Colored and barcoded beads for single cell indexing
The method of isolating cells using color-coded compositions with oligonucleotides addresses the challenge of high-throughput single-cell sequencing by enabling accurate identification and analysis of nucleic acids from heterogeneous populations.
Patent Information
- Application Number
- JP2022527979
- Authority / Receiving Office
- JP · JP
- Patent Type
- Patents
- Current Assignee / Owner
- Priority Date
- 2019-11-15
- Filing Date
- 2020-11-12
- Publication Date
- 2025-10-06
- Estimated Expiration
- 2040-11-12
AI Technical Summary
Existing technologies are unable to selectively isolate single cells from heterogeneous cell populations at a high-throughput level and assign single-cell sequencing results to specific cell types.
A method involving color-coded compositions of solid particles conjugated to oligonucleotides, where target cells and particles are isolated based on preselected physical properties, allowing for the formation of conjugates that enable sequencing and identification of nucleic acids.
Enables high-throughput isolation and identification of nucleic acids from single cells by forming conjugates that distinguish cells based on their phenotypes, facilitating accurate sequencing and analysis.
Smart Images

Figure 0007749555000001 
Figure 0007749555000002 
Figure 0007749555000003
Abstract
Description
[Technical Field]
[0001] The present invention relates to a method for identifying the cDNA, DNA or RNA of a target cell from a population of cells by single cell indexing using color-coded compositions comprising solid particles containing dyes with different emission spectra as additional information.
[0002] Due to the current interest in elucidating the cellular heterogeneity of tissues, single-cell sequencing has attracted the attention of scientists in various research fields. In addition, analysis at the single-cell level can help to better understand the relationship between cellular phenotype and function by deciphering the transcriptomes of different subtypes of a given cell population.
[0003] In recent years, powerful technologies have entered the market that enable the analysis of single-cell transcriptomes on a high-throughput scale. Many of these approaches are based on microfluidic separation of a single cell and a single bead into a droplet. In the droplet, bead-specific oligos bind to the beads and capture mRNA after cell lysis, which becomes a cell-specific barcode after reverse transcription.
[0004] Some available techniques also allow for the selective isolation of single cells from a cell population, for example, by laser detection of antibody staining and subsequent sorting of the marked cells.
[0005] However, so far it has not been possible to selectively isolate single cells from heterogeneous cell populations at a high-throughput level and assign single-cell sequencing results to one of the various cell types.
[0006] In another technical field, it is known to identify genetic information obtained from a single cell by conjugating a polynucleotide as a barcode to the cell. These methods include synthesizing a library containing the barcode, which can be sequenced to identify the single cell.
[0007] The biology and necessary hardware for isolating cells is disclosed, for example, in U.S. Patent No. 9,388,456 or U.S. Patent No. 9,695,468. However, this technique focuses on single, isolated cells, rather than cells in the context of a complex mixture of cells.
[0008] Summary of the Invention The problem of the present invention was therefore to provide conjugates that make it possible to distinguish the DNA and RNA molecules of single cells in combination with their phenotypes detectable by the binder.
[0009] Therefore, the first object of the present invention is to isolating in one compartment at least one target cell from the cell population and at least one color-coded composition comprising solid particles conjugated to oligonucleotides; lysing the isolated target cells; binding the nucleic acid molecules of the lysed isolated target cells with the oligonucleotides of the color-coded composition to form a first conjugate; determining the sequence of the first conjugate and thereby identifying the target cell; 1. A method for identifying nucleic acid of a target cell from a cell population, comprising: A method, characterized in that at least one target cell and at least one color-coded composition are selected to be isolated in one compartment according to a combination of at least one preselected physical property of the target cell and at least one preselected physical property of the color-coded composition.
[0010] The target cell / cell population and color-coded composition are provided as a mixture of various subpopulations, and the isolation step is best performed by selecting one target cell and one color-coded composition into one compartment according to preselected properties.
[0011] For this purpose, the preselected physical properties of target cells and color-coded compositions (beads) are used to select and isolate a specific cell subpopulation together with a specific bead population.For example, if the preselected physical property of target cells is the presence of CD4 marker, and the preselected physical property of color-coded compositions (beads) is blue, all cells and beads with these properties will be sorted into compartments at a 1:1 ratio.For example, cells with CD5 marker and red beads will not be selected / isolated.Of course, multiple physical properties can be preselected for both cells and beads, as long as the 1:1 relationship of the selected properties is maintained.For example, five different physical properties can be preselected, which allow five sets of cells and beads to be sorted into compartments at a preferred 1:1 ratio.
