, 25-30%, 30-35%, 35-40%, 45-50%, 50-55%, 55-60%, 60-65%, 65-70%, 70-75%, 75-80%, 80-85%, 85-90%, 90-95%, or 95-100%. [The present invention 1046] 1046. The method of any one of claims 1001 to 1045, wherein said recombinant spider silk protein is a highly crystalline silk protein, a silk protein with a high beta sheet content, or a low solubility silk protein. [This invention 1047] 1047. The method of any one of claims 1001 to 1046, wherein the recombinant spider silk protein comprises a sequence set forth in SEQ ID NOs: 1 to 27 or 39 to 59. [This invention 1048] The method of any of claims 1001 to 1047, wherein said cell culture comprises fungal, bacterial, or yeast cells. [This invention 1049] The method according to any one of claims 1001 to 1048, wherein the bacterial cells are Escherichia coli cells. [The present invention 1050] drying the isolated recombinant spider silk protein to produce a silk protein powder. Any of the methods of claims 1001 to 1049, further comprising: [This invention 1051] 1. A method for isolating recombinant spider silk proteins from a host cell, the method comprising the steps of: providing a cell culture comprising host cells, said host cells expressing a recombinant spider silk protein; recovering an insoluble portion from the cell culture, wherein the insoluble portion comprises the recombinant spider silk protein; adding the insoluble portion of the host cells to a solution comprising at least 0.1 M calcium chloride and methanol, thereby solubilizing the recombinant spider silk protein in the solution; and isolating said recombinant spider silk protein from said solution, thereby producing isolated recombinant spider silk protein. [This invention 1052] 1051. The method of claim 1051, wherein said solution comprises at least 1 M, 1.5 M, 2 M, 2.5 M, 3 M, or 4 M calcium chloride. [This invention 1053] drying the isolated recombinant spider silk protein to produce a silk protein powder. The method of the present invention 1051 further comprising: [This invention 1054] A composition comprising a recombinant spider silk protein produced by any of the methods of the preceding invention. [This invention 1055] 1054. The composition of claim 1054, comprising recombinant spider silk protein powder. [This invention 1056] 105. The composition of claim 1054 or 1055, wherein said recombinant spider silk comprises at least 55%, at least 60%, at least 65%, at least 70%, at least 75%, at least 80%, at least 85%, at least 90%, at least 95%, or 100% full-length recombinant spider silk. [This invention 1057] A silk solid comprising a recombinant spider silk protein produced by any of the methods of the present inventions 1001 to 1053. [Brief explanation of the drawings]

[0029] A brief description of some of the figures in the drawing The following description and accompanying drawings provide a better understanding of these and other features, aspects, and advantages of the present invention.

[0030] [Figure 1] 1 shows an exemplary flow chart of the solubilization process. [Figure 2] 1 shows a second exemplary flow chart of the solubilization process. [Figure 3] 1 provides an immunoblot showing P0 spider silk proteins extracted with methanol containing calcium salts. [Figure 4] 1 provides a graph of P0 spider silk protein in solution after incubation with agitation at 35° C. and 55° C. [Figure 5A]SEC peak profile of P0 spider silk protein after precipitation in water to remove P0 protein fragments. [Figure 5B] The SEC peak profile after dialysis and lyophilization is shown. DETAILED DESCRIPTION OF THE INVENTION

[0031] Detailed Description definition Terms used in the claims and specification are defined as set forth below unless otherwise specified.

[0032] Unless defined herein, scientific and technical terms used in connection with the methods and compositions described herein shall have the meanings commonly understood by those of ordinary skill in the art. Furthermore, unless the context clearly dictates otherwise, singular terms shall include the plural and plural terms shall include the singular. Generally, the nomenclature and techniques used in connection with biochemistry, enzymology, molecular and cell biology, microbiology, genetics, and polypeptide and nucleic acid chemistry and hybridization described herein are those well known and commonly used in the art.

[0033] The methods and techniques of the present invention are generally performed, unless otherwise indicated, according to conventional methods well known in the art and as described in the various general and more specific references cited and discussed throughout this specification. For example, Sambrook et al., Molecular Cloning: A Laboratory Manual, 2d ed., Cold Spring Harbor Laboratory Press, Cold Spring Harbor, NY (1989); Ausubel et al., Current Protocols in Molecular Biology, Greene Publishing Associates (1992, and Supplements to 2002); Harlow and Lane, Antibodies: A Laboratory Manual, Cold Spring Harbor Laboratory Press, Cold Spring Harbor, NY(1990);Taylor and Drickamer,Introduction to Glycobiology,Oxford Univ.Press(2003);Worthington Enzyme Manual,Worthington Biochemical Corp.,Freehold,NJ;Handbook of Biochemistry:Section A Proteins,Vol I,CRC Press(1976);Handbook of Biochemistry:Section A Proteins,Vol II,CRC Press(1976);Essentials of Glycobiology,Cold Spring Harbor Laboratory See Press (1999).

[0034] All publications, patents, and other references mentioned herein are incorporated by reference in their entirety.

[0035] The following terms, unless otherwise specified, shall be understood to have the following meanings:

[0036] The term "in vitro" refers to processes that occur away from an organism, for example, in living cells growing in tissue culture.

[0037] The term "in vivo" refers to a process that occurs within a living organism.

[0038] As used herein, the term "clarifying" refers to a method of removing host cell biomass, such as whole cells, lysed cells, membranes, lipids, organelles, nuclei, non-spider silk proteins, or other unwanted cellular parts or products, or any other undesirable portion of a cell culture. Purifying can also refer to the removal of impurities from a partially purified or separated spider silk composition. Impurities include, but are not limited to, non-spider silk proteins, degraded spider silk proteins, large aggregates of proteins, chemicals used during the purification and isolation process, or other undesirable materials.

[0039] As used herein, the term "purity" refers to the fraction of all components isolated in a sample, e.g., an extracted sample, such as the amount of isolated recombinant spider silk protein, full-length isolated recombinant spider silk protein, as part of, or as a fragment of, a lipid, protein, membrane, or other molecule.

[0040] "Silk solids" or "recombinant silk solids" refer to isolated recombinant spider silk compositions, such as fibers, extrudates, powders, or pellets. An extrudate is a recombinant spider silk composition that has been extruded through a spinneret.

[0041] The term "polynucleotide" or "nucleic acid molecule" refers to a polymeric form of nucleotides having a length of at least 10 bases. Such terms include DNA molecules (e.g., cDNA or genomic DNA or synthetic DNA) and RNA molecules (e.g., mRNA or synthetic RNA), as well as analogs of DNA or RNA containing non-natural nucleotide analogs, non-natural internucleoside linkages, or both. Nucleic acids can be in any topological conformation. For example, nucleic acids can be single-stranded, double-stranded, triple-stranded, quadruplexed, partially double-stranded, branched, hairpinned, circular, or padlocked conformation.

[0042] Unless otherwise specified, for any sequence described herein in the general format of "SEQ ID NO:," for example, a "nucleic acid comprising SEQ ID NO: 1" refers to a nucleic acid having, at least in part, (i) the sequence set forth in SEQ ID NO: 1, or (ii) a sequence complementary to SEQ ID NO: 1. The alternative is dictated by the context. For example, if the nucleic acid is being used as a probe, the alternative is dictated by the requirement that the probe be complementary to the desired target.

[0043] "Isolated" RNA, DNA, or mixed polymers are those that are substantially separated from other cellular components that naturally accompany the natural polynucleotide in the natural host cell to which they belong, such as naturally associated ribosomes, polymerases, and genomic sequences.

[0044] The term "recombinant" refers to a biological molecule, e.g., a gene or polypeptide, that (1) has been removed from its natural environment, (2) is not associated in nature with all or part of a polynucleotide with which the gene is found, (3) is operably linked to a polynucleotide with which it is not linked in nature, or (4) is not naturally occurring. The term "recombinant" can be used in reference to cloned DNA isolates, chemically synthesized polynucleotide analogs, or polynucleotide analogs biologically synthesized in heterologous systems, as well as the polypeptides and / or mRNAs encoded by such nucleic acids.

[0045] As used herein, an endogenous nucleic acid sequence is considered "recombinant" when a heterologous sequence is placed adjacent to the endogenous nucleic acid sequence in the genome of an organism to alter the expression of the endogenous nucleic acid sequence (or the polypeptide product encoded by that sequence). In this case, the heterologous sequence is a sequence that is not naturally adjacent to the endogenous nucleic acid sequence, regardless of whether the heterologous sequence is itself endogenous (from the same host cell or its progeny) or exogenous (from a different host cell or its progeny). As an example, a promoter sequence replaces the native promoter of a gene present in the genome of a host cell (e.g., by homologous recombination) to alter the expression pattern of the gene. The gene is considered "recombinant" because it is separated from at least some of the sequences that naturally flank it. In certain embodiments, the heterologous nucleic acid molecule is not endogenous to the organism. In further embodiments, the heterologous nucleic acid molecule is a plasmid or molecule that has been integrated into a host chromosome by homologous or random integration.

[0046] A nucleic acid is also considered "recombinant" if it contains any alteration that does not occur naturally relative to the corresponding nucleic acid in the genome. For example, an endogenous coding sequence is considered "recombinant" if it contains an insertion, deletion, or point mutation introduced artificially, such as by human intervention. "Recombinant nucleic acid" also includes nucleic acids integrated into a host cell chromosome at a heterologous site and nucleic acid constructs present as episomes.

[0047] The term "percent sequence identity" in the context of nucleic acid sequences refers to the residues that are the same between two sequences when aligned for maximum correspondence. The length of sequence identity comparison can be over a stretch of at least about 9 nucleotides, typically at least about 20 nucleotides, more typically at least about 24 nucleotides, typically at least about 28 nucleotides, more typically at least about 32 nucleotides, and preferably at least about 36 nucleotides or more. There are many different algorithms known in the art that can be used to measure nucleotide sequence identity. For example, polynucleotide sequences can be compared using FASTA, Gap, or Bestfit, programs in the Wisconsin Package Version 10.0, Genetics Computer Group (GCG), Madison, Wis. FASTA provides alignment and percent sequence identity of the regions of optimal overlap between the query and search sequences. Pearson, Methods Enzymol. 183:63-98 (1990) (the entire contents of which are incorporated herein by reference). For example, percent sequence identity between nucleic acid sequences can be determined using FASTA with its default parameters (word size of 6 and NOPAM factor for the scoring matrix) or using Gap with default parameters as provided in GCG Version 6.1, which is incorporated herein by reference.Alternatively, sequences can be compared using the computer program BLAST (Altschul et al., J. Mol. Biol. 215:403-410 (1990); Gish and States, Nature Genet. 3:266-272 (1993); Madden et al., Meth. Enzymol. 266:131-141 (1996); Altschul et al., Nucleic Acids Res. 25:3389-3402 (1997); Zhang and Madden, Genome Res. 7:649-656 (1997)), in particular blastp or tblastn (Altschul et al., Nucleic Acids Res. 25:3389-3402 (1997)).

