Microfluidic methods and systems
The microfluidic system integrates phenotypic and genotypic information by spatially separated oligonucleotides, addressing the challenge of accurate single-cell analysis and enabling reliable phenotypic-genotypic linkage in high-throughput screening.
Patent Information
- Application Number
- JP2023536433
- Authority / Receiving Office
- JP · JP
- Patent Type
- Patents
- Current Assignee / Owner
- Priority Date
- 2020-12-22
- Filing Date
- 2021-12-17
- Publication Date
- 2026-01-13
- Estimated Expiration
- 2041-12-17
AI Technical Summary
Existing microfluidic methods face challenges in accurately combining phenotypic screening with genotyping at the single-cell level, particularly in recovering specific cell genotypes and phenotypes, and often require complex structures for reagent mixing that prevent initial reaction products from localizing with the target.
A microfluidic system with spatially separated groups of oligonucleotides on a solid support, allowing single-cell droplets to be trapped and fused with reagent droplets for phenotypic and genotypic information integration, enabling determination of the genotype and phenotype of single cells.
The system provides precise phenotypic and genotypic analysis of single cells with increased reliability and versatility, allowing for high-throughput screening and accurate linkage of phenotypes to genotypes through droplet fusion and optical analysis.
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Abstract
Description
[Technical Field]
[0001] The present invention is in the field of molecular biology and relates to methods for assigning phenotypes to genotypes using droplets in a microfluidic device. The present invention is also in the field of microfluidics and encompasses microfluidic devices, methods for their manufacture and their use for performing biological assays. [Background technology]
[0002] Recent advances in single-cell analysis, such as the single-cell RNA-seq method developed by Klein (Klein et al. 2015, Cell 161(5):1187-1201) and Macosko (Macosko et al. 2015, Cell 161(5):1202-1214) and the single-cell epigenetic ChIP-seq method devised by Rotem (Rotem et al. 2015, Nat. Biotechnol. 33(11):1165-1172), enable dissection of cell populations with higher throughput than corresponding bulk methods (Jaitin et al. 2014, Sciences 343(6172):776-779). However, sequencing data only allow endpoint measurements of cells or cell lines, and there is an increasing need to include information on cell dynamics or phenotypes to complement and enhance the genetic information obtained.
[0003] The methods underlying functional assays are well established and have been adapted for single-cell analysis by Agresti (Agresti et al. 2010, PNAS 107(9):4004-4009). Droplet microfluidics offers a suite of methods that can address multiple challenges, such as high-throughput screening, using elements such as single-cell encapsulation, droplet sorting, and droplet fusion to construct phenotypic assays. For example, Mazutis described a method for using immunoglobulin-capturing magnetic beads to select droplets containing B cells producing antibodies against a target of interest (Mazutis et al. 2013, Nat. Prot. 8:870-891). A variation of this method was published by Eyer, in which the single magnetic bead was replaced with multiple magnetic nanoparticles, facilitating reliable analysis of all cells (Eyer et al. 2017, Nat. Biotechnol. 35(10):977-982). These two examples demonstrate antibody binding events within droplets in a high-throughput manner.
[0004] In an ideal screening system for drug discovery, the selection of a phenotype of interest would not be a single-step process, but would consist of a stepwise selection of phenotypes based on a combination of different phenotypic assays, typically based on binding and / or functional readouts, either endpoint measurements or kinetics.
[0005] A critical step in all phenotypic screens is the selection of a reporter system (e.g., antibody, chemical dye, or genetically encoded fluorescent tag). Fluorescence microscopy can simultaneously monitor only a relatively small number of reporter systems in each cell. Multiplexing reporter systems and / or performing additional replicate experiments can increase the number of readouts used to examine cellular responses and provide useful information. However, increasing the number of reporter systems can increase the cost and time required for screening.
[0006] Furthermore, providing information in a first step at high throughput on the phenotypic function of cell-cell interactions / recognition and / or compound function, and in a second step at the single-cell level of genotyping, requires an informed combination of both phenotype and genotype at the single-cell level.
[0007] Microfluidics has emerged as a powerful technology for performing a wide range of biological and chemical assays at high throughput. This technology enables high-throughput analysis of complex samples by partitioning bulk solutions into numerous independent compartments or microreactors of pico- to nanoliter size.
[0008] However, post-analytical recovery of individual samples is difficult to achieve using methods known in the art. Furthermore, mixing of reagents within these devices often requires complex structures or is performed en bloc prior to compartmentalization, which can prevent initial reaction products from co-localizing with the initiating target.
[0009] Indeed, microfluidic methods combining phenotypic screening with genotyping at the single-cell level lack droplet discrimination accuracy. In particular, recovering single-cell-specific genotypes along with single-cell-specific phenotypes is extremely challenging, so methods for screening cells with desired phenotypes and recovering specific cell genotype information, optionally in combination with functional readouts, are highly desirable.
[0010] The methods disclosed herein are aimed at solving the above-mentioned problems affecting microfluidic methods known in the art.
[0011] The present inventors have developed a microfluidic device for carrying out the methods disclosed herein, in which single-cell droplets are trapped in individual compartments. The single-cell droplets are then selectively fused with other droplets that combine phenotypic information (protein expression levels, cellular pathway activation / activity, ion channel / GPCR activity) with genotypic or epigenetic information, thereby enabling the genotype of single cells with the desired phenotype to be determined. Summary of the Invention
[0012] The present invention relates to a microfluidic system, the system comprising: a) a solid support comprising at least a first group of oligonucleotides; i. each oligonucleotide of the group comprises a first type, a second type, and / or a further type of nucleic acid sequence; ii. the first type of nucleic acid sequence is a barcode sequence; iii. oligonucleotides containing the same barcode sequence are grouped into groups of oligonucleotides on said solid support; iv. the first group of oligonucleotides and the additional group of oligonucleotides are spatially separated on the solid support; b) the one or more groups of oligonucleotides on the solid support are in separate reservoirs of a microfluidic system; c) one or more reservoirs are accessible to fluids, cells, chemicals and / or microdroplets via channels; d) Each reservoir containing a group of oligonucleotides on said solid support is also a trap for a microfluidic droplet.
[0013] The present invention also relates to a method for attaching an oligonucleotide to a cell, the method comprising: a) providing a microfluidic system according to the present invention; b) encapsulating a first cell in a first droplet; c) capturing the cells within the reservoir; d) fusing a second droplet containing a lysis composition with the first droplet, thereby allowing the oligonucleotides on the solid support to attach to nucleic acids within the cells.