[0012] The preselected physical characteristic of the target cells may be selected from the group consisting of shape, size, granularity, organelle composition, ionic composition, sugar composition, lipid composition, and protein composition.
[0013] When protein composition is used as the preselected physical property, at least one intracellular or extracellular protein is marked by a fluorescent stain. The term protein composition refers to protein expression and post-translational modifications.
[0014] The preselected physical properties of the color-coded composition are defined by the solid particles and may be selected from the group consisting of size, particle size, charge, magnetic moment, one or more colors, and one or more intensities of at least one color. [Brief explanation of the drawings]
[0015] [Figure 1a] Figure 1 shows the emission spectra of solid particles containing two dyes with different emission spectra and concentrations employed to distinguish 39 different solid particles. The terms "MACSPlex B1" and "MACSPlex B2" refer to different concentrations of two dyes with different emission spectra. [Figure 1b] FIG. 1 shows a selection of the resulting solid particles. [Figure 2] FIG. 1 shows an exemplary gating scheme for identifying 39 different bead populations and combining them with target cell populations.
[0016] Detailed Description target area The target moieties detected using the methods of the present invention may be on any biological sample, such as tissue sections, cell aggregates, suspension cells or adherent cells.
[0017] Color-coded composition The color-coded composition includes solid particles conjugated to oligonucleotides.
[0018] In a first variant of the method of the invention, the color-coded composition comprises a compound of general formula (Ia) or (Ib) X-(PCB-BR) n (Ia) X-(PBC-BR) n (Ib) [In the formula, X is a solid particle, P (PCR handle): an oligonucleotide containing 4 to 30 nucleotide residues C (color-specific barcode): oligonucleotide containing 1 to 8 nucleotide residues B (bead-specific barcode): oligonucleotides containing 8 to 30 nucleotide residues BR (binding region): an oligonucleotide containing 3 to 30 nucleotide residues n: an integer equal to or greater than 1, P, C, B and BR are linked to each other via the same or different oligonucleotide units as spacers, each of which contains 0 to 30 nucleotide residues.
[0019] In another variation of the method, the color-coded composition comprises a compound represented by the general formula (IIa), (IIb), (IIc), (IId), (IIe), (IIe) or (IIf): X-(PCBU-BR) n (IIa) X-(PCUB-BR) n (IIb) X-(PBCU-BR) n (IIc) X-(PBUC-BR) n (IId) X-(PUBC-BR) n (No) X-(PUCB-BR) n (IIf) [In the formula, X is a solid particle, P (PCR handle): an oligonucleotide containing 4 to 30 nucleotide residues C (color-specific barcode): oligonucleotide containing 1 to 8 nucleotide residues B (bead-specific barcode): oligonucleotides containing 8 to 30 nucleotide residues BR (binding region): an oligonucleotide containing 3 to 30 nucleotide residues U (unique molecular identifier): an oligonucleotide containing 5 to 15 nucleotide residues n: an integer equal to or greater than 1, P, C, B, U and BR are linked to each other via the same or different oligonucleotide units as spacers each containing 0 to 30 nucleotide residues.
[0020] Barcode part In this application, oligonucleotides C (color-specific barcode), B (bead-specific barcode) and U (unique molecular identifier) are referred to as "barcodes" because they can identify a single target by their unique sequence.
[0021] The barcode-containing portions C, B, and U may contain the same or different oligonucleotide sequences with the disclosed number of nucleotide residues. Preferred nucleotide residues are naturally occurring cytosine (C), adenine (A), guanine (G), and thymine (T). By randomly polymerizing these units, a library of oligonucleotides with different sequences can be obtained. For example, a library that randomly generates oligonucleotides containing 10 nucleotide residues can be obtained by 4 10 = 1,048,576 members.
[0022] The oligonucleotide sequences P (PCR handle), C (color-specific barcode), B (bead-specific barcode), U (unique molecular identifier), and BR (binding region) are linked to each other directly or via additional oligonucleotide units as spacer units. The spacer units can be the same or different oligonucleotides, each containing 0 to 30 nucleotide residues. Preferably, the spacer units are non-specific oligonucleotides.