[0048] As used herein, the term "substantial homology" or "substantial similarity," when referring to a nucleic acid or fragment thereof, indicates that when optimally aligned with another nucleic acid (or its complementary strand) using appropriate nucleotide insertions or deletions, there is nucleotide sequence identity, as measured by well-known sequence identity algorithms such as FASTA, BLAST, or Gap, as described above, of at least about 76%, 80%, 85%, preferably at least about 90%, and more preferably at least about 95%, 96%, 97%, 98%, or 99% of the nucleotide bases.

[0049] Nucleic acids (also known as polynucleotides) can include both sense and antisense strands of RNA, cDNA, and genomic DNA, as well as synthetic forms and mixed polymers thereof. They can be chemically or biochemically modified or contain non-natural or derivatized nucleotide bases, as will be readily recognized by those skilled in the art. Such modifications include, for example, labels, methylation, substitution of one or more analogs of naturally occurring nucleotides, uncharged linkages (e.g., methylphosphonates, phosphotriesters, phosphoramidates, carbamates, etc.), charged linkages (e.g., phosphorothioates, phosphorodithioates, etc.), pendant moieties (e.g., polypeptides), intercalators (e.g., acridine, psoralens, etc.), chelators, alkylators, and internucleotide modifications such as modified linkages (e.g., alpha-anomeric nucleic acids, etc.). Synthetic molecules that mimic polynucleotides in their ability to bind to designated sequences using hydrogen bonding and other chemical interactions are also included. Such molecules are known in the art and include, for example, those in which peptide linkages replace phosphate linkages in the backbone of the molecule. Other modifications may include, for example, analogs in which the ribose ring contains bridging moieties or other structures, such as modifications found in "locked" nucleic acids.

[0050] The term "mutated," when used with reference to a nucleic acid sequence, means that nucleotides within a nucleic acid sequence have been inserted, deleted, or changed compared to a reference nucleic acid sequence. A single change can be made at one locus (point mutation), or multiple nucleotides can be inserted, deleted, or changed at a single locus. Furthermore, one or more changes can be made at any number of loci within a nucleic acid sequence. Nucleic acid sequences may be mutated by any method known in the art, including, but not limited to, mutagenesis techniques such as "error-prone PCR" (a method in which PCR is performed under conditions of low DNA polymerase copying fidelity, resulting in a high proportion of point mutations throughout the length of the PCR product; see, e.g., Leung et al., Technique, 1:11-15 (1989) and Caldwell and Joyce, PCR Methods Applic. 2:28-33 (1992)); and "oligonucleotide-directed mutagenesis" (a method in which site-specific mutations are generated in a cloned DNA segment of interest; see, e.g., Reidhaar-Olson and Sauer, Science 241:53-57 (1988)).

[0051] As used herein, the term "vector" is intended to refer to a nucleic acid molecule capable of transporting another nucleic acid linked thereto. One type of vector is a "plasmid," which generally refers to a circular double-stranded DNA loop into which additional DNA segments can be ligated, but also includes linear double-stranded molecules obtained by polymerase chain reaction (PCR) amplification or by treating a circular plasmid with a restriction enzyme. Other vectors include cosmids, bacterial artificial chromosomes (BACs), and yeast artificial chromosomes (YACs). Another type of vector is a viral vector, in which additional DNA segments can be ligated into the viral genome (discussed in more detail below). Some vectors are capable of autonomous replication within a host cell into which they are introduced (e.g., vectors having an origin of replication that functions in the host cell). Other vectors, upon introduction into a host cell, integrate into the genome of the host cell, thereby replicating along with the host genome. Furthermore, certain preferred vectors are capable of directing the expression of genes operably linked to them. Such vectors are referred to herein as "recombinant expression vectors" (or simply, "expression vectors").

[0052] As used herein, the term "expression system" includes vehicles or vectors for the expression of a gene in a host cell as well as vehicles or vectors that result in the stable integration of a gene into a host chromosome.

[0053] "Operatively linked" or "operably linked" expression control sequences refer to a linkage that controls a gene of interest by placing the expression control sequence in contiguous with the gene of interest, as well as expression control sequences that function in trans or at some distance with respect to the gene of interest.

[0054] As used herein, the term "expression control sequence" refers to a polynucleotide sequence necessary to affect the expression of a coding sequence operably linked thereto. Expression control sequences are sequences that control the transcription, post-transcriptional events, and translation of nucleic acid sequences. Expression control sequences include appropriate transcription initiation, termination, promoter, and enhancer sequences; signals for efficient RNA processing, such as splicing and polyadenylation signals; sequences that stabilize cytoplasmic mRNA; sequences that increase translation efficiency (e.g., ribosome binding sites); sequences that increase polypeptide stability; and, optionally, sequences that enhance polypeptide secretion. The nature of such control sequences varies depending on the host organism; in prokaryotes, such control sequences generally include promoters, ribosome binding sites, and transcription termination sequences. The term "control sequence" is intended to include, at a minimum, all elements whose presence is essential for expression, and may also include additional elements whose presence is advantageous, such as leader sequences and fusion partner sequences.

[0055] As used herein, the term "promoter" refers to a DNA region located 5' to the mRNA transcription start site to which RNA polymerase binds to initiate gene transcription.

[0056] As used herein, the term "recombinant host cell" (or simply "host cell") is intended to refer to a cell into which a recombinant vector has been introduced. Such terms are intended to refer not only to the particular subject cell but to the progeny of such a cell. Because certain modifications, either due to mutation or environmental influences, may occur in subsequent generations, such progeny may not, in fact, be identical to the parent cell, but are still within the scope of the term "host cell" as used herein. A recombinant host cell can be an isolated cell or cell line grown in culture, or it can be a cell that is present in a living tissue or organism.

[0057] As used herein, the term "polypeptide" includes both naturally occurring and non-naturally occurring proteins, as well as fragments, mutants, derivatives, and analogs thereof. Polypeptides can be monomeric or polymeric. Furthermore, polypeptides can contain a number of different domains, each with one or more distinct activities.

[0058] As used herein, the term "molecule" means any compound, including but not limited to small molecules, peptides, polypeptides, sugars, nucleotides, nucleic acids, polynucleotides, lipids, etc., and such compounds can be natural or synthetic.

[0059] As used herein, the term "block" or "repeating unit" refers to a subsequence of more than about 12 amino acids in a natural silk polypeptide that is found repeatedly, possibly with moderate variation, in the natural silk polypeptide sequence and serves as the basic repeating unit in the silk polypeptide sequence. A block may, but does not necessarily, include a very short "motif." A "motif" refers to a sequence of about 2-10 amino acids that occurs in multiple blocks. For example, a motif may include the amino acid sequences GGA, GPG, or AAAAA. (SEQ ID NO: 63) An arrangement of multiple blocks is a "block copolymer."

[0060] As used herein, the term "repeat domain" refers to a sequence selected from a set of contiguous (uninterrupted by substantially non-repetitive domains, excluding known silk spacer elements) repeat segments in a silk polypeptide. A natural silk sequence generally contains one repeat domain. In some embodiments, there is one repeat domain per silk molecule. A "macrorepeat" is a naturally occurring repetitive amino acid sequence that contains multiple blocks. In some embodiments, a macrorepeat has at least two repeats in the repeat domain. In further embodiments, the two repeats are not complete. As used herein, a "quasi-repeat" is an amino acid sequence that contains multiple blocks, where the blocks are similar but not identical in amino acid sequence.

[0061] As used herein, the term "repeat sequence" or "R" refers to a repeated amino acid sequence. In one embodiment, the repeat sequence comprises a macrorepeat, or a fragment of a macrorepeat. In another embodiment, the repeat sequence comprises a block. In a further embodiment, the single block is divided into two repeat sequences.

[0062] The term "about" refers to and includes the indicated value, as well as a range above and below that value. In certain embodiments, the term "about" refers to the given value ±10%, ±5%, or ±1%. In certain embodiments, where applicable, the term "about" refers to the given value(s) ± one standard deviation around that value(s).

[0063] It should be noted that as used in this specification and the appended claims, the singular forms "a," "an," and "the" include the plural unless the context clearly dictates otherwise.

[0064] Ranges set forth herein should be understood to be inclusive and to be shorthand for all values ​​within the range. For example, the range 1 to 50 should be understood to include any number, combination of numbers, or subranges from the group consisting of 1, 2, 3, 4, 5, 6, 7, 8, 9, 10, 11, 12, 13, 14, 15, 16, 17, 18, 19, 20, 21, 22, 23, 24, 25, 26, 27, 28, 29, 30, 31, 32, 33, 34, 35, 36, 37, 38, 39, 40, 41, 42, 43, 44, 45, 46, 47, 48, 49, and 50. Additionally, the range of 2-5% includes 2% and 5% and every number or fraction of a number therebetween, for example: 2.25%, 2.5%, 2.75%, 3%, 3.25%, 3.5%, 3.75%, 4%, 4.25%, 4.5%, and 4.75%.

[0065] Methods for solubilizing recombinant proteins Recombinant spider silk proteins expressed in cell culture must be purified from cellular components. In some cases, silk proteins are sequestered in insoluble cell debris or form insoluble silk protein aggregates. Insoluble silk proteins are difficult to purify and also result in low recombinant silk protein recovery. In such cases, various methods can be applied to the insoluble cell debris or aggregates to release and solubilize the silk proteins for purification, thereby increasing the recombinant silk protein recovery.

[0066] Solubilization Process Described herein are methods for solubilizing recombinant spider silk proteins, improving their extraction and purification from host cells. In some cases, the recombinant spider silk proteins are crystalline silk proteins. Crystalline silk proteins are less soluble in solution than amorphous silk proteins.