[0014] The present invention further relates to a method for determining the phenotype and / or genotype of a single cell, the method comprising: a) providing a microfluidic device comprising at least one microfluidic channel and at least a collector system comprising a plurality of reservoirs; b) separately encapsulating at least one cell of the plurality of cells of the first type into a droplet of the first type; Optionally, co-encapsulating a second type cell from the plurality of second type cells into each of the first type droplets; c) flowing a plurality of droplets of a first type into a microfluidic channel of the microfluidic device, capturing droplets of the first type in each reservoir of the microfluidic device, and optionally analyzing phenotypes within the droplets contained within the reservoirs; d) flowing a plurality of droplets of a second type into the microfluidic channel and capturing a second droplet of the second type in each reservoir; e) fusing the first type of droplets with the second type of droplets in the reservoir; f) carrying out at least one reaction within the fused droplets obtained in e) and determining a readout of the reaction.
[0015] The invention further relates to a method for manufacturing a system according to the invention.
[0016] The present invention also relates to kits comprising a microfluidic system of the present invention and, optionally, instructions for carrying out the methods of the present invention. [Brief explanation of the drawings]
[0017] [Figure 1]3D illustration of a device of the present invention containing a first cell droplet trapped in a reservoir, with a second reagent droplet contacting the first cell droplet and located beneath an array of barcoded oligos. The reservoir is configured such that the first droplets do not contact each other and the second and further droplets do not contact each other, such that fusion can occur only between two first and second droplets that wet the locally spatially arranged oligos trapped within the reservoir. The barcode is configured to contact a single second droplet. [Figure 2] 2D diagram of two devices showing two different functions. The array section is designed to systematically spot oligos (2) onto the slide surface (1). The second device, called the fluidics device (3), is designed to organize droplets introduced into the fluidic system. This device can also be used to manipulate various types of droplets. [Figure 3] A 2D view of both assembled devices is shown in Figure 2. Both are then combined to organize droplets according to the oligos spotted on the slide surface. The oligos are used to specifically react with any kind of substance, usually cells or cell lysates, introduced into the droplets. [Figure 4]This is the fabrication process for the fully assembled device. Both devices, illustrated in Figure 2, are fabricated separately. (1) The array slide is ordered from a subcontractor, who prepares different oligo spots on the slice surface. The oligo composition can be adapted to any type of reaction performed in the droplets. For the fluidics components, fabrication begins with the creation of an SU8 mold (19). The initial device is drawn using any type of 3D software, typically AutoCAD. A mask is then printed, allowing for photoactivation of the SU8 resin following the recessed areas of the printed mask. Excess resin is then removed using an organic solvent. The 3D SU8 mold (19) contains the same design, but with a convex base area. This process is performed multiple times to create multiple layers of SU8 resin with different designs. This is used to generate various features in the fluidic device and to create various types of droplet organization or manipulation. a) Unpolymerized PDMS is cast onto the SU8 mold (19), encasing the shape of the SU8 mold. After baking, the PDMS hardens, and the SU8 shape is replicated as a recess in the PDMS piece. b) The PDMS is removed from the SU8 mold, forming the PDMS mold (20). c) On the PDMS mold, the COC polymer is hot embossed onto the PDMS surface. The plastic encapsulates the PDMS surface, replicating the recessed design on the COC surface. d) After the COC piece is removed from the PDMS mold, it becomes a fluidics device with known fluidic properties. e) Both the array part and the COC fluidic part are then assembled using any kind of sealing (thermal sealing, double tape, adhesive, resin, etc.). [Figure 5] The array slide (1) on which the oligos are spotted is composed of three types of sequences in this example. (8) corresponds to the first type of sequence. (9) corresponds to the second type of sequence. (10) corresponds to the third type of sequence. The three different sequences are used for different functions. In this example, (8) is used as a specific sequence for capturing mRNA by reverse transcription. (9) is used as a known identifier that is different for each spot. (10) is used for further molecular biology reactions. [Figure 6]2D diagram of the assembled array and fluidics device. A stream of a first type of droplets (25, 26, 27) containing at least one or more cells is introduced into the fluidic chamber. The first type of droplets contains any type of reagent suitable for phenotypic analysis. The first type of droplets is individualized within a single compartment by buoyancy. Next, a stream of a second type of droplets is introduced into the fluidic chamber. A second type of droplets containing reagents for a molecular biology reaction is configured to contact the first type of droplets. The first and second types of droplets are fused using any suitable technique (29). The fused droplets containing the cells, lysis agent, and molecular biology reagents are contacted with oligos spotted on the slide surface. The oligos are then released using any type of oligo cleavage. In this example, the molecular biology reaction begins with cell lysis in the presence of the molecular biology reagent, releasing the spotted oligos. [Figure 7] 1 shows a microfluidic workflow according to an embodiment of the present invention. [Figure 8] Example of a microfluidic device and droplets trapped within reservoirs. The cell droplet (small droplet) is trapped in the first reservoir. The reagent droplet (larger droplet) is trapped by two pillars, which temporarily physically position the two droplets at the location where the oligonucleotides were spotted. The fusion of the two droplets and wetting of the droplet onto the oligonucleotide surface mixes the three reservoirs: the cell droplet, the reagent droplet, and the oligonucleotide. [Figure 9]Fully assembled chip prototype. The complete array consists of six different fluid chambers (5) containing spots and cavities for trapping droplets. Droplets are injected through the chip using the first inlet (connector) channel (3). Excess oil or droplets are expelled from the chambers (5) using the outlet channel (4). Carrier oil is injected through the second inlet channel (1). Droplet fusion requires the injection of 10% PFO into the chambers (5) using the third inlet channel (2). Droplets are trapped in cavities organized within the fluid chambers (5). Other fluid chambers are also present throughout the chip and can be used independently (6, 7, 8, 9, 10). DETAILED DESCRIPTION OF THE INVENTION
[0018] The present invention relates to a microfluidic system, the system comprising: a) a solid support comprising at least a first group of oligonucleotides; i. each oligonucleotide of the group comprises a first type, a second type, and / or a further type of nucleic acid sequence; ii. the first type of nucleic acid sequence is a barcode sequence; iii. oligonucleotides containing the same barcode sequence are grouped into groups of oligonucleotides on said solid support; iv. the first group of oligonucleotides and the additional group of oligonucleotides are spatially separated on the solid support; b) the one or more groups of oligonucleotides on the solid support are in separate reservoirs of a microfluidic system; c) one or more reservoirs are accessible to fluids, cells, chemicals and / or microdroplets via channels; d) Each reservoir containing a group of oligonucleotides on said solid support is also a trap for a microfluidic droplet.