[0023] In a preferred embodiment, one or more spacer units comprise 0 (zero) nucleotide residues, i.e., the oligonucleotides P (PCR handle), C (color-specific barcode), B (bead-specific barcode), U (unique molecular identifier) and BR (binding region) are directly attached to each other.
[0024] The oligonucleotide P (PCR handle) can contain 4 to 30 nucleotide residues and serves as the binding region for the primer for the subsequent amplification reaction.
[0025] Oligonucleotide C (color-specific barcode) can contain 1 to 8 nucleotide residues and allows for the identification of cells or cell types.
[0026] Oligonucleotide B (bead-specific barcode) can contain 8-30 nucleotide residues and serves as a cell-specific barcode that allows assigning sequencing information to the cell of origin.
[0027] Oligonucleotide U (unique molecular identifier) can contain 5 to 15 nucleotide residues and serves as an identifier for each single nucleic acid molecule in the target cell.
[0028] The oligonucleotide BR (binding region) can contain 3 to 30 nucleotide residues and serves as a binding region for the nucleic acid molecule of interest in the target cell.
[0029] Techniques for generating oligonucleotides and libraries thereof are well known to those skilled in the art, as are techniques for amplifying isolated oligonucleotides to increase their abundance. U.S. Patent No. 9,388,465 summarizes these techniques.
[0030] solid particles The term "solid particle" refers to any substance that is not soluble or not readily soluble in aqueous systems commonly used in cell manipulation. The term does not necessarily refer to a particular hardness or composition / material.
[0031] The solid particles X used in the present invention can be made of any material, so long as they have low solubility in aqueous systems and remain observable or detectable during the methods of the present invention. For example, the solid particles X can comprise polystyrene, polydextran, either of which is optionally chemically modified with a reactive group for binding a dye or an oligonucleotide as a spacer unit or a PCR handle P. Suitable reactive groups are, for example, amino or carboxylic acid groups.
[0032] Solid particles useful in the present invention can be prepared using methods known to those skilled in the art or as described in the literature. For example, solid particles can be prepared by incorporating dyes into preformed polymer beads by swelling the particles in a dye-containing organic solvent mixture at either room temperature (U.S. Pat. No. 6,514,295) or elevated temperature (U.S. Pat. No. 7,507,588). A further method involves shifting the phase equilibrium by adding water to drive the hydrophobic dye into the polymer phase (U.S. Pat. No. 6,964,747). Solid particle X beads can also be prepared by polymerization of a monomer mixture containing a dye-labeled monomer (J. Am. Chem. Soc. 2004, 126, 21, 6562-6563) or by physical encapsulation of the hydrophobic dye during particle formation by polymerization (U.S. Pat. No. 5,073,498).
[0033] Figure 1 shows an exemplary layout of a two-color bead base, where B1 and B2 refer to two colors that can be distinguished by a flow cytometer.
[0034] In another embodiment of the invention, the solid particles may comprise multiple (e.g., 5-50) subunits linked by magnetic forces, electrostatic interactions, or chemical bonds, which may be covalent or non-covalent, and which can be released from one another upon droplet formation, for example, by chemically or enzymatically induced cleavage.
[0035] The size of the solid particles is less critical and can be between 1 and 200 μm.
[0036] Preferably, the solid particles X contain at least two dyes having different emission spectra with a difference in emission maxima of at least 10 nm, more preferably at least two dyes having different emission spectra with a difference in emission maxima of at least 20 nm. Increasing the number of different dyes improves the quality and quantity of information, but for practical purposes, 2 to 10 different dyes are sufficient. When concentration alone is used as the selection criterion, one dye is sufficient.
[0037] The dye concentrations and emission maxima differences are preferably selected to allow for the differentiation of at least 30, preferably at least 50, different solid particles.
[0038] Useful dyes are protein-based, e.g., phycobiliproteins; polymers, e.g., polyfluorenes; small organic molecule dyes, e.g., xanthenes, e.g., fluoresceins or rhodamines; cyanines; oxazines; coumarins; acridines; oxadiazoles; pyrenes; pyrromethenes; or organometallic complexes, e.g., Ru, Eu, and Pt complexes. In addition to single molecular entities, clusters of fluorescent proteins or small organic molecule dyes, and nanoparticles, e.g., quantum dots, upconversion nanoparticles, gold nanoparticles, and dyed polymer nanoparticles, can also be used as fluorescent moieties.