[0067] An exemplary solubilization and purification process is shown in Figure 1. Optional flow steps are indicated by dashed lines. First, silk proteins are expressed in transformed host cells. Next, the host cells are homogenized and the insoluble cellular material, including the silk proteins, is pelleted by centrifugation. The supernatant is discarded, and the insoluble material is resuspended in a solution containing salt and alcohol. In one example, the salt is calcium chloride and the alcohol is methanol. Alternatively, the host cells can be added directly to the salt / alcohol solution to lyse the cells and release the silk proteins. Incubation of the silk proteins with the salt / alcohol solution helps solubilize the proteins, and the remaining insoluble material is again pelleted by centrifugation. At this point, the supernatant containing the soluble silk proteins remains and is subjected to further steps to remove non-silk protein impurities. In some cases, water is added to precipitate the non-silk protein impurities. The precipitated impurities can be again removed by centrifugation and discarded. The alcohol supernatant containing the soluble silk proteins remains, and the alcohol is evaporated. The extracted silk proteins can be further purified, such as by filtration or dialysis, and then dried to a powder. Because alcohol remains in the supernatant containing the solubilized silk proteins, an explosion-proof centrifuge is required for this solubilization process.

[0068] A second exemplary solubilization and purification process is shown in Figure 2. Optional flow steps are indicated by dashed lines. In this example, the initial production and lysis of host cells is the same as the exemplary solubilization process shown above. Silk proteins are expressed in host cells, which are lysed. The insoluble portion containing the silk proteins is pelleted and then resuspended in a solution containing salt and alcohol. At this point, unsolubilized cellular material is allowed to settle by gravity rather than by centrifugation. The alcoholic supernatant containing the soluble silk proteins is collected, and the alcohol is evaporated. The supernatant containing the soluble silk proteins is subjected to additional steps to remove non-silk protein impurities. In some cases, water is added to precipitate the non-silk protein impurities. The precipitated impurities can be removed again by centrifugation and discarded. The extracted silk proteins can be further purified, such as by filtration or dialysis, and then dried to a powder. This solubilization process does not require an explosion-proof centrifuge.

[0069] In some embodiments, "soluble" or "solubilized" refers to the proportion of spider silk proteins that dissolve in a solution. In some embodiments, "solubilization" refers to the process of dissolving a portion of the spider silk proteins in a solution.

[0070] In some embodiments, the percentage of solubilized spider silk protein is about 1-100% w / w, 1-10% w / w, 1-5% w / w, 5-10% w / w, 10-15% w / w, 15-20% w / w, 20-25% w / w, 25-30% w / w, 30-35% w / w, 35-40% w / w, 40-45% w / w, 45-50% w / w, 50-55% w / w, 55-60% w / w, 60-65% w / w, 65-70% w / w, 70-75% w / w, 75-80% w / w, 80-85% w / w, 85-90% w / w, 90-95% w / w, or 95-100% w / w of the total spider silk. In some embodiments, the proportion of spider silk protein that is solubilized is at least about 1%, 5%, 10%, 15%, 20%, 25%, 30%, 35%, 40%, 45%, 50%, 55%, 60%, 65%, 70%, 75%, 80%, 85%, 90%, 95%, 99%, or 100% w / w of the total spider silk. In some embodiments, insoluble refers to the proportion of spider silk protein that is not dissolved in solution. In some embodiments, the percentage of insoluble spider silk protein is about 1-100% w / w, 1-10% w / w, 1-5% w / w, 5-10% w / w, 10-15% w / w, 15-20% w / w, 20-25% w / w, 25-30% w / w, 30-35% w / w, 35-40% w / w, 40-45% w / w, 45-50% w / w, 50-55% w / w, 55-60% w / w, 60-65% w / w, 65-70% w / w, 70-75% w / w, 75-80% w / w, 80-85% w / w, 85-90% w / w, 90-95% w / w, or 95-100% w / w of the total spider silk.

[0071] salt In some embodiments, a salt is added to the insoluble cell parts, pellet, or lysate to solubilize the recombinant spider silk protein. Suitable salts include, but are not limited to, salts containing calcium, strontium, barium, magnesium, lithium, sodium, potassium, or ammonium ions. Such salts include, but are not limited to, calcium chloride, calcium nitrate, calcium thiocyanate, calcium carbonate, calcium fluoride, calcium iodide, calcium oxalate, calcium phosphate, calcium sulfate, calcium bromide, strontium bromide, strontium carbonate, strontium chloride, strontium fluoride, strontium iodide, strontium nitrate, barium chloride, barium bromide, barium iodide, barium acetate, barium cyanide, barium nitrate, barium sulfate, barium carbonate, barium sulfide, barium fluoride, barium manganate, barium phosphate, barium carbonate, sodium nitrate, sodium chloride, sodium bromide, sodium iodide, sodium fluoride, potassium nitrate, potassium chloride, potassium bromide, potassium fluoride, potassium iodide, or any combination thereof. In some embodiments, the salt is calcium chloride, calcium bromide, calcium iodide, strontium chloride, strontium bromide, strontium iodide, barium chloride, barium bromide, barium iodide, or any combination thereof. In some embodiments, the salt is a calcium salt. In some embodiments, the salt is calcium chloride. In some embodiments, the salt is calcium iodide. In some embodiments, the salt is calcium bromide. In some embodiments, the salt is calcium nitrate. In some embodiments, the salt is calcium thiocyanate. In some embodiments, the salt is a strontium salt. In some embodiments, the salt is strontium chloride, strontium iodide, or strontium bromide. In some embodiments, the salt is a barium salt. In some embodiments, the salt is barium chloride, barium iodide, or barium bromide.

[0072] alcohol In some embodiments, insoluble cell parts, pellets, or lysates can be added to a solution containing alcohol to solubilize the recombinant spider silk protein. Any suitable alcohol known in the art can be used, including, but not limited to, methanol, ethanol, isopropanol, isopropyl alcohol, n-propyl alcohol, butanol, pentanol, or any derivative thereof, or any combination thereof. Primary, secondary, or tertiary alcohols can be used. Exemplary primary alcohols include ethanol and methanol. Exemplary secondary alcohols include isopropyl alcohol and n-propyl alcohol. Exemplary tertiary alcohols include tert-butanol. In some embodiments, the alcohol is methanol. In some embodiments, the alcohol is ethanol. In some embodiments, the alcohol is isopropanol.

[0073] Buffer conditions The amount of insoluble cell fraction resuspended in the salt and acid solution can also be described as a volume-to-mass ratio. An exemplary volume-to-mass ratio is 3×, e.g., 300 ml of solution to 100 g of cell mass. In some embodiments, the ratio of the mass of the insoluble cell fraction to the volume of the salt and alcohol solution can be 1-10× mass-to-volume, 1-2× mass-to-volume, 1-3× mass-to-volume, 3-5× mass-to-volume, 5-7× mass-to-volume, 6-8× mass-to-volume, or 8-10× mass-to-volume. In some embodiments, the ratio of the mass of the cells to the volume of the salt and alcohol solution can be at least 1×, 2×, 3×, 4×, 5×, 6×, 7×, 8×, 9×, or 10×. In some embodiments, the ratio of the mass of the cells to the volume of the salt and alcohol solution is at least 3×. In some embodiments, the ratio of the mass of the cells to the volume of the salt and alcohol solution is at most 3×. In some embodiments, the ratio of the mass of the cells to the volume of the salt and alcohol solution is at least 5x. In some embodiments, the ratio of the mass of the cells to the volume of the salt and alcohol solution is at least 7x. In some embodiments, the ratio of the mass of the cells to the volume of the salt and alcohol solution is at least 9x.

[0074] The insoluble portion of the cell population is resuspended in the salt and alcohol solution. The amount of cell population in the final resuspension can be expressed as a percentage of the mass of cells relative to the volume of the solution (volume weight percent). An exemplary volume weight percent of cell mass relative to the volume of the solution is 100%, for example, 100 mg of cell population and 100 ml of solution. In some embodiments, the volume weight of the insoluble portion of the cell population and the salt and alcohol solution can be 1-100%, 1-5%, 5-10%, 10-15%, 15-20%, 20-25%, 25-30%, 30-35%, 35-40%, 45-50%, 50-55%, 55-60%, 60-65%, 65-70%, 70-75%, 75-80%, 80-85%, 85-90%, 90-95%, or 95-100% w / v. In some embodiments, the weight by volume of the insoluble portion of the cell population and the salt and alcohol solution is at least 1%, 2%, 3%, 4%, 5%, 6%, 7%, 8%, 9%, 10%, 11%, 12%, 13%, 14%, 15%, 16%, 17%, 18%, 19%, 20%, 25%, 30%, 35%, 40%, 45%, 50%, 55%, 60%, 65%, 70%, 75%, 80%, 85%, 90%, 95%, or 100% w / v.

[0075] In some embodiments, the weight by volume of the insoluble portion of the cell population and the salt and alcohol solution is about 15% (w / v), hi some embodiments, the weight by volume of the insoluble portion of the cell population and the salt and alcohol solution is at most 35% (w / v).

[0076] In some embodiments, the concentration of salt in the salt and alcohol solution and in the solution containing the insoluble cell parts, pellet, or lysate can be between 0.01-10 M, 0.01-0.1 M, 0.1-0.5 M, 0.5-1 M, 1-2 M, 2-3 M, 3-4 M, 4-5 M, 5-6 M, 6-7 M, 7-8 M, 8-9 M, or 9-10 M. In some embodiments, the concentration of the salt in the alcohol solution and the solution comprising the cell lysate or pellet can be at least about 0.1 M, 0.15 M, 0.2 M, 0.25 M, 0.3 M, 0.35 M, 0.4 M, 0.45 M, 0.5 M, 0.55 M, 0.6 M, 0.65 M, 0.7 M, 0.75 M, 0.8 M, 0.85 M, 0.9 M, 0.95 M, 1 M, 1.5 M, 2 M, 2.5 M, 3 M, 3.5 M, 4 M, 4.5 M, 5 M, 5.5 M, 6 M, 6.5 M, 7 M, 7.5 M, 8 M, 8.5 M, 9 M, 9.5 M, or 10 M. In some embodiments, the concentration of the salt in the solution is 1 M, 1.5 M, 2 M, 2.5 M, or 3 M. In some embodiments, the concentration of salt in this solution is 2M.

[0077] Additional buffer modifiers that affect the structural properties of the vesicles may also be used, such as shear protectants, viscosity modifiers, and / or solutes. Excipients that improve the efficiency of homogenization or microfluidization, such as membrane softeners and molecular crowding agents, may also be added. Other modifications to the buffer may include specific pH ranges and / or concentrations of salts, organic solvents, small molecules, surfactants, zwitterions, amino acids, polymers, and / or any combination of the concentrations of the above.