[0019] In the context of the present invention, the term "microfluidic system" refers to a device comprising at least one microfluidic channel, which can be made by any method known in the art, including milling, etching, ablation, embossing or molding into materials (glass, silicon, ceramic paper, hydrogels or polymers such as PDMS, TPE, PS, PEGDA, PFEP / PFA / PFPE, PU, PMMA, PC, COP or COC and composites of said materials).
[0020] The microfluidic system may also include a sorting system. Microfluidic cell sorting systems are known to those skilled in the art and are described, for example, by Wyatt Schields (Wyatt Schields et al. 2015, Lab Chip 15(5):1230-1249).
[0021] In the context of this invention, the term "oligonucleotide" refers to an oligomer or polymer of either ribonucleic acid (RNA) or deoxyribonucleic acid (DNA), as well as non-naturally occurring oligonucleotides. Non-naturally occurring oligonucleotides are oligomers or polymers that contain nucleobase sequences that do not occur in nature, or species that contain functional equivalents of naturally occurring nucleobases, sugars, or inter-sugar linkages.
[0022] In one embodiment, the oligonucleotide may comprise one or more nucleic acid sequences selected from the group consisting of a first type, a second type, and / or a third type. In one embodiment, the first type of nucleic acid sequence may be a barcode sequence. As used herein, a barcode sequence is used to identify a nucleic acid molecule, and sequencing may reveal a specific barcode attached to the nucleic acid molecule of interest. In the context of the present invention, it is sufficient for at least a portion of the barcode sequence to be recognized in a sequence-specific event to identify the oligonucleotide of interest.
[0023] In a system according to the present invention, the barcode sequence of each group is known and the location on the solid support is known.
[0024] In a system according to the invention, at least a portion of the system is optically transparent to allow optical analysis of the cell(s) trapped within said reservoir, ideally the transparent portion being adjacent to the oligonucleotide population.
[0025] In the system according to the present invention, each group of oligonucleotides is 10 4 ~10 11 The group contains between about 10 9 It is preferable if the number of particles is (+ / - 25%).
[0026] In systems according to the present invention, the cell trap is a cavity with dimensions of approximately 10 μm to 200 μm (+ / - 25%), configured to accommodate droplets containing one or two cells, and in some embodiments, three or more cells, preferably small cells such as bacteria and large cells such as neurons.
[0027] In the context of the present invention, the term "cell" refers to any eukaryotic cell, including, but not limited to, epithelial cells, immune cells (such as lymphocytes, neutrophils, and monocytes / macrophages), hematopoietic cells, bone marrow cells, osteoblasts, cardiomyocytes, hepatocytes, and neural cells. Also, as used herein, unless otherwise specified, the term "cell" refers to a "single cell."
[0028] In the context of the present invention, the term "reservoir(s)" refers to any physical location of material (e.g., fluid, cells, particles, droplets) such that the material is temporarily or permanently stored / placed at a predetermined location within a device. Reservoirs may or may not prevent the flow, connection, interaction, contact, or communication of materials with each other.
[0029] It is understood that in one embodiment of the present invention, the oligonucleotide groups on the solid support should be understood as not being physically within reservoirs, but rather being located on the solid support in correspondence with reservoirs. Thus, there are no reservoirs on the solid support that contain the oligonucleotide groups. This is also evident from the figures provided herein.
[0030] In another embodiment of the invention, the oligonucleotides may be physically contained within a reservoir.
[0031] In a system according to the invention, the spatial separation of the oligonucleotides is at least 100 nm and no more than 1,000 μm (+ / −25%).
[0032] The inventors have found that this spatial separation is essential to avoid contamination between different spotted DNAs or different reservoirs (droplets). Such contamination can lead to incorrect assignment of phenotype and genotype linkages or assignment to multiple droplets, resulting in inaccurate identification of phenotype / genotype linkages. Another parameter to consider is droplet size. In this regard, reducing the spatial separation beyond the claimed limits can impair chemical-mechanical-physical events or reactions occurring within the droplets, such as the efficiency of the reverse transcription (RT) reaction.
[0033] In the system according to the present invention, the oligonucleotides in each group contain a second type of nucleic acid sequence, which may be a universal sequence, a type of additional sequence, which may be a hybridizing sequence or a primer sequence, and a type of additional sequence, which may be a hybridizing sequence. The oligonucleotides in each group are identical. See Figure 5. Typically, they are attached to the 5' prime end. Ideally, the oligonucleotides have different sequence portions that serve different purposes, such as i) barcoding, ii) priming, or iii) hybridization.
[0034] The present invention also relates to a method for attaching an oligonucleotide to a biomolecule of a cell, the method comprising: a) providing a microfluidic system according to the present invention; b) encapsulating a first cell in a first droplet; c) capturing the cell droplet in the reservoir; d) fusing a second droplet containing a lysis composition with the first droplet, thereby allowing the oligonucleotides on the solid support to attach to nucleic acids within the cells.
[0035] Strictly speaking, the oligonucleotide is not attached to the cell surface. It attaches to nucleic acids and / or biomolecules within the cell, drawing the cell into the proximity of the oligonucleotide. As used herein, the phrase "attaching an oligonucleotide to a biomolecule within a cell" refers to the process of "binding" or "hybridizing" an oligonucleotide to a selected target biomolecule within the cell. As used herein, the term "biomolecule" refers to any oligonucleotide, single-stranded or double-stranded DNA or RNA. These oligonucleotides then bind to the biomolecule, preferably nucleic acid, within the cell. The nucleic acid may be selected from DNA, RNA, tRNA, mRNA, genomic DNA, ribosomal RNA, chromatin, etc. The cell may or may not be dissolved / lysed during the binding process. In a preferred embodiment in which the oligonucleotide binds to nucleic acids from the cell, the cell is lysed, and the bound nucleic acid is then further analyzed.
[0036] As used herein, the term "droplet" generally refers to a measure of volume. In the context of the present invention, the term "droplet" refers to an isolated portion of a first fluid surrounded by a second fluid. The term "droplet" used in the context of the process of the present invention includes a first type of droplet, such as a single cell, a reagent or fused droplet, or a droplet containing a plurality of the above droplets, a second type of droplet, a third type of droplet, and a fourth type of droplet.