[0039] Methods of the Invention In a further embodiment of the method, the nucleic acid of the target cell to be identified is single-stranded, wherein a complementary strand of the nucleic acid molecule is obtained and binds to the BR unit of the color-coded composition, thereby forming a second conjugate, and the second conjugate is sequenced, thereby identifying the target cell.
[0040] Single-stranded nucleic acids can be, for example, RNA, denatured DNA, or nucleic acid molecules attached to target cells during sample preparation procedures, an example of the latter being antibody-oligonucleotide conjugates used to label target cells.
[0041] The term "determining the sequence of the first / second conjugate" refers to any method known in the art of nucleic acid sequencing, which may include an amplification step and / or library generation. In either case, the sequence of the conjugate is obtained, thereby identifying the target cell.
[0042] The techniques required for binding of nucleic acid strands to BR units of the color-coded composition and subsequent sequencing are not particularly relevant to the present invention and are known to those skilled in the art.
[0043] In a variation of the method according to the invention, at least one target cell is isolated in a compartment from the cell population together with at least one color-coded composition by placing the at least one target cell and at least one color-coded composition in an aqueous droplet surrounded by a water-immiscible fluid.
[0044] It is further possible to apply color-coded compositions with the same solid particles X to target cells belonging to the same cell type or phenotype, or cells that bind to the same antibody / analyte.
[0045] In the methods of the present invention, the color-coded composition may comprise at least two different solid particles X, so as to apply a color-coded composition having different solid particles X to at least two different cell types.
[0046] The cell type of the target cells can be identified by sequencing the C (color-specific barcode) of the conjugate. In a further variation, the cell type of the target cells is determined by fluorescent staining before isolating at least one target cell into a compartment from the cell population with at least one color-coded composition according to the invention.
[0047] Use of the method The methods of the present invention can be used in a variety of research, diagnostic, and cell therapy applications. The methods of the present invention are particularly useful for identifying nucleic acids of target cells from a cell population. The analytes can be used to identify and measure biomarkers or therapeutic targets.
[0048] Example The following is a hypothetical process according to the method of the present invention. The process step of isolating at least one target cell from a cell population into a compartment together with at least one color-coded composition is performed in a MACSQuant Tyto device (available from Miltenyi Biotec BV & Co. KG, hereinafter referred to as "Tyto"), which comprises a MEMS valve located in a disposable cartridge capable of placing at least one target cell and at least one color-coded composition into an aqueous droplet surrounded by a water-immiscible fluid. Such a valve / cartridge is described in International Application PCT / US19 / 27577.
[0049] Case 1: Analysis of gene expression in distinct subsets of blood-derived immune cells by single-cell sequencing process steps 1. Prepare cell populations as in blood sample preparation (e.g. Ficoll, RBC lysis...) 2. Stain the cell population with CD45-VB, CD56-FITC, CD3-PE, CD19-APC, and PI (to exclude dead cells). 3. Mix the stained sample with the multiplex beads 4. Load the sample / bead mixture, oil, and lysis buffer into the cartridge, all in separate compartments. 5. Begin sample analysis and manual scatter-based gating of the total bead population 6. Tyto automatically defines 39 fluorescent bead populations; 7. Begin sample analysis and set sort gates for desired cell populations as follows: A. Cell gating based on size (scatter) parameters to distinguish between cells and 5 μm beads. B. Cell population 1 is the cell gate / viability gate / CD45+ / CD56- / CD3- / CD19+ (B cells) → Set "sort gate 1" C. Cell population 2 is the cell gate / viability gate / CD45+ / CD56- / CD3+ / CD19- (T cells) → Set "sort gate 2" D. Cell population 3 is the cell gate / viability gate / CD45+ / CD56+ / CD3- / CD19- (NK cells) → Set "sort gate 3" Exemplary gating results are shown in FIG. 8. Tyto should automatically pair each sort gate with a fluorescent bead population (e.g., "sort gate 1" + "bead population X", "sort gate 2" + "bead population Y", ...) and the pairing information should be available for downstream analysis. Examples are: → Cell population 1 = "sort gate 1" pairs with green beads (bead gate / green population gate) → Cell population 2 = "sort gate 2" pairs with red beads (bead gate / red population gate) → Cell population 3 = "sort gate 3" pairs with blue beads (bead gate / blue population gate) 9. Start sorting and allow Tyto to sort 5000 cells of each cell population paired with their respective bead population (as shown in point 8), with each cell-bead doublet encapsulated in a water-in-oil droplet; to optimize recovery, make the cells the first sorting event and the beads the second event. 10. Record QC parameters: number of encapsulated cells, events for each cell population, frequency of exact matching (one cell in the droplet and one exact bead), missed target cells, and other TBD 11. Cells are automatically lysed in the droplets by mixing with lysis buffer, and the released mRNA is captured on the beads by oligonucleotides, stabilizing the droplets. 12. Remove the cartridge and incubate at 37°C for 2 hours to perform reverse transcription and obtain cDNA linked to bead-specific barcodes. 13. Dissolving water-in-oil droplets with detergent 14. Amplify and sequence bulk barcoded DNA 15. Align sequence information according to barcode: →Each sequence representing a specific random barcode comes from a specific cell Additionally, each oligonucleotide carries a short barcode specific to a bead population, so that apart from knowing which sequence comes from a particular cell, the sequence information also indicates which bead population / color this particular cell was paired with, allowing to define the cell population it originally belonged to, e.g., since the sequence belongs to a red bead, the particular cell was a cell gate / viability gate / CD45+ / CD56- / CD3+ / CD19- T cell.
[0050] Case 2: Analysis of T cell receptor (TCR) repertoires of different TIL subpopulations by single-cell sequencing Process steps: 1. Tumor Tissue Sample Preparation (GentleMACS-based Tissue Dissociation, Filtration, and Washing) 2. Stain sample #1 with CD3-VB, CD4-FITC, CD8-PE, CD25-APC, and PI (to exclude dead cells). 3. Mix the stained sample with the multiplex beads 4. Load the sample / bead mixture, oil, and lysis buffer into the cartridge, all in separate compartments. 5. Begin sample analysis and manual scatter-based gating of the total bead population 6. Tyto automatically defines 39 fluorescent bead populations; 7. Begin sample analysis and set sort gates for desired cell populations: 8.A. Cell gating based on size (scatter) parameters to distinguish between cells and 5 μm beads 9.B. Cell population 1 is the cell gate / viability gate / CD3+ / CD4- / CD8+ / CD25- (effector T cells) → Set "sort gate 1" 10.C. Cell population 2 is the cell gate / viability gate / CD3+ / CD4+ / CD8- / CD25- (helper T cells) → Set "sort gate 2" 11.D. Cell population 3 is the cell gate / viability gate / CD3+ / CD4+ / CD8- / CD25+ (regulatory T cells) → Set "sort gate 3" 12. Tyto must automatically pair each sort gate with a fluorescent bead population (e.g., "Sort Gate 1" + "Bead Population X", "Sort Gate 2" + "Bead Population Y", ...) and the pairing information must be available to the customer for downstream analysis. Examples are: 13. → Cell population 1 = "sort gate 1" is paired with the green beads (bead gate / green population gate) → Cell population 2 = "sort gate 2" pairs with red beads (bead gate / red population gate) → Cell population 3 = "sort gate 3" pairs with blue beads (bead gate / blue population gate) 14. Start sorting and allow Tyto to sort 10,000 cells of each cell population paired with their respective bead population (as shown in point 8), with each cell-bead doublet encapsulated in a water-in-oil droplet; to optimize recovery, make the cells the first sorting event and the beads the second event. 15. Record QC parameters: number of encapsulated cells, events for each cell population, frequency of exact matching (one cell and one exact bead in the droplet), missed target cells, and other TBD 16. Cells are automatically lysed in the droplets by mixing with lysis buffer, and the released mRNA is captured on the beads by oligonucleotides, stabilizing the droplets. 17. Remove the cartridge and incubate at 37°C for 2 hours to perform reverse transcription and obtain cDNA linked to bead-specific barcodes. 18. Dissolving water-in-oil droplets with detergent 19. Amplify and sequence bulk barcoded DNA 20. Align sequence information according to barcode: →Each TCR sequence that displays a specific random barcode is derived from a specific cell → Additionally, each oligonucleotide carries a short barcode specific to a certain bead population, so apart from knowing which sequence comes from a particular cell, the sequence information also indicates which bead population / color this particular cell was paired with, allowing to define the cell population it originally belonged to, for example, since the sequence belongs to a green bead, this particular cell with a particular TCR was a cell gate / viability gate / CD3+ / CD4- / CD8+ / CD25- effector T cell.
Claims
1. isolating in one compartment at least one target cell from a cell population and at least one color-coded composition comprising solid particles conjugated to oligonucleotides; lysing the isolated target cells; binding the nucleic acid molecules of the lysed isolated target cells with the oligonucleotides of the color-coded composition to form a first conjugate; determining the sequence of the first conjugate, thereby identifying the target cell; a method for identifying nucleic acid of said target cell from said cell population, said method comprising:
1. A method according to claim 1, wherein at least one target cell and said at least one color-coded composition are selected to be isolated in one compartment according to a combination of a preselected physical property of said target cell and a preselected physical property of said color-coded composition, wherein said preselected physical property of said target cell is a protein composition in which at least one intracellular or extracellular protein is marked by a fluorescent stain, and said preselected physical property of said color-coded composition is one or more colors and a difference in concentration and emission intensity of at least one color.
2. The color-coded composition is represented by the general formula (Ia) or (Ib) X-(P-C-B-BR) n (Ia) X-(P-B-C-BR) n (Ib) [In the formula, X is a solid particle; P (PCR handle): an oligonucleotide containing 4 to 30 nucleotide residues C (color-specific barcode): oligonucleotide containing 1 to 8 nucleotide residues B (bead-specific barcode): an oligonucleotide containing 8 to 30 nucleotide residues BR (binding region): an oligonucleotide containing 3 to 30 nucleotide residues n is an integer of 1 or more, The method of claim 1, characterized in that the composition is one of the following: P, C, B and BR are linked to each other via the same or different oligonucleotide units as spacers each containing 0 to 30 nucleotide residues.
3. The color-coded composition is a compound represented by the general formula (IIa), (IIb), (IIc), (IId), (IIe), or (IIf): X-(P-C-B-U-BR) n (IIa) X-(P-C-U-B-BR) n (IIb) X-(P-B-C-U-BR) n (IIc) X-(P-B-U-C-BR) n (IId) X-(P-U-B-C-BR) n (IIe) X-(P-U-C-B-BR) n (IIf) [In the formula, X is a solid particle; P (PCR handle): an oligonucleotide containing 4 to 30 nucleotide residues C (color-specific barcode): oligonucleotide containing 1 to 8 nucleotide residues B (bead-specific barcode): an oligonucleotide containing 8 to 30 nucleotide residues BR (binding region): an oligonucleotide containing 3 to 30 nucleotide residues U (unique molecular identifier): an oligonucleotide containing 5 to 15 nucleotide residues n is an integer of 1 or more, The method of claim 2, characterized in that the composition is one of the following: P, C, B, U and BR are linked to each other via the same or different oligonucleotide units as spacers each containing 0 to 30 nucleotide residues.
4. 4. The method of claim 1, wherein the at least one target cell and the at least one color-coded composition are isolated in a compartment from the cell population together with the at least one color-coded composition by placing the at least one target cell and the at least one color-coded composition in an aqueous droplet surrounded by a water-immiscible fluid.
5. 4. The method according to claim 2 or 3, characterized in that the physical property of the target cells used for selection is identified by sequencing C (color-specific barcode) of the conjugate.
6. 4. The method of claim 2 or 3, characterized in that the nucleic acid of the target cell to be identified is single-stranded, wherein a complementary strand of the nucleic acid molecule is obtained and binds to the BR unit of the color-coded composition, thereby forming a second conjugate, and sequencing the second conjugate, thereby identifying the target cell.
Citation Information
Patent Citations
Large-scale parallel single-cell analysis
JP2016533187A
Methods and systems for associating physical and genetic properties of biological particles
WO2019099908A1
Method for detecting genome-related information of cell coexisting with one or more substances to be detected
WO2020096015A1