[0078] Incubation time and temperature In some embodiments, the insoluble cell fraction, pellet, or lysate is incubated with a solution containing salt and alcohol for a defined period of time. The incubation time for the cell pellet or lysate with the solution can be varied to enhance solubilization of the spider silk protein or reduce potential protein degradation. The incubation time can be between 1 minute and 3 hours (180 minutes), 1 minute and 60 minutes, 3 minutes and 90 minutes, 60 minutes and 120 minutes, 90 minutes and 150 minutes, or 120 minutes and 180 minutes. The incubation time can be at least 1 minute, 5 minutes, 10 minutes, 15 minutes, 20 minutes, 30 minutes, 45 minutes, 60 minutes, 75 minutes, 90 minutes, 105 minutes, 120 minutes, 135 minutes, 150 minutes, 165 minutes, 180 minutes, or longer. In some embodiments, the incubation time is 15 minutes. In some embodiments, the incubation time is 30 minutes. In some embodiments, the incubation time is 60 minutes. In some embodiments, the incubation time is 75 minutes. In some embodiments, the incubation time is 90 minutes. In some embodiments, the incubation time is 105 minutes. In some embodiments, the incubation time is 120 minutes.

[0079] The insoluble cell portion, pellet, or lysate can be incubated with the solution at 10-70°C. In some embodiments, the insoluble cell portion, pellet, or lysate is incubated with the solution at 10-20°C, 20-30°C, 20-22°C, 20-25°C, 25-20°C, 30-40°C, 30-35°C, 35-40°C, 40-55°C, 50-55°C, 55-60°C, or 60-70°C. In some embodiments, the insoluble cell portion, pellet, or lysate is incubated with the solution at 20-30°C. In some embodiments, the insoluble cell portion, pellet, or lysate is incubated with the solution at 22°C. In some embodiments, the insoluble cell portion, pellet, or lysate is incubated with the solution at 35°C. In some embodiments, the insoluble cell portion, pellet, or lysate is incubated with the solution at 55° C. In some embodiments, the insoluble cell portion, pellet, or lysate is incubated with the solution at less than 70° C. In some embodiments, the insoluble cell portion, pellet, or lysate is incubated with the solution at 20° C. or greater. In some embodiments, the insoluble cell portion, pellet, or lysate is incubated with the solution at room temperature.

[0080] In some embodiments, the recombinant spider silk protein is expressed in the cytoplasm of the host cell. To isolate the protein, the host cell must be lysed to release the recombinant spider silk protein. Any suitable method can be used to lyse the host cells, including, but not limited to, heat treatment, chemical treatment, shear disruption, physical homogenization, microfluidization, sonication, or chemical homogenization. Chemical treatment includes incubating the cells with chemicals or enzymes known to disrupt the plasma membrane of prokaryotic and eukaryotic cells, such as detergents such as Triton X-100, Nonidet P-40, CHAPS, sodium dodecyl sulfate (SDS), or other suitable detergents.

[0081] The insoluble portion containing the recombinant spider silk protein can be recovered by centrifuging the cell lysate, resulting in a cell lysate pellet of insoluble material containing the recombinant spider silk protein. The centrifugal force or speed required to pellet the insoluble recombinant protein can be determined by one of ordinary skill in the art. In some embodiments, the centrifugation speed is between 100 and 10,000 x g. In some embodiments, the centrifugal force is 100 x g, 200 x g, 300 x g, 400 x g, 500 x g, 600 x g, 700 x g, 800 x g, 900 x g, 1000 x g, 2000 x g, 3000 x g, 4000 x g, 5000 x g, 6000 x g, 7000 x g, 8000 x g, 9000 x g, or 10,000 x g. Alternatively, the insoluble portion containing the recombinant spider silk protein can be recovered by precipitation.

[0082] Removal of impurities In some embodiments, non-spider silk protein biological or chemical impurities can be removed from a solution containing solubilized spider silk proteins. Removal of impurities from a solution can be achieved by filtration, absorption (e.g., charcoal or solid absorption), dialysis, and coacervation, or by inducing phase separation using various chemicals. In other embodiments, phase separation can be chemically induced by adding kosmotropes and / or compounds used to precipitate proteins from solution.

[0083] In some embodiments, filtration, microfiltration, diafiltration, and / or ultrafiltration (e.g., against deionized water) are used to remove impurities. Suitable membranes for microfiltration may include those from 0.1 uM to 1 uM. Examples of membranes suitable for ultrafiltration include, but are not limited to, hydrophobic membranes (e.g., PES, PS, cellulose acetate) with molecular weight cutoffs between 50 kDa and 800 kDa, 100 kDa and 800 kDa, 200 kDa and 800 kDa, 300 kDa and 800 kDa, 400 kDa and 800 kDa, 500 kDa and 800 kDa, 600 kDa and 800 kDa, 700 kDa and 800 kDa, 100 kDa and 700 kDa, 200 kDa and 700 kDa, 300 kDa and 700 kDa, 400 kDa and 700 kDa, 500 kDa and 700 kDa, 600 kDa and 700 kDa, or 500 kDa and 600 kDa. In some embodiments, ultrafiltration separates an aqueous retentate containing the recombinant protein slurry from a permeate containing impurities. Suitable conditions for ultrafiltration (e.g., membrane, temperature, volume displacement) can be determined using methods known in the art with the goal of maximizing filtrate density. In some embodiments, ultrafiltration produces a retentate having a density between 1 g / mL and 30 g / mL. In some embodiments, ultrafiltration involves a concentration step to produce a concentrated retentate, followed by a diafiltration step to remove impurities and produce a protein slurry suspended in water. In some such embodiments, the concentrated retentate has a concentration factor of 2x to 12x volume reduction relative to the starting volume. In some embodiments, diafiltration provides a constant volume displacement between 3x and 10x. Diafiltration is a dilution process involving the removal or separation of components of a solution, such as salts, small molecules, proteins, and solvents, based on the molecular size of the components passing through a microporous filter.

[0084] Depending on the embodiment and type of impurities to be removed, the method for removing the impurities may vary. Removal of lipid impurities from a solution containing solubilized silk protein can be achieved by methods known in the art. Examples of such methods include, but are not limited to, absorption onto charcoal or other absorption media that specifically bind lipids. Removal of polysaccharide impurities from the isolated recombinant protein can be achieved by methods known in the art. Examples of such methods include, but are not limited to, treatment with enzymes that hydrolyze polysaccharides, followed by removal of the resulting small sugars by ultrafiltration. Examples of such enzymes include, but are not limited to, glucanases, lyticases, mannases, and chitinases.

[0085] quantitative In some embodiments, the isolated recombinant spider silk protein is at least 60%, at least 65%, at least 70%, at least 75%, at least 80%, at least 85%, at least 90%, at least 95%, or at least 99% of the full-length recombinant spider silk protein.

[0086] In some embodiments, the isolated recombinant spider silk protein has a purity of 5-10%, 10-15%, 15-20%, 20-25%, 25-30%, 30-35%, 35-40%, 45-50%, 50-55%, 55-60%, 60-65%, 65-70%, 70-75%, 75-80%, 80-85%, 85-90%, 90-95%, or 95-100%. In some embodiments, the isolated recombinant spider silk protein has a purity of at least 30%, at least 35%, at least 40%, at least 45%, at least 50%, at least 55%, at least 60%, at least 65%, at least 70%, at least 75%, at least 80%, at least 85%, at least 90%, at least 95%, or at least 100%.

[0087] In some embodiments, the isolated recombinant spider silk protein comprises at least 60%, at least 65%, at least 70%, at least 75%, at least 80%, at least 85%, at least 90%, or at least 95% of the full-length recombinant spider silk protein.

[0088] In some embodiments, the amount of full-length recombinant spider silk protein is measured or quantified. The amount of full-length recombinant spider silk protein can be measured or quantified using any suitable method, including, but not limited to, size exclusion chromatography (SEC), SDS-PAGE, immunoblotting (Western blot), high performance liquid chromatography (HPLC), SEC HPLC, liquid chromatography-mass spectrometry (LC-MS), or fast protein liquid chromatography (FPLC), or any other suitable method known in the art, or any combination thereof. In one embodiment, the amount of full-length recombinant spider silk protein is measured using Western blot. In another embodiment, the amount of full-length recombinant spider silk protein is measured using size exclusion chromatography (SEC).

[0089] Recombinant spider silk compositions Silk polypeptides are derived from a variety of sources, including bees, moths, spiders, mites, and other arthropods. Some organisms produce multiple silk fibers with unique sequences, structural elements, and mechanical properties. For example, the orb-jawed spider (Argiope bruennichi) possesses six unique types of glands from which it produces various silk polypeptide sequences to polymerize fibers tailored to its environment or life cycle. These fibers are named after the glands from which they originate, and polypeptides are labeled with an abbreviation for the gland (e.g., "ma") and "Sp" for spidroin (an abbreviation for spider fibroin). In the orb-jawed spider, these types include Major Ampullate (MaSp, also known as dragline), Minor Ampullate (MiSp), Flagelliform (Flag), Aciniform (AcSp), Tubuliform (TuSp), and Pyriform (PySp). Given the variation among fiber types, domains, and different genera and species of organisms, the combination of these polypeptide sequences offers a vast number of potential traits that can be exploited for commercial production of recombinant fibers.To date, the majority of research using recombinant silk has focused on Major Ampullate Spidroin (MaSp).

[0090] U.S. Patent No. 9,963,554, entitled "Methods and Compositions for Synthesizing Improved Silk Fibers," which is incorporated herein by reference, discloses compositions for synthetic block copolymers, recombinant microorganisms for producing them, and synthetic fibers containing these proteins. U.S. Patent Publication No. 2019 / 0100740, issued April 4, 2019, and entitled "Modified Strains for the Production of Recombinant Silk," which is incorporated herein by reference in its entirety, discloses Pichia pastoris cells selected or engineered to suppress degradation of recombinant proteins expressed by the yeast cells, and relates to methods for culturing yeast cells for the production of useful compounds.

[0091] Several species of natural spider silk have been identified so far, and the mechanical properties of each species of naturally spun silk are thought to be closely related to their molecular composition. See, for example, Garb, JE, et al., Untangling spider silk evolution with spidroin terminal domains, BMC Evol. Biol., 10:243 (2010); Bittencourt, D., et al., Protein families, natural history and biotechnological aspects of spider silk, Genet. Mol. Res., 11:3 (2012); Rising, A., et al., Spider silk proteins: recent advances in recombinant production, structure-function relationships and biomedical applications, Cell. Mol. Life Sci., 68:2, pp. 169-184 (2011); and Humenik, M., et al., Spider silk: understanding the structure-function relationship of a natural fiber, Prog. Mol. Biol. Transl. Sci., 103, pp. 131-85 (2011). For example:

[0092] Tufted (AcSp) silks tend to be tough, combining moderately high strength with moderately high stretchability. AcSp silks are characterized by large block ("repeat aggregate") sizes, often incorporating polyserine and GPX motifs. Tubular (TuSp, or cylindrical) silks tend to be large in diameter, moderate in strength, and highly stretchable. TuSp silks are characterized by their polyserine and polythreonine content and short polyalanine sequences. Large ampullate (MaSp) silks tend to be high in strength and moderately stretchable. MaSp silks are either of two subtypes, MaSp1 or MaSp2. MaSp1 silks are generally less stretchable than MaSp2 silks and are characterized by polyalanine, GX, and GGX motifs. MaSp2 silks are characterized by polyalanine, GGX, and GPX motifs. MiSp silks tend to have moderate strength and moderate stretchability. MiSp silks are characterized by GGX, GA, and polyA motifs and often contain a spacer element of approximately 100 amino acids. Flagelliform (Flag) silks tend to have very high stretchability and moderate strength. Flag silks are usually characterized by GPG, GGX, and a short spacer motif.

[0093] The properties of each silk species may vary from species to species, and spiders with different lifestyles (e.g., stationary web-weaving spiders versus wandering, feeding spiders) or evolutionarily older spiders may produce silks that differ from the above description (for a description of spider diversity and classification, see Hormiga, G., and Griswold, C.E., Systematics, phylogeny, and evolution of orb-weaving spiders, Annu. Rev. Entomol. 59, pp. 487-512 (2014); and Blackedge, T.A. et al., Reconstructing web evolution and spider diversification in the molecular era, Proc. Natl. Acad. Sci. USA, 106:13, pp. 5229-5234 (2009)). However, synthetic block copolymer polypeptides with sequence similarity and / or amino acid composition similarity to the repeat domains of natural silk proteins can be used to produce consistent silk-like fibers on a commercial scale that recapitulate the properties of the corresponding natural silk fibers.

[0094] In some embodiments, the recombinant spider silk is a highly crystalline silk protein, a silk protein with a high beta-sheet content, or a low solubility silk protein, hi some embodiments, the recombinant spider silk protein has a solubility threshold in a non-chaotropic solvent of less than 90%, 80%, 70%, 60%, or 50%.

[0095] Silk nucleotide and peptide sequences In some embodiments, a list of putative silk sequences can be compiled by searching GenBank for related terms, such as "spidroin," "fibroin," and "MaSp," and these sequences can be pooled with additional sequences obtained from independent sequencing. These sequences are then translated into amino acids, duplicate entries are filtered, and manually divided into their respective domains (NTD, REP, CTD). In some embodiments, the candidate amino acid sequences are reverse-translated into DNA sequences optimized for expression in Pichia (Komagataella) pastoris. The DNA sequences are then cloned into expression vectors, and Pichia (Komagataella) pastoris is transformed with them. In some embodiments, the various silk domains that are successfully expressed and secreted are then combinatorially assembled to construct fiber-forming silk molecules.

[0096] Silk polypeptides characteristically consist of repeat domains (REPs) flanked by non-repetitive regions (e.g., C-terminal and N-terminal domains). The repeat domains exhibit a hierarchical structure. The repeat domains contain a series of blocks (also known as repeat units). These blocks are sometimes perfectly and sometimes imperfectly repeated (forming quasi-repeat domains) throughout the repeat domain of silk. The length and composition of the blocks vary between different silk species and between different species. Table 1 lists block sequences for selected species and silk species; further examples are described in Rising, A. et al., Spider silk proteins: recent advances in recombinant production, structure-function relationships, and biomedical applications, Cell Mol. Life Sci., 68:2, pp. 169-184 (2011); and Gatesy, J. et al., Extreme diversity, conservation, and convergence of spider silk fibroin sequences, Science, 291:5513, pp. 2603-2605 (2001). In some cases, blocks are arranged in a regular pattern and may form larger macrorepeats that occur multiple times (usually 2-8 times) in the repeat domain of the silk sequence. Blocks repeated within the repeat domain or macrorepeat may be separated by spacing elements from macrorepeats repeated within the repeat domain. Block sequences may include a glycine-rich region followed by a poly(A) region. Motifs of short (approximately 1-10) amino acids may occur multiple times within a block. A subset of commonly accepted motifs is shown in Figure 1. Blocks derived from different natural silk polypeptides can be selected without regard to circular permutation (i.e., identified blocks that are otherwise similar between silk polypeptides may not align due to circular permutation). Thus, for example, SGAGG (SEQ ID NO: 64)The "block" is, for purposes of the methods and compositions described herein, GSGAG (SEQ ID NO: 65) and GGSGA (SEQ ID NO: 66) are identical to each other; they are all just circular permutations of each other. The particular permutation chosen for a given silk sequence can be determined, among other things, by convenience (usually starting with G). Silk sequences obtained from the NCBI database can be divided into blocks and non-repetitive regions.

[0097] (Table 1) Block arrangement TIFF0007750520000001.tif44167TIFF0007750520000002.tif254167TIFF0007750520000003.tif152167

[0098] According to certain embodiments of the present invention, fiber-forming block copolymer polypeptides derived from block and / or macro-repeat domains are described in International Publication No. WO / 2015 / 042164, which is incorporated herein by reference. Natural silk sequences obtained from protein databases such as GenBank or by de novo sequencing are domain-disrupted (N-terminal, repeat, and C-terminal domains). The N-terminal and C-terminal domain sequences selected for post-synthetic assembly into fibers contain native amino acid sequence information and other modifications described herein. The repeat domains are broken down into repeat sequences, which typically contain one to eight representative blocks that capture key amino acid information, depending on the silk species, while reducing the size of the DNA encoding the amino acids to easily synthesizable fragments. In some embodiments, a properly formed block copolymer polypeptide comprises at least one repeat domain containing at least one repeat sequence, optionally flanked by an N-terminal domain and / or a C-terminal domain.

[0099] In some embodiments, the repeat domain comprises at least one repeat sequence. In some embodiments, the repeat sequence is 150-300 amino acid residues. In some embodiments, the repeat sequence comprises multiple blocks. In some embodiments, the repeat sequence comprises multiple macrorepeats. In some embodiments, the blocks or macrorepeats are divided into multiple entire repeat sequences.

[0100] In some embodiments, repeat sequences must begin with glycine and cannot end with phenylalanine (F), tyrosine (Y), tryptophan (W), cysteine ​​(C), histidine (H), asparagine (N), methionine (M), or aspartic acid (D) to meet DNA assembly requirements. In some embodiments, some repeat sequences can be altered relative to the native sequence. In some embodiments, repeat sequences can be altered, such as by adding serine to the C-terminus of the polypeptide (to avoid termination at F, Y, W, C, H, N, M, or D). In some embodiments, repeat sequences can be modified by filling in incomplete blocks with homologous sequences from another block. In some embodiments, repeat sequences can be modified by rearranging the order of blocks or macrorepeats.

[0101] In some embodiments, unique N-terminal and C-terminal domains can be selected for synthesis. In some embodiments, the N-terminal domain can be created by removing a leading signal sequence, for example, as identified by SignalP (Peterson, TN, et. Al., SignalP 4.0: discriminating signal peptides from transmembrane regions, Nat. Methods, 8:10, pg. 785-786 (2011)).

[0102] In some embodiments, the N-terminal domain sequence, the repeat sequence, or the C-terminal domain sequence is selected from Agelenopsis aperta, Aliatypus gulosus, Aphonopelma seemanni, Aptostichus sp. AS217, Aptostichus sp.AS220, Araneus diadematus, Araneus gemmoides, Araneus ventricosus, Argiope amoena, Argiope argentata, Argiope bruennichi, Argiope trifasciata, Atypoides riversi, Avicularia juruensis, Bothriocyrtum californicum, Deinopis spinosa, Diguetia canities, Dolomedes tenebrosus, Euagrus chisoseus, Euprosthenops australis, Gasteracantha mammosa, Hypochilus thorelli, Kukulcania hibernalis, Latrodectus hesperus, Megahexura fulva, Metepeira grandiosa, Nephila antipodiana, Nephila clavata, Nephila clavipes, Nephila madagascariensis, Nephila pilipes, Nephilengys cruentata, Parawixia bistriata, Peucetia viridans, Plectreurys It can be derived from T. tristis, Poecilotheria regalis, Tetragnatha kauaiensis, or Uloborus diversus.

[0103] In some embodiments, the silk polypeptide nucleotide coding sequence can be operably linked to an alpha mating factor nucleotide coding sequence. In some embodiments, the silk polypeptide nucleotide coding sequence can be operably linked to another endogenous or heterologous secretion signal coding sequence. In some embodiments, the silk polypeptide nucleotide coding sequence can be operably linked to a 3X FLAG nucleotide ... (SEQ ID NO: 67) The affinity tag may be operably linked to another affinity tag such as

[0104] secretion signal The amount of protein secreted by cells varies greatly among proteins and depends, in part, on the secretion signal operably linked to the nascent protein. Several secretion signals are known in the art, some of which are commonly used for the production of secreted recombinant proteins. Among these, the secretion signal of Saccharomyces cerevisiae α-mating factor (αMF) stands out, consisting of an N-terminal 19-amino acid signal peptide (also referred to herein as pre-αMF(sc)) followed by a 70-amino acid leader peptide (also referred to herein as pro-αMF(sc)). Incorporation of pro-αMF(sc) into the Saccharomyces cerevisiae αMF secretion signal (also referred to herein as pre-αMF(sc) / pro-αMF(sc)) has been shown to be important for increasing protein secretion yields. Studies have been conducted to achieve secretion of recombinant proteins by adding pro-αMF(sc) or its functional variants to signal peptides other than pre-αMF(sc). These have shown varying degrees of effectiveness, enhancing secretion of certain recombinant proteins in certain recombinant host cells, but showing no effect or reduced secretion of other recombinant proteins.

[0105] As described in U.S. Application No. 15 / 724,196, the use of multiple distinct secretion signals can improve the secretion yield of recombinant proteins. Compared to recombinant host cells containing multiple polynucleotide sequences encoding recombinant proteins operably linked to a single secretion signal (e.g., pre-αMF(sc) / pro-αMF(sc)), recombinant host cells containing the same number of polynucleotide sequences encoding recombinant proteins operably linked to at least two distinct secretion signals exhibit increased secretion yields of recombinant proteins. Without wishing to be bound by theory, the use of at least two distinct secretion signals may allow the recombinant host cell to engage distinct cellular secretion pathways to enable efficient secretion of recombinant proteins, thus preventing oversaturation of any one secretion pathway.

[0106] At least one of the distinct secretion signals comprises a signal peptide that may be selected from Table 2 or 3, or is a functional variant having at least 80% amino acid sequence identity to a signal peptide selected from Table 2 or 3. In some embodiments, the functional variant is a signal peptide selected from Table 2 or 3 comprising one or two substituted amino acids. In some such embodiments, the functional variant has at least 85%, at least 90%, at least 95%, or at least 99% amino acid sequence identity to a signal peptide selected from Table 2 or 3. In some embodiments, the signal peptide mediates translocation of the nascent recombinant protein to the ER post-translationally (i.e., protein synthesis precedes translocation so that the nascent recombinant protein is in the cytosol before being translocated to the ER). In other embodiments, the signal peptide mediates translocation of the nascent recombinant protein to the ER co-translationally (i.e., protein synthesis and translocation to the ER occur simultaneously). The advantage of using a signal peptide to mediate cotranslational translocation to the ER is that it prevents recombinant proteins prone to rapid folding from adopting a conformation that prevents translocation to the ER and, therefore, secretion.

[0107] (Table 2) Secretion signals TIFF0007750520000004.tif45163

[0108] Table 3. Recombinant secretion signals TIFF0007750520000005.tif60163

[0109] Expression vector The expression vectors described herein can be produced according to the teachings of the present specification in light of techniques known in the art. Sequences, such as vector sequences or transgene-encoding sequences, are commercially available from companies such as Integrated DNA Technologies, Coralville, IA, or DNA 2.0, Menlo Park, CA. Exemplary herein are expression vectors that direct high-level expression of chimeric silk polypeptides.

[0110] Another standard source of the polynucleotides described herein is polynucleotides isolated from organisms (e.g., bacteria), cells, or selected tissues. Nucleic acids from a selected source can be isolated using standard procedures, which generally involve sequential phenol and phenol / chloroform extractions followed by ethanol precipitation. After precipitation, the polynucleotides can be treated with a restriction endonuclease to cleave the nucleic acid molecule into fragments. Fragments of a selected size can be separated using several techniques, such as agarose or polyacrylamide gel electrophoresis or pulsed-field gel electrophoresis (Care et al. (1984) Nuc. Acid Res. 12:5647-5664; Chu et al. (1986) Science 234:1582; ​​Smith et al. (1987) Methods in Enzymology 151:461), to provide starting material of the appropriate size for cloning.

[0111] Another method for obtaining the nucleotide components of an expression vector or construct is PCR. The general procedure for PCR is taught in MacPherson et al., PCR: A PRACTICAL APPROACH, (IRL Press at Oxford University Press, (1991)). PCR conditions for each reaction used can be determined empirically. Numerous parameters affect the success of the reaction. These parameters include annealing temperature and time, extension time, Mg2+ and ATP concentrations, pH, and the relative concentrations of primers, template, and deoxyribonucleotides. Exemplary primers are described in the Examples below. After amplification, the resulting fragments can be detected by agarose gel electrophoresis, followed by visualization with ethidium bromide staining and ultraviolet illumination.

[0112] Another method for obtaining polynucleotides is by enzymatic digestion. For example, a nucleotide sequence can be generated by digesting a suitable vector with the appropriate recognition restriction enzyme. Using standard techniques, the restriction fragments can be blunt-ended by treatment with the large fragment of E. coli DNA polymerase I (Klenow) in the presence of four deoxynucleotide triphosphates (dNTPs).

[0113] Polynucleotides are inserted into a suitable backbone, such as a plasmid, using methods well known in the art. For example, insert and vector DNA can be contacted with a restriction enzyme under appropriate conditions to create complementary or blunt ends on each molecule, which then pair with each other and are joined with a ligase. Alternatively, synthetic nucleic acid linkers can be attached to the ends of the polynucleotide. These synthetic linkers can contain nucleic acid sequences that correspond to specific restriction sites in the vector DNA. Other means are known and available in the art. A variety of sources are available for the component polynucleotides.

[0114] In some embodiments, an expression vector comprising an R, N, or C sequence is transformed into a host organism for expression and secretion. In some embodiments, the expression vector comprises a secretion signal. In some embodiments, the expression vector comprises a termination signal. In some embodiments, the expression vector is designed to integrate into the host cell genome and comprises the following: a region of homology to the target genome, a promoter, a secretion signal, a tag (e.g., a Flag tag), a termination / polyA signal, a Pichia selectable marker, an E. coli selectable marker, an E. coli origin of replication, and a restriction site for release of the fragment of interest.

[0115] Host cell transformants Host cells transformed with a nucleic acid molecule or vector that expresses a spider silk polypeptide, and their progeny, are provided. These cells can also carry the nucleic acid sequence on the vector, which can, but need not, replicate freely. In other embodiments, the nucleic acid is integrated into the genome of the host cell.

[0116] In some embodiments, microorganisms or host cells that enable large-scale production of block copolymer polypeptides comprise a combination of the following: 1) the ability to produce large (>75 kDa) polypeptides; 2) the ability to secrete the polypeptide extracellularly and avoid costly downstream intracellular purification; 3) tolerance to large-scale contaminants (such as viral or bacterial contamination); and 4) existing know-how for growing and processing the microorganism in large-scale (1-2000 m3) bioreactors.

[0117] A variety of host organisms can be genetically engineered / transformed to contain the block copolymer polypeptide expression system. Preferred organisms for expression of recombinant silk polypeptides include yeast, fungi, gram-positive bacteria, and gram-negative bacteria. In certain embodiments, the host organism is selected from the group consisting of Arxula adeninivorans, Aspergillus aculeatus, Aspergillus awamori, Aspergillus ficuum, Aspergillus fumigatus, Aspergillus japonicus, Aspergillus nidulans, Aspergillus niger, Aspergillus oryzae, Aspergillus sojae, Aspergillus tubigensis, Bacillus alcalophilus, and the like. alkalophilus, Bacillus amyloliquefaciens, Bacillus anthracis, Bacillus brevis, Bacillus circulans, Bacillus coagulans, Bacillus lautus, Bacillus lentus, Bacillus licheniformis, Bacillus methanolicus, Bacillus stearothermophilus, Bacillus subtilis, Bacillus thuringiensis thuringiensis), Candida boisinii (Candidaboidinii, Chrysosporium lucknowense, Escherichia coli, Fusarium graminearum, Fusarium venenatum, Kluyveromyces lactis, Kluyveromyces marxianus, Myceliopthora thermophila, Neurospora crassa, Ogataea polymorpha, Penicillium camemberti, Penicillium canescens, Penicillium chrysogenum chrysogenum, Penicillium emersonii, Penicillium funiculosum, Penicillium griseoroseum, Penicillium purpurogenum, Penicillium roqueforti, Phanerochaete chrysosporium, Pichia angusta, Pichia methanolica, Pichia (Komagataella) pastoris, Pichia polymorpha, Pichia stipitis, Rhizomucor miehei miehei), Rhizomucor pusillus, Rhizopus arrhizus, Streptomyces lividans, Saccharomycescerevisiae, Schwanniomyces occidentalis, Trichoderma harzianum, Trichoderma reesei, or Yarrowia lipolytica.

[0118] In preferred aspects, these methods provide cultured host cells that directly secrete products for easy recovery without the need for biomass extraction, hi some embodiments, the block copolymer polypeptides are secreted directly into the culture medium for recovery and processing.

[0119] Genetically engineered host cell lines The methylotrophic yeast Pichia pastoris is widely used in the production of recombinant proteins. P. pastoris can grow to high cell densities, provide tightly controlled, methanol-inducible transgene expression, and efficiently secrete heterologous proteins in defined media. However, during cultivation of P. pastoris strains, recombinantly expressed proteins are degraded before they can be harvested, resulting in a mixture of proteins containing fragments of the recombinantly expressed protein and reduced yield of full-length recombinant protein. Another widely used cell line for recombinant protein production is the bacterium Escherichia coli. However, during cultivation of E. coli strains, recombinantly expressed proteins become insoluble, resulting in poor isolation and reduced yield of recombinant protein.

[0120] In some embodiments, the engineered strains described herein with reduced protease activity recombinantly express silk-like polypeptide sequences. In some embodiments, the silk-like polypeptide sequences are 1) block copolymer polypeptide compositions, i.e., compositions produced by mixing and matching repeat domains derived from silk polypeptide sequences, and / or 2) block copolymer polypeptides produced via recombinant expression, i.e., polypeptides large enough (approximately 40 kDa) to form useful solids or fibers upon secretion in industrially scalable microorganisms. Genetically engineered large (approximately 40 kDa to approximately 100 kDa) block copolymer polypeptides can be expressed in the engineered microorganisms described herein from silk repeat domain fragments containing sequences derived from nearly the entire published amino acid sequence of a spider silk polypeptide. In some embodiments, the silk polypeptide sequences are adapted and designed to produce highly expressed and secreted polypeptides capable of forming solids or fibers. In some embodiments, knocking out protease genes or reducing protease activity in the host engineered strain prevents degradation of the silk-like polypeptide.

[0121] In some embodiments, to attenuate protease activity in Pichia pastoris, the genes encoding these enzymes are inactivated or mutated to reduce or eliminate activity. This can be done by mutating the gene itself via modification of gene regulatory elements, or by inserting a gene into the gene itself. This can be achieved by standard yeast genetic techniques. An example of such a technique is gene replacement via double homologous recombination, in which homologous regions flanking the gene to be inactivated are cloned into a vector adjacent to a selectable marker gene (such as an antibiotic resistance gene or a gene that complements an auxotrophy of the yeast strain).

[0122] Alternatively, the homologous region can be PCR amplified and linked to the selectable marker gene via overlap PCR. Such DNA fragments are then transformed into Pichia pastoris using methods known in the art, such as electroporation. Transformants grown under selective conditions are then analyzed for gene disruption events using standard techniques, such as PCR on genomic DNA or Southern blot analysis. In another experiment, gene inactivation can be achieved by a single homologous recombination step, in which the 5' end of the gene's ORF is cloned into a promoterless vector that also contains a selectable marker gene. Such vectors are linearized by digestion with restriction enzymes, cleaving the vector to leave only the target gene homologous fragment, and then transformed into Pichia pastoris. Integration into the target gene site is confirmed by PCR on genomic DNA or Southern blot analysis. In this way, replication of the gene fragment cloned into the vector is achieved within the genome, resulting in two copies of the target locus: the first copy, whose ORF is incomplete and therefore expresses only a short, inactive protein (if any), and the second copy, which lacks a promoter to drive transcription.

[0123] Alternatively, transposon mutagenesis is used to inactivate the target gene, and a library of such mutants can be screened by PCR for insertion events in the target gene.

[0124] The functional phenotype (i.e., deficiency) of the engineered / knockout strain can be assessed using techniques known in the art. For example, the lack of protease activity in the engineered strain can be confirmed using any of a variety of methods known in the art, such as assays for the hydrolytic activity of a chromogenic protease substrate, band shifts of the substrate protein of the selected protease, etc.

[0125] The attenuation of protease activity described herein can be achieved using mechanisms other than knockout mutations. For example, the desired protease can be attenuated by altering its amino acid sequence, by modifying the nucleic acid sequence, placing the gene under the control of a weakly active promoter, downregulating it, expressing interfering RNA, ribozymes, or antisense sequences targeting the gene of interest, or using other techniques known in the art. In preferred strains, the protease activity of the proteases encoded by PAS_chr4_0584 (YPS1-1) and PAS_chr3_1157 (YPS1-2) is attenuated by any of the methods described above. In some aspects, methylotrophic yeast strains, particularly Pichia pastoris strains, are described in which the YPS1-1 and YPS1-2 genes are inactivated. In some embodiments, genes encoding additional proteases can also be knocked out according to the methods provided herein to further reduce the protease activity of the desired protein product expressed by the strain.

[0126] In some embodiments, the P. pastoris strains disclosed herein are engineered to express silk-like polypeptides. Methods for producing preferred embodiments of silk-like polypeptides are provided in WO 2015 / 042164, particularly paragraphs 114-134, which are incorporated herein by reference. Disclosed therein are synthetic proteinaceous copolymers based on recombinant spider silk protein fragment sequences from MaSp2, such as from the Argiope bruennichi species. Silk-like polypeptides are described that contain 2 to 20 repeat units, each of which has a molecular weight greater than about 20 kDa. Each repeat unit in the copolymer has greater than about 60 amino acid residues organized into several "quasi-repeat units." In some embodiments, the repeat units of the polypeptides described herein have at least 95% sequence identity to the MaSp2 dragline silk protein sequence. [Example]

[0127] Below are examples of specific embodiments for carrying out the present invention. These examples are provided for illustrative purposes only and are not intended to limit the scope of the present invention in any way. Care has been taken to ensure accuracy with respect to numbers used (amounts, temperatures, etc.), but some experimental error and deviation should, of course, be allowed for.

[0128] The practice of the present invention will employ, unless otherwise indicated, conventional methods in protein chemistry, biochemistry, recombinant DNA technology, and pharmacology, within the skill of one in the art. Such techniques are fully explained in the literature, see, e.g., T.E. Creighton, Proteins: Structures and Molecular Properties (W.H. Freeman and Company, 1993); A.L. Lehninger, Biochemistry (Worth Publishers, Inc., current addition); Sambrook, et al., Molecular Cloning: A Laboratory Manual (2nd Edition, 1989); Methods In Enzymology (S. Colowick and N. Kaplan eds., Academic Press, Inc.); Remington's Pharmaceutical Sciences, 18th Edition (Easton, Pennsylvania: Mack Publishing Company, 1990); Carey and Sundberg Advanced Organic Chemistry 3 rd Ed. (Plenum Press) Vols A and B (1992).

[0129] Example 1: Extraction of calcium salts Highly crystalline silk forms aggregates in solution, resulting in reduced solubility and reduced recovery during host cell production. Therefore, improved methods for solubilizing such crystalline silk are needed. The methods described in these examples use calcium salts and alcohol to increase the solubility of silk proteins.

[0130] Materials and Methods Multiple calcium salts were used to extract UDMisp64k protein, also known as P0 (a representative block amino acid sequence shown in SEQ ID NO: 23), to identify the optimal calcium salt. P0 is an exemplary highly crystalline silk protein. 6xHis tag (SEQ ID NO: 68) (A glycine linker is used to link six histidines (GGGGG-HHHHHH) to the c-terminus of P0. (SEQ ID NO: 69) E. coli transformed with an expression vector containing the P0 silk gene fused to ) was grown in Terrific Broth, a chemically defined minimal salts medium containing chloramphenicol. P0 expression was induced with IPTG after 24 hours of fermentation. E. coli were harvested 16 hours after protein induction. E. coli lysis was achieved by passing the LB broth and cells through a microfluidizer (Microfluidics LM10) in a single pass at 14,0000 PSI. The lysate was pelleted by centrifugation at 15,000 x g in an Eppendorf tabletop centrifuge. The pellet, containing insoluble P0, was retained, and the supernatant was discarded.

[0131] 20% (w / v) solutions of calcium chloride (CaCl), calcium nitrate (Ca(NO) or CaNit), and calcium thiocyanate (CCaN or Ca(SCN) or CaSCN) in methanol were prepared. 100 mg of cell lysate pellet was added to 1 mL of each calcium salt / methanol (CaMeOH) solution. The cell lysate pellet was resuspended and incubated in each CaMeOH solution for 1 hour at room temperature. Unsolubilized material was repelleted by centrifugation (15,000 × g). The supernatant was retained and analyzed using SDS-PAGE in Bis / Tris buffer and immunoblotted. P0 protein was visualized using an anti-His antibody.

[0132] result The P0 monomer was slightly higher in molecular weight than the Western Bis / Tris gel. The P0 used in this example is 64 kDa; however, it typically appears between the 70 and 100 kDa markers on SDS-PAGE gels. In this case, the protein was measured at 100 kDa. Whole cell broth (WCB) was extracted with 5 M guanidine thiocyanate, while solvent-free clarified cell broth (CCB) was used as a control. P0 protein monomer was observed in the supernatant fraction after incubation with a solution containing calcium thiocyanate (CaSCN) and calcium chloride (CaCl2), as indicated by a 100 kDa protein band (Figure 3, indicated by an arrow). However, no band was observed in the calcium nitrate (CaNit) lane. Without intending to be bound by any particular theory, the absence of other bands above and below suggests that Ca-SCN may have high specificity for full-length P0. Bands of similar intensity were also observed in the CaCl2 lane along with small anti-His tagged species, presumably fragments of P0 (approximately 55 kDa, 50 kDa, and 37 kDa bands shown in brackets).

[0133] Example 2: Alcohol extraction A selection of alcohols was investigated to determine optimal extraction conditions. First, insoluble PO was incubated with water or methanol containing CaCl2 to determine the need for including an alcohol solvent. Next, ethanol and isopropanol were used as the primary solvents. Finally, water was added as a solvent in addition to methanol to reduce the volatility of the process.

[0134] Materials and Methods P0 was expressed in E. coli cells as described in Example 1. Cells were lysed using a microfluidizer and insoluble material was pelleted by centrifugation. Solutions containing various concentrations of CaCl2 in various solvents were made, as shown in Table 4.

[0135] (Table 4) TIFF0007750520000006.tif58128

[0136] 100 mg of insoluble cell material was added to 1 ml of each solution and resuspended by pipetting. Samples of solution conditions 1–6 were incubated at room temperature (approximately 22°C) for 1 hour. Parallel samples of solution conditions 1–6 were prepared and incubated at 55°C in a heating block (Benchmark Scientific BSH1002) for 1 hour. Samples treated with solution conditions 7–10 were incubated at 55°C in a heating block for 1 hour. After incubation, the samples were pelleted by centrifugation. The supernatant containing the solubilized P0 protein was collected and analyzed using an enzyme-linked immunosorbent assay (ELISA) for the His tag.

[0137] result The ELISA results for samples treated with solution conditions 1-6 are shown in Table 5 as the percentage of PO recovered at 22°C and 55°C. Quantitation of PO yield was determined by ELISA using the following formula: (PO in extract) / (PO in WCB) = (PO extraction yield). The symbol * indicates that PO yield was not detectable by ELISA.

[0138] (Table 5) TIFF0007750520000007.tif49144

[0139] At 22°C, ELISA failed to detect P0 in water below 4M and in methanol below 2M at any CaCl concentration. 4M CaCl2 in water produced 1% P0, which increased 3x to 3% with heating. 2M CaCl2 in methanol also increased the yield by 3x with increasing temperature.

[0140] The ELISA results for the samples treated under solution conditions 7 to 10 and heat treatment condition 6 are shown in Table 6.

[0141] (Table 6) TIFF0007750520000008.tif35128

[0142] Ethanol containing 2 M calcium chloride did not extract PO as well as methanol, and the yield was 10x lower under the same extraction conditions (51% with MeOH compared to 5% with EtOH).

[0143] While not intending to be bound by any particular theory, it is believed that water does not adversely affect PO extraction. When the solution contained only 25% water and 75% methanol, the yield of PO was low at 4%, and when the water content was increased to 50% or 75%, the yield became unmeasurable.

[0144] Example 3: Incubation times and temperatures The extraction temperature was varied to determine the optimum temperature for maximum extraction while minimizing extraction time, along with sample agitation. Lowering the temperature with continuous mixing was also investigated, with the goal of making the process scalable.

[0145] Materials and Methods P0 was expressed in E. coli cells as described in Example 1. Cells were lysed using a microfluidizer, and insoluble material was pelleted by centrifugation. 1 ml of 2 M CaCl2 solution in methanol was added to 100 mg of insoluble cell material and resuspended by pipetting. Twelve aliquots were prepared. Six aliquots were incubated at 35°C with agitation for 0, 15, 30, 60, 120, and 240 minutes. The remaining six aliquots were incubated at 55°C with agitation for 0, 5, 15, 30, 60, and 120 minutes. Samples were removed at each time point and centrifuged at 15,000 × g in a tabletop centrifuge (Eppendorf 5415D). The supernatant containing the solubilized P0 protein was collected and analyzed by ELISA for the His tag.

[0146] result The extraction results are shown in Figure 4. The amount of P0 protein extracted was substantially similar at each time point for samples incubated at 35°C compared to 55°C. Both extraction temperatures reached peak extraction at 30 minutes. Additional continuous mixing during extraction increased the maximum yield from approximately 50% to 80%. The respective yields are shown in Table 7.

[0147] (Table 7) TIFF0007750520000009.tif43128

[0148] Thus, incubation at 35° C. was as effective as incubation at 55° C. In addition, agitation or mixing during incubation significantly improved the recovery of P0.

[0149] Example 4: Extraction amount To further scale up the production, we considered reducing the amount of solution used during extraction: the amount of 2M calcium chloride solution used to extract PO from the insoluble pellet was halved.

[0150] Materials and Methods P0 was expressed in E. coli cells as described in Example 1. Cells were lysed using a microfluidizer and insoluble material was pelleted by centrifugation. The insoluble pellet was resuspended in 0.5 ml or 1 ml of 2 M CaCl2 solution in methanol. Samples were incubated at 35°C for 1 hour with agitation. After incubation, samples were centrifuged to pellet the material, and the supernatant was retained. P0 in the supernatant was analyzed by ELISA and size exclusion chromatography (SEC). SEC was used to determine the relative amount of full-length P0 in the samples.

[0151] result The yields of PO for 1 ml and 0.5 ml samples are shown in Table 8 below.

[0152] (Table 8) TIFF0007750520000010.tif22131

[0153] The yields for both samples were similar, indicating that P0 protein can be efficiently extracted even with reduced sample volume. The mass ratio of 2M calcium methanol solution to pellet of 7:1 for the 0.5 ml sample is roughly equivalent to the 14:1 ratio for the 1 ml sample. Reducing the extraction volume helps to reduce the yield.

[0154] In addition, the amount of full-length P0 in both samples was substantially similar (approximately 22% in the 0.5 ml sample versus approximately 20% in the 1 ml sample), so the purity of the recovered P0 was not significantly different.

[0155] Example 5: Recovery of P0 powder The P0 protein was recovered from the calcium salt and methanol solution.

[0156] Materials and Methods To take advantage of the low solubility of P0, extraction was performed with water at a 1:2 mass ratio to induce precipitation. The precipitate was centrifuged at 4,200 × g for 15 minutes using a Beckman J-6 centrifuge. Full-length P0 remained stable in the supernatant. A sample of the water-precipitated supernatant was collected for SEC and ELISA analysis. The remaining supernatant was evaporated to remove methanol using a Buchi Rotavapor R-210 rotary evaporator set at 60 °C under vacuum. Once the methanol had evaporated, the sample was dialyzed against water in a 20 kDa cutoff dialysis cassette (Slide-A-Lyzer Dialysis Cassette 20 kDa) to remove calcium chloride. After dialysis, a precipitate formed and was pelleted by centrifugation (Beckman J-6) at 4,200 × g for 15 minutes. The pellet was frozen at -80°C and lyophilized (Labconco Freezone 4.5). The amount of full-length P0 in solution and after lyophilization was determined by SEC, and the total yield was determined by ELISA.

[0157] result Precipitation with water increased the full-length P0 content in the extract from 20% to 50% as determined by SEC (Figure 5A). Lyophilized P0 was 51% full-length P0 monomer as determined by SEC (Figure 5B).

[0158] As quantified using ELISA, the total P0 yield after aqueous precipitation and lyophilization decreased slightly by 6%, from 56% to 50%.

[0159] Thus, precipitation with water removed impurities but had minimal impact on overall P0 protein yield.

[0160] Example 6: High-Throughput CaCl with MeOH Extraction Screening The method described herein was carried out for other silk proteins in a 96-well block CaCl2 in MeOH assay.

[0161] Materials and Methods Silk proteins were expressed in E. coli cells as described in Example 1. Cell pellets were sonicated, and 2M CaCl2 solution in methanol was added. The samples were mixed to resuspend the cell pellet. The samples were incubated at 35°C with agitation for 1 hour. These samples were analyzed by ELISA, and the extraction efficiency (%) was reported relative to a 5M GdnSCN, pH 11 extraction control. The estimated crystalline volume fraction (CVF) was estimated by first assigning residues to crystalline motifs. These crystalline motifs are defined by any sequence of six or more consecutive residues consisting exclusively of alanine, glycine, isoleucine, serine, threonine, or valine, where no glycine can be adjacent to another glycine. The estimated crystalline volume fraction was then calculated by dividing the sum of the residues in the crystalline motif by the total number of residues.

[0162] result Table 9 lists the estimated crystalline volume fraction, percent water content, and percent CaCl2 for MeOH extraction efficiency for various silk proteins, including the P0 protein. The water content required for extraction varied among silk proteins. The sensitivity to water content also varied among silk proteins. The lowest extraction efficiency was 72%.

[0163] (Table 9) TIFF0007750520000011.tif130154

[0164] equivalent While the present invention has been particularly shown and described with reference to preferred and various alternative embodiments, it will be understood by those skilled in the art that various changes in form and detail may be made therein without departing from the spirit or scope of the invention.

[0165] All references, issued patents, and patent applications cited within the body of this specification are hereby incorporated by reference in their entirety for all purposes.

[0166] Sequence Listing TIFF0007750520000012.tif229168TIFF0007750520000013.tif244168TIFF0007750520000014.tif24416 8TIFF0007750520000015.tif244168TIFF0007750520000016.tif244168TIFF0007750520000017.tif43168

Claims

1. 1. A method for solubilizing recombinant spider silk proteins from a host cell, the method comprising the steps of: providing a cell culture comprising host cells, said host cells expressing a recombinant spider silk protein; recovering an insoluble portion from the cell culture, wherein the insoluble portion comprises the recombinant spider silk protein; and adding the insoluble portion of the host cells to a solution comprising (i) calcium chloride in an amount ranging from 1 M to 2 M, and (ii) methanol, thereby solubilizing the recombinant spider silk protein in the solution.

2. 2. The method of claim 1, wherein the insoluble portion is at least 5%, 10%, 15%, 20%, 25%, 30%, or 35% (w / v) of the solution volume.

3. 3. The method of claim 2, wherein the insoluble portion is about 15% (w / v) of the solution volume.

4. 3. The method of claim 2, wherein the insoluble portion is at most about 35% (w / v) of the solution volume.

5. The method of any one of claims 1 to 4, wherein the ratio of the volume of the solution to the volume of the insoluble portion is at least 3, or at least 5, or at least 7.

6. 6. The method of claim 5, wherein the ratio of the volume of the solution to the volume of the insoluble portion is at least 3.

7. 6. The method of claim 5, wherein the ratio of the volume of the solution to the volume of the insoluble portion is about 7.

8. The method of any one of claims 1 to 7, wherein the solution comprises 2M calcium chloride and methanol.

9. The method of any one of claims 1 to 8, wherein the insoluble portion is incubated with the solution at a temperature between 20°C and 70°C.

10. The method of claim 9, wherein the insoluble portion is incubated at room temperature.

11. 10. The method of claim 9, wherein the insoluble portion is incubated at about 35°C.

12. 10. The method of claim 9, wherein the insoluble portion is incubated at about 55°C.

13. The method of any one of claims 1 to 12, wherein the insoluble portion is incubated with the solution for an incubation time ranging from 15 to 120 minutes.

14. 14. The method of claim 13, wherein the insoluble portion is incubated with the solution for 30 minutes.

15. The method of any one of claims 1 to 14, further comprising evaporating the methanol.

16. The method of any one of claims 1 to 15, wherein the insoluble portion comprises a cell lysate pellet.

17. 17. The method of any one of claims 1 to 16, wherein the step of recovering the insoluble portion from the cell culture comprises lysing the host cells.

18. 18. The method of claim 17, wherein the dissolving comprises heat treatment, chemical treatment, or physical homogenization.

19. 20. The method of claim 18, wherein the chemical treatment comprises chemical homogenization.

20. 20. The method of claim 18, wherein the physical homogenization comprises shear disruption, microfluidization, or sonication.

21. 21. The method of any one of claims 17 to 20, wherein the step of recovering the insoluble portion of the cell culture further comprises centrifuging the lysed cells to obtain a cell lysate pellet.

22. The method of any one of claims 1 to 21, further comprising the step of removing impurities from the solution.

23. 23. The method of claim 22, wherein the step of removing the impurities comprises adding an aqueous solution to precipitate the impurities.

24. 24. The method of claim 23, wherein the aqueous solution is water.

25. 23. The method of claim 22, wherein the step of removing impurities comprises filtration, centrifugation, gravity settling, adsorption, dialysis, or phase separation.

26. 26. The method of claim 25, wherein the filtration is ultrafiltration, microfiltration, or diafiltration.

27. 27. The method of any one of claims 1 to 26, wherein at least 60%, at least 65%, at least 70%, at least 75%, at least 80%, at least 85%, at least 90%, or at least 95% of the solubilized recombinant spider silk protein is full-length recombinant spider silk protein.

28. isolating the recombinant spider silk protein from said solution, thereby producing an isolated recombinant spider silk protein. The method of any one of claims 1 to 27, further comprising:

29. 29. The method of claim 28, wherein the amount of isolated recombinant spider silk protein is measured using Western blot.

30. 30. The method of claim 28 or 29, wherein the amount of isolated recombinant spider silk protein is measured using ELISA.

31. 31. The method of any one of claims 28 to 30, wherein the amount of isolated recombinant spider silk protein is measured using size exclusion chromatography.

32. 32. The method of any one of claims 28 to 31, wherein the isolated recombinant spider silk protein is a full-length recombinant spider silk protein.

33. 32. The method of any one of claims 28 to 31, wherein at least 60%, at least 65%, at least 70%, at least 75%, at least 80%, at least 85%, at least 90%, or at least 95% of the isolated recombinant spider silk proteins are full-length recombinant spider silk proteins.

34. 33. The method of claim 32, wherein the amount of full-length recombinant spider silk protein is measured using Western blot.

35. 33. The method of claim 32, wherein the amount of full-length recombinant spider silk protein is measured using size exclusion chromatography.

36. 36. The method of any one of claims 28 to 35, wherein the isolated recombinant spider silk protein is 5-10%, 10-15%, 15-20%, 20-25%, 25-30%, 30-35%, 35-40%, 45-50%, 50-55%, 55-60%, 60-65%, 65-70%, 70-75%, 75-80%, 80-85%, 85-90%, 90-95%, or 95-100% pure.

37. 37. The method of any one of claims 1 to 36, wherein the recombinant spider silk protein is a highly crystalline silk protein, a silk protein with a high beta-sheet content, or a silk protein with low solubility.

38. 38. The method of any one of claims 1 to 37, wherein the recombinant spider silk protein comprises a sequence as set forth in SEQ ID NOs: 1 to 27 or 39 to 59.

39. 39. The method of any one of claims 1 to 38, wherein the cell culture comprises fungal cells, bacterial cells, or yeast cells.

40. 40. The method of claim 39, wherein the bacterial cell is an Escherichia coli cell.

41. drying the isolated recombinant spider silk protein to produce a silk protein powder. The method of any one of claims 28 to 40, further comprising:

42. 1. A method for isolating recombinant spider silk proteins from a host cell, the method comprising the steps of: providing a cell culture comprising host cells, said host cells expressing a recombinant spider silk protein; recovering an insoluble portion from the cell culture, wherein the insoluble portion comprises the recombinant spider silk protein; adding the insoluble portion of the host cells to a solution comprising at least 1 M, 1.5 M, 2 M, 2.5 M, 3 M, or 4 M calcium chloride and methanol, thereby solubilizing the recombinant spider silk protein in the solution; and isolating said recombinant spider silk protein from said solution, thereby producing isolated recombinant spider silk protein.

43. drying the isolated recombinant spider silk protein to produce a silk protein powder.

43. The method of claim 42, further comprising:

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