[0037] A "droplet" can have an average volume of less than 5 nL, e.g., less than 4 nL, less than 3 nL, preferably less than 3 nL. In some embodiments, the average volume is less than 3 nL, less than 2.5 nL, less than 2 nL, less than 1.5 nL, less than 1 nL, or less than 0.5 nL (e.g., 0.1 nL to 3 nL, 0.5 nL to 3 nL, 1 nL to 3 nL), typically 1 pL, 10 pL, 20 pL, 30 pL, 50 pL, 0.1 nL, 0.5 nL, 1 nL, 1.2 nL, 1.4 nL, 1.6 nL, 1.8 nL, 2.0 nL, 2.2 nL, 2.4 nL, 2.6 nL, 2.8 nL, or 3 nL.
[0038] Thus, the "fused droplets" may have an average volume of less than 10 nL. In some embodiments, the average volume is less than 9 nL, less than 8 nL, less than 7 nL, less than 6 nL, less than 5 nL, less than 4 nL, less than 3 nL, less than 2 nL, less than 1 nL, or less than 0.5 nL, e.g., 0.1 nL to 10 nL, 0.1 nL to 8 nL, 0.1 nL to 6 nL, or 0.1 nL to 5 nL (e.g., 0.1 nL to 3 nL, 0.5 nL to 5 nL, 0.5 nL to 3 nL, or 1 nL to 3 nL), typically 0.1 nL, 0.5 nL, 1 nL, 1.2 nL, 1.4 nL, 1.6 nL, 1.8 nL, 2.0 nL, 2.2 nL, 2.4 nL, 2.6 nL, 2.8 nL, 3 nL, 4 nL, or 5 nL (e.g., 11 pL to 8000 pL).
[0039] After fusion of the first droplet and the second droplet has occurred, a reaction step selected from the group including cell-cell interaction, exposure to one or more substances, exposure to one or more dyes or one or more antibodies, cell lysis, nucleic acid ligation, nucleic acid amplification, nucleic acid hybridization, nucleic acid sequencing, and / or a reporter or viability assay is preferably performed.
[0040] This is the essence of the present invention. Once a single cell is placed in the trap, it can be analyzed. The analysis is aided by (1) phenotypic analysis of the cell(s) using a microscopic readout, and (2) a spatial barcode of oligonucleotides that can be bound to a solid support and attached to the nucleic acids of the single cell. In the context of the present invention, the term "spatial barcode" refers to the specific location of the barcode on the surface of the microfluidic chip or slide.
[0041] Preferably and additionally, the phenotype of one or more cells in one or more reservoirs is analyzed; a. Before the droplets fuse, b. After the droplets fuse, c. before the reaction according to claim 4, or d. The reaction according to claim 4 is followed by said phenotypic analysis.
[0042] Preferably, the oligonucleotide barcode attached to the solid support is used to identify a specific cell in a specific reservoir. The oligonucleotides can also be used in reactions such as PCR. In this case, the amplification product contains the barcode and sequence from a single cell. The phenotype of the cell can then be linked to the barcode, thereby linking its location on the solid support.
[0043] Ideally, the analysis of the phenotype comprises at least one method selected from the group of fluorescence imaging, bright field microscopy, fluorescence microscopy, confocal microscopy, time lapse analysis, sequencing, qPCR, isothermal amplification, and, for example, RTqPCR.
[0044] The present invention further relates to a method for determining the phenotype and / or genotype of a single cell, the method comprising: a) providing a microfluidic system comprising at least one microfluidic channel and at least a collector system comprising a plurality of reservoirs; b) separately encapsulating at least one cell of the plurality of cells of the first type into a droplet of the first type; Optionally, co-encapsulating a second type cell from the plurality of second type cells into each of the first type droplets; c) flowing a plurality of droplets of a first type into a microfluidic channel of the microfluidic device, capturing droplets of the first type in each reservoir of the microfluidic device, and optionally analyzing phenotypes within the droplets contained within the reservoirs; d) flowing a plurality of droplets of a second type into the microfluidic channel and capturing a second droplet of the second type in each reservoir; e) fusing the first type of droplets with the second type of droplets in the reservoir; f) carrying out at least one reaction within the fused droplets obtained in e) and determining a readout of the reaction.
[0045] The microfluidic method disclosed herein for assigning genotypes to a given phenotype of interest offers several advantages over methods known in the art. One advantage of the method according to the present invention is that it allows for interaction, recognition, labeling, staining, imaging, and / or microscopy-based phenotypic assessment (including, but not limited to, functional readouts for agonist and / or antagonist assays), followed by genotypic assays (including measurement of internal messenger molecules), while preserving the precise phenotype / genotype relationship of each individual cell. A further advantage of the method is that it provides increased reliability by using a two-stage phenotypic measurement. Finally, the method is characterized by its great versatility, as it can be adapted to perform various functional assays by adding a second phenotypic droplet to the first phenotypic droplet.
[0046] The aforementioned advantages are disclosed below in the aspects and embodiments characterizing the present invention, which are provided in the Examples and Figures section.
[0047] According to one aspect of the present invention, a microfluidic method for assigning a genotype to a phenotype of interest in at least one droplet is provided, the method comprising encapsulating at least one cell of a first type of a plurality of cells within a plurality of droplets of the first type, each droplet of the first type containing a single cell or no cells. Optionally, a second type of cell may be co-encapsulated with the first type of cells within the first type of droplet. The method further comprises injecting and / or flowing the first type of droplets containing the first type of single cell and, optionally, additionally, the second type of single cell into a channel of a microfluidic device. The microfluidic device further comprises at least one collector system including multiple reservoirs. The first type of droplets may then be separately captured within such reservoirs. Optionally, the first type of droplets may be analyzed within the reservoirs to determine the phenotype of the first type of cells or the first and second types of cells, using, but not limited to, imaging or microscopy. Further methods for determining phenotypes by the methods of the present invention are described herein.
[0048] Subsequently, a second type of droplet containing reagents for carrying out one or more reactions is injected and / or flowed into the channels of the microfluidic device, such that the second type of droplet can be separately trapped within each of the reservoirs of the microfluidic device. Thus, each reservoir of the microfluidic device contains one droplet of the first type and one droplet of the second type. The first type of droplet can be fused or merged with the second type of droplet according to methods known in the art. After the droplets merge, one or more reactions can be initiated or occur, resulting in one or more detectable readouts or signals. Such readouts can be genotyping reactions, phenotyping reactions, or a combination of both. Thus, in one embodiment of the present invention, the second droplet contains reagents necessary for genotyping and / or phenotyping reactions.
[0049] Reservoirs of a microfluidic device can contain a plurality of oligonucleotides attached to the bottom and to a solid support. Such oligonucleotides can be classified into at least a first group, with each group spatially separated from other groups contained in other reservoirs of the device. Groups of oligonucleotides contained within the same reservoir can contain the same nucleic acid sequence of a first type, which can be a barcode sequence. Different reservoirs of a microfluidic device can contain the same or different barcode sequences. In one embodiment, each reservoir contains oligonucleotides with a barcode unique to that reservoir, allowing identification of oligonucleotides and / or nucleic acids attached to the oligonucleotides contained in or located within the same particular reservoir. Thus, the method of the present invention facilitates association of a particular reservoir with a particular barcode, and therefore with a particular phenotype of cells detected within that reservoir. Thus, when the genotype of cells captured in a particular reservoir is determined, the detected barcode sequence can be associated with the phenotype detected in that particular reservoir.
[0050] Those skilled in the art will be familiar with techniques for preparing microfluidic droplets. Techniques for encapsulating cells in microfluidic droplets are described, for example, in Mazutis, et al. 2013, Nat. Protocol 8:870-891. In one example, droplets are prepared in a separate microfluidic device before injection.
[0051] To carry out the method according to one aspect of the present invention, the microfluidic chip further comprises at least one collector system including a plurality of reservoirs, traps, or cavities. In the context of the present invention, the terms "reservoir," "trap," and "cavity" may be used interchangeably herein. In the context of the present invention, at least one droplet moves into one of the plurality of reservoirs by buoyancy, hydrodynamic, or physical forces. Preferably, the droplet collection step is carried out by buoyancy.
[0052] Further features of a microfluidic chip for carrying out a method according to an aspect of the present invention are provided later in this section.
[0053] The methods disclosed herein involve flowing droplets containing single cells of a first type and, optionally, single cells of a second and / or third type. Cell types are classifications used to distinguish cells based on morphological or phenotypic characteristics. As used herein, the term "flowing" refers to multiple droplets flowing through a microfluidic chip containing single cells. The cells may be of a first type, a second type, or a third type depending on their cell type, specific genetic or gene expression differences, their origin, or specific cellular function.
[0054] In the methods disclosed herein, the first type of droplets can include a first type of encapsulated cells, or a first and second type of co-encapsulated cells.
[0055] In a further embodiment, the droplets do not contain cells, but contain biomolecules derived from cells or fractions thereof.
[0056] The second type of droplets may include reagents for performing, inducing, enabling, or supporting a reaction or detectable event in the fused droplets that may be obtained by fusing the first type of droplets with the second type of droplets.
[0057] In the context of the present invention, the first type of cell may be a bacterial cell (e.g., E. coli and B. subtilis). It may also be a eukaryotic cell, such as, but not limited to, an epithelial cell, an immune cell (e.g., lymphocyte, neutrophil, and monocyte / macrophage), a hematopoietic cell, a bone marrow cell, an osteoblast, a cardiomyocyte, a hepatocyte, and a neuron, or a yeast (e.g., Saccharomyces and Pichia). It may also be an insect cell. It may also be a eukaryotic or prokaryotic cell, or a virus, or a pseudoparticle (e.g., a small molecule aggregate such as a DNA-forming particle, a DNA complex, or a DNA aggregate). There is no limitation thereto. Preferred cells include immune cells such as B cells, T cells, NK cells, NKT cells, macrophages, or dendritic cells.
[0058] In the context of the present invention, the phenotype of interest can be the presence of surface markers, changes in the composition of surface markers, activating or blocking activity, intracellular modifications, production of molecules such as metabolites, peptides, proteins, etc., cell behavior such as cell viability, cell interactions, cell replacement, etc.
[0059] In the context of the present invention, the genotype of interest can be transcripts mRNA, tRNA, siRNA, miRNA, piRNA, DNA such as genomic DNA, mitochondrial DNA, epigenomics such as modified DNA, chromatin structure, modified RNA, or the structural organization of these molecules.
[0060] In another embodiment, the first type of cell can be a reporter cell.In contrast, the second type of cell can be a secretory cell, preferably an antibody-secreting cell, and the antibody is directed against the membrane target presented by the reporter cell.Therefore, in the context of the present invention, the first or second type of cell can have a first phenotype.Similarly, the third type of cell can have a second phenotype.
[0061] According to another embodiment of one aspect of the present invention, the first type of cell can be an antibody-secreting cell and the second type of cell can be a reporter cell. As used herein, the term "reporter cell" refers to a cell that contains a reporter gene, a protein or lipid, or a chemical compound that ultimately refers to the functional effect of said agent acting on the reporter system.
[0062] According to another embodiment of one aspect of the present invention, the first type of cell can be a T cell and the second type of cell can be an antibody-presenting cell.
[0063] As used herein, the term "reporter cell" refers to a cell that contains a reporter gene, protein, lipid, or chemical compound that, when expressed, produces a reporter signal that is readily measurable, for example, by biological assay, immunoassay, radioimmunoassay, or by colorimetric, fluorescent, or chemiluminescent methods.
[0064] According to one embodiment of one aspect of the present invention, a single cell containing a cell droplet or containing a co-encapsulated cell droplet has a volume in the range of 10 pL to 10 nL.
[0065] In one embodiment of the method according to the invention, each cell of a first type contained in a droplet can be distinguished from another cell of a second type contained in the droplet by using a labeling system such as calcein AM for secretory cells and CellTracker Red for reporter cells. Further selection means can be provided by using secondary fluorescently labeled detection reagents, AlexaFluor 647 labels, Fc-specific anti-IgG F(ab')2 (red fluorescence), or indirect detection (e.g., by streptavidin, e.g., reagents conjugated to biotin) to visualize binding of immunoglobulins to targets on the reporter cells.
[0066] In one embodiment of the present invention, complex analyses of cell-cell interactions, e.g., antigen-presenting cells co-encapsulated with T cells or plasmablasts secreting antibodies against membrane-presented targets on the cells, can be performed in a high-throughput manner.
[0067] Importantly, cellular assays are performed in droplets to measure functional responses induced by compounds, including, but not limited to, calcium flux, cyclic AMP, beta-arrestin recruitment, internalization, cytokine secretion, chemokine secretion, receptor dimerization, actin polymerization, cell division, cell cycle block or phosphorylation, MAP kinase activation, apoptosis, necrosis, granulation, bimultimerization assays, and overexpression and presentation of specific molecules on the surface and / or inside the cells.
[0068] Secretory cells and reporter cells can be co-encapsulated, and the number of co-encapsulated cells can be estimated using a Poisson distribution. In the context of the present invention, the co-encapsulation process is carried out by increasing the lambda value of the Poisson distribution of reporter cells to greater than 0.5 to achieve a co-encapsulation rate of more than 50% of secretory cells and reporter cells within the droplet. Alternatively, the same results or better performance can be achieved using specially designed devices.
[0069] In the context of the present invention, the encapsulation or co-encapsulation of the first type of cells, or the first and second types of cells, in the first type of droplets can be performed on the same chip where the analysis is performed, off-chip, or in a separate chip or microfluidic device. Off-chip can refer to a separate area outside the microfluidic chip. As a result, in one embodiment, multiple droplets can be stored off-chip, for example, in a test tube, and manipulated or analyzed by re-injecting the multiple droplets into the microfluidic chip.
[0070] Methods according to the invention may include at least one incubation step, which may be timed to allow for the occurrence of a first or second detectable event or response.
[0071] As used herein, the terms "detectable event," "detectable response," or "response" refer to any chemical-mechanical-physical event or response that can be observed and / or detected. Depending on the phenotypic assay, any suitable assay method, which may be qualitative and / or quantitative, can be used to assay at least one single cell for a selected parameter. Suitable detection methods may include spectroscopic methods, electrical methods, hydrodynamic methods, imaging methods, microscopic methods, reporter assays, methods for detecting luminescence or fluorescence, and / or biological methods. The terms "detectable event," "detectable response," "response," or "assay" may be used interchangeably herein.
[0072] The reaction or chemical-mechanical-physical event can be staining or lack of staining of cells with a dye or any other reagent known to one skilled in the art, an amplification reaction, a real-time or qPCR reaction, a reverse transcription reaction, a ligation, a viability or toxicity assay, a sequencing reaction, detection of an antibody and / or binding to an antigen, a fluorescent reaction or reporter assay, a death assay, secretion of a molecule, cell-cell interaction, exchange of substances from cell to cell, a change in morphological reaction, measurement of viscosity and / or aggregation, synthesis of a molecular product, emission of fluorescence, etc.
[0073] As reported above, one advantage of the method disclosed herein is its versatility. Thus, an additional stream of a third type of droplets containing a reagent for a second reaction or reaction step can also be injected into the microfluidic chip and contacted with at least one droplet containing at least one cell and collected in a cavity or reservoir of the collector system to generate at least one fused droplet containing a first phenotype and a second phenotype.
[0074] According to another embodiment of one aspect of the present invention, the third type of single-cell droplets has a volume in the range of 10 pL to 10 nL, preferably 50 pL to 1 nL.
[0075] According to one embodiment of one aspect of the present invention, the fused droplets have a volume in the range of 20 pL to 10 nL, preferably 50 pL to 1 nL.
[0076] According to another embodiment of this aspect of the invention, the second or third type of single-cell droplets may include one or more dyes for staining cells, reagents for sequencing reactions including fluorescent substrates, reverse transcription reagents, lysis buffer, PCR or qPCR reagents, reagents for reporter and / or viability assays, and / or reagents for detecting antibody binding, etc.
[0077] Sequencing and / or reverse transcription reactions can analyze genes representing the entire genome or transcriptome of lysed cells, or panels of RNA or DNA used as indicators of effector function, or random sets of RNA or DNA, or epigenetic information (proteins, DNA, RNA and structural arrangements), combinations of RNA and DNA, proteins from the cell or from the compartment.
[0078] The first type of droplets containing cells having a first phenotype and, optionally, co-encapsulated cells having a second phenotype collected or captured in a reservoir may optionally be imaged and then contacted by a stream of a second type of droplets containing reagents for performing a genotyping reaction, thereby facilitating the second type of droplets to be captured in the reservoir and subsequently merge with the first type of droplets. After the first type of droplets and the second type of droplets merge, a genotyping reaction may occur.
[0079] According to one embodiment of the invention, the second type of droplets can include reagents for at least a first reaction. In another embodiment, the second type of droplets can include reagents for the first and second reactions. In another embodiment, the second type of droplets can include reagents for a first, second, and at least a third reaction. The first, second, and any further reactions can be carried out in sequential order or in parallel within the fused droplets.
[0080] According to one embodiment of the present invention, a third type of droplets can contain at least reagents for a second reaction. The third type of droplets can be flowed through a microfluidic channel to a reservoir containing fused droplets obtained by fusing a first type of droplet with a second type of droplet, both of which are captured in the same reservoir. The third type of droplets can then be captured in the reservoir containing the fused droplets after the first and / or second reactions have occurred in the fused droplets. The third type of droplets can be fused with the "fused droplets" in the reservoir, and the second and / or third reactions can occur.
[0081] According to another embodiment of the present invention, the second type of droplets can contain reagents for chromatin digestion (including, but not limited to, MNase, DNAse, and tagmentase), and the third type of droplets can contain reagents for sequencing reactions, including ligase (or transposase), and buffer reagents, such that when the droplets contact a surface or solid support on which barcoded DNA is spotted, they can capture chromatin fragments of interest. These chromatin fragments can represent mono-, di-, tri-, or arrays of nucleosomes. They can represent digested DNA ranging in length from 10 bp to several Mb.
[0082] In another embodiment of the invention, the phenotype of interest may include production of antibodies with effector functions (binding, cross-reactive, specific, agonist, antagonist, allosteric regulator), including activation / inhibition of downstream signaling cascades from reporter cells; production of cytokines and / or granules (e.g., perforin, granzymes) and / or induction of expression of cell surface markers (e.g., CD69, CD137, CD40L, OX40, PD1) induced by TCR-MHC peptide complexes from T cells and APCs, respectively, which may include activation / inhibition of cellular metabolism (e.g., interleukin, cytokine, chemokine production, apoptosis or necrosis).
[0083] Reagents for performing genotyping reactions are known to those skilled in the art. Generally, the reagents may include, but are not limited to, fluorescent substrates, reverse transcription reagents, and lysis buffers, as well as any source of barcoded libraries, oligonucleotides, primers, barcodes, polymerases, ligases, transposases, and amplification reagents. As used herein, the term "genotyping" refers to the process of determining the nucleic acid sequence of a single cell using biochemical methods and / or the process of determining the structural characteristics of a cell genome / transcriptome.
[0084] Methods for fusing droplets are also known in the art, as described, for example, by Mazutis (Mazutis et al. 2012, Lab Chip 12, 1800-1806). The methods may involve adding a surfactant such as perfluorooctanol, providing a special microfluidic channel geometry, and / or applying an electric field or acoustic waves. In the context of the present invention, the fusing step is preferably carried out by applying an electric field. The fusing step is carried out in a predetermined area of the chip, allowing droplets in contact with the predetermined area to selectively fuse. The terms "fusing" and "fusing" may be used interchangeably herein.
[0085] In the context of the present invention, droplet fusion is achieved by applying an electric field having a frequency ranging from 2 kHz to 40 kHz and a voltage ranging from 500 V to 20,000 V for a time necessary to achieve a fusion efficiency of 80% to 100% between the two droplets involved in the event. Higher or lower frequencies and voltages may be applied as well, depending, for example, on the surface tension between the droplets, the concentration of surfactant, the volume of the droplets to be fused, etc.
[0086] According to other embodiments, the fusion is performed by, but not limited to, laser / light-induced, chemical, and acoustic fusion. According to one embodiment of one aspect of the present invention, the fusion step (i) is performed by an electrical configuration comprising a plurality of electrodes. In the context of the present invention, the plurality of electrodes are preferably fabricated on a glass array chip in a row and column format from indium tin oxide with a thickness of 300-600 angstroms. The electrodes can be structured by photolithography and sputtering indium tin oxide onto the glass chip. According to a further embodiment of this aspect of the present invention, the fusion step (i) is performed by an electrical configuration comprising a plurality of electrodes arranged in a row format above the microfluidic system and in a column format below it, or vice versa. An exemplary device for generating a focused electric field may be an anti-static gun.
[0087] We have found that droplets can be selectively fused by activating defined combinations of row and column indices, a procedure that is particularly advantageous because it provides an additional selection step in the screening process.
[0088] Alternatively, selective fusion of droplets can be used to release and / or make accessible to the first droplet the contents of a second or third droplet, potentially having a phenotype of interest and for which genotypic information is desired, further increasing the probability of obtaining true hits with desirable properties for secondary screening, for example, by selection of functional antibodies for further processing, such as subsequent sequencing and cloning, expression, and validation.
[0089] Following droplet fusion, one or more reactions of various types may be initiated and / or performed within the droplets, including, but not limited to, fluorescent staining of cells or cell components, sequencing or sequence capture reactions, amplification or ligation reactions, reporter assays, etc.
[0090] The detection of the first and / or second detectable event according to the present invention may involve the use of stains, dyes, labels, enzymes, substrates, cofactors and / or specific binding partners (SBPs). Depending on the phenotype of interest to be detected, those skilled in the art will know which method may be suitable. In the context of the present invention, the detection of the second detectable event is preferably carried out by using a spectroscopic method that, for each reservoir, results in mapping of the phenotype of interest contained in at least one fused droplet located in at least one reservoir.
[0091] According to another embodiment of one aspect of the present invention, the fusing step (i) is controlled by electrowetting.
[0092] As used herein, the term "electrowetting" refers to the use of an electric field to alter the wettability of droplets relative to a chip surface in order to control the movement and / or shape of said droplets. In the context of the present invention, electrowetting can be used to control the spreading of fused droplets on a chip surface without the need to utilize pumps, valves, channels, and / or other similar fluid handling mechanisms. Examples of electrowetting can be found, for example, in Pollack et al., 2000, Applied Physics Letters, 77, 1725 (describes a microactuator for rapid manipulation of individual microdroplets, transporting droplets (0.7-1.0 μl) of 100 mM KCl solution between adjacent electrodes at voltages of 40-80 V, achieving electrode switching rates of up to 20 Hz and repetitive droplet transport at an average speed of 30 mm / s); Fouillet et al., Proceedings of ASME ICNMM2006 4 International Conference on Nanochannels, Microchannels and Minichannels, June 19-21, 2006, Limerick, Ireland; Paper No. ICNMM2006-96020 (describes the use of electrowetting on dielectric (EWOD) for real-time PCR (polymerase chain reaction) within 64 nL microfluidic droplets).
[0093] Controlling the behavior of fused droplets through electrowetting is important because it can enable the incorporation of barcode nucleotide sequences spotted on the surface of a microfluidic chip into the droplets. The droplets come into hydrophilic contact with the slide containing the spotted DNA. The contents of the droplets then come into contact with the spotted DNA and can trigger a reaction.
[0094] In some embodiments, the fused droplets contain a specific enzyme capable of cleaving a specific DNA site within the spotted DNA, which is used to release the barcoded DNA within the fused droplets.
[0095] In one aspect, the present invention provides a microfluidic chip or device comprising two inlets and one outlet, 2,000 spatial barcodes (up to 200k) and corresponding reservoirs (optionally including a droplet maker design and nozzle integrated into the device).
[0096] In the context of the present invention, a microfluidic chip or device may include different inlets and outlets, and different combinations of inlets and outlets. Thus, a microfluidic chip or device may comprise at least one inlet and one outlet.
[0097] As used herein, the term "corresponding" refers to the determined location on the chip surface of the spot containing the barcode. In the context of the present invention, said location is preferably defined on an area of the chip surface opposite the reservoir.
[0098] According to another embodiment, each spot contains 10 5 Contains oligonucleotide densities in excess of .
[0099] According to another embodiment, each spot has a diameter in the range of 10 to 200 μm, preferably in the range of 50 to 150 μm, more preferably in the range of 60 to 80 μm.
[0100] As used herein, the term "spot" refers to a defined area on the first and / or second surface of a microfluidic chip, where a second droplet contacts a first droplet and a coalescence / fusion event is triggered by controlling a physical or chemical parameter of the fluid, e.g., temperature or ionic force, or by activating a plurality of electrodes disposed on the first and / or second surface of the microfluidic chip.
[0101] In one embodiment, at least one droplet of a first type is fused with at least one droplet of a second type using an electric field, and in another embodiment, the fusion step results in a fusion efficiency between the first type of droplet and the second type of droplet of 80% to 100%, preferably 90% to 100%.
[0102] The microfluidic chips disclosed herein offer the advantage of compartmentalizing reactions in distinct regions of the microfluidic chip through the coalescence of selected microfluidic droplets. Thus, the microfluidic chips according to the present invention provide improved control of biological assays that can occur simultaneously in different regions of the chip.
[0103] Polydimethylsiloxane (PDMS) is a two-part polymer containing a base elastomer and a curing agent. The standard mixing ratio for PDMS is 10 parts base elastomer and 1 part curing agent. In one embodiment, the first polymer solution contains a 5:1 ratio of elastomer to curing agent. The inventors have found that this ratio provides desirable mechanical properties for the mold.
[0104] Once the droplets have been fused using the electrical configuration according to the present invention, the oligonucleotides can be cleaved from the chip surface by any suitable method. Preferably, the oligonucleotides are cleaved by photocleavage.
[0105] In one embodiment, the barcode sequence may be unique to one or more reservoirs of the microfluidic device, thereby facilitating the identification of single cells captured and analyzed within each reservoir. By customizing and specifically selecting barcodes spotted at specific locations on the solid support of the microfluidic device, the method facilitates the identification of specific phenotypes detected at those specific locations and their association with genetic information obtained by the analytical methods described herein. Thus, the phenotype of a single cell captured within a specific reservoir of the microfluidic device can be associated with the genotype of that single cell.
[0106] The term "nucleic acid" as used herein generally refers to at least one molecule or strand of DNA, RNA, miRNA, or a derivative or mimic thereof, containing at least one nucleic acid base, such as a naturally occurring purine or pyrimidine base found in DNA or RNA. The term "nucleic acid" encompasses the term "oligonucleotide." The nucleic acid herein may also be attached to one or more proteins.
[0107] As used herein, "RNA" refers to functional RNA such as, but not limited to, mRNA, tRNA, rRNA, catalytic RNA, siRNA, miRNA, piRNA, ncRNA, lncRNA, and antisense RNA. In a preferred embodiment, RNA refers to mRNA.
[0108] The term "oligonucleotide" refers to at least one molecule having a length of about 3 to about 500 nucleobases. For example, an oligonucleotide can have a length of at least 3 nucleobases, at least 10 nucleobases, at least 30 nucleobases, at least 50 nucleobases, or at least 100 nucleobases. In some cases, an oligonucleotide can have a length of 100 nucleobases or less, 50 nucleobases or less, etc. Any combination of these is also possible; for example, the length of an oligonucleotide can be between 3 and 300 nucleobases, preferably between 3 and 200 nucleobases, and more preferably between 3 and 100 nucleobases.
[0109] When carried out in droplets, the method according to the invention further comprises the step of recovering or collecting the fused droplets at the outlet of the channel after the reaction step carried out in the reservoir.
[0110] According to another aspect, disclosed herein is a method for manufacturing a microfluidic system according to the present invention, the method comprising: a. Generating a mask containing the design of a fluidic device; b. Photoactivation of a resin, preferably SU8, for convex replication of the concave design printed on the mask; c. Remove excess resin using an appropriate solvent for non-photoactivated resins. d. Polymer molding of microfluidic systems on resin, preferably SU8 molds (PDMS); e. Polymer reaction for solidification, usually PDMS polymerization, f. demolding the molded and solidified polymer; g. Hot-embossed COC on solidified polymer (PDMS), h. De-moulding the COC; i. Assembling the oligo-containing array and the COC fluidic portion, preferably using heat sealing, double-sided tape or any other sealing technique. [Example]
[0111] Cell sequences are captured from two model cell lines, Jurkat (T cell type) and Ramos (B cell type).
[0112] To encapsulate and sort Jurkat and Ramos cells, reverse transcription (RT) was performed in a microfluidic chamber and pre-spotted slide assembly provided by Arbor bioscience, as described in patent application WO2018167218A1.
[0113] protocol 1. Cell Preparation - Jurkat and Ramos cells are collected and washed twice with 1 mL of 1x PBS, spin washed at 300g for 6 minutes, and then the cells are resuspended in 500 μL of 1x PBS. - Jurkat cells are labeled with CellTrace FarRed (0.5 μL). - Ramos cells are labeled with CellTrace Far Red+Yellow (0.25 μL+0.25 μL). - Incubate for 30 minutes at room temperature, protected from light. - Add RPMI medium containing 10% HI-FBS, rotate and wash twice with 1x PBS. - Jurkat cells are resuspended in 30 μL of PBS and Ramos cells are resuspended in 200 μL of PBS. - Count cells: Jurkat: 4 mLn / mL Ramos: 70 mLn / mL - Preparation of cell mixture (λ=1): [Table 1] - Encapsulate and sort cells by parameters using an integrated droplet generator and sorter. Aqueous phase: 50 μL / hour, oil 1: 500 μL / hour, oil 2 (spacer): 600 μL / hour. Sorting parameters: Sorting based on red channel, 6000Hz amplitude, 300V, 200μs delay, 2ms sorting time. - Once approximately 30,000 droplets have been sorted, the collection outlet is connected to the chamber and the waste channel is blocked with Eppendorf tubing to stop the aqueous phase. The chamber is inverted and the rising droplets in the tubing are collected until they reach the interior of the chamber, after which the chamber is placed on a microscope stage to observe the filling. - Reduce the oil flow rate to approximately 300 μL / hour. - Once most of the droplet traps are occupied, flush out the remaining droplets and clamp the outlet, move the chamber to the imaging station and image in bright field, TRITC and Cy5 channels: Jurkat cells - red only, Ramos - yellow (low in red, but still detectable in red).
[0114] 2 RT mix: [Table 2]
[0115] - Encapsulation with a water and oil flow rate of 200 μL / h + 600 μL / h until the droplet reaches the outlet end. - Connect the chip outlet to the fluid chamber (chip assembled according to the present invention) and increase the oil flow rate to 1500 μL / h (stop the water flow) until the droplet reaches the center of the chip. - Reduce the oil flow rate to 200 μL / h to wash away unwanted droplets. Once there are no excess droplets in the chamber, fuse the droplets with an anti-static gun, triggered for 1 min, and then fuse the droplets to the surface using 10% PFO at 200 µL / h. - Before fusion: - Clamp the tube with a 1.5 mL Eppendorf tube and transfer to a thermal incubator (with plate adapter). - Run the incubation program: 10 min at 37°C, 1.5 h at 52°C, 1 h at 4°C. - Elute the cDNA from the chamber by injecting AMPure 1.0x in 100 μL TE buffer, 100 μL 10% PFO and 100 μL TE buffer, then 20 μL water.
[0116] The above steps are also illustrated in FIG.
Claims
1. 1. A microfluidic system, comprising: a. a fluid chamber comprising a plurality of reservoirs for capturing at least one microdroplet; b. a solid support comprising a plurality of groups of oligonucleotides, wherein: each oligonucleotide of the plurality of sets comprises a first type, a second type and / or a further type of nucleic acid sequence; the first type of nucleic acid sequence is a barcode sequence; Oligonucleotides containing the same barcode sequence are grouped into groups of oligonucleotides on the solid support; the plurality of groups of oligonucleotides are spatially separated on the solid support; each group of the plurality of groups of oligonucleotides on the solid support is associated with a separate reservoir of the fluid chamber; The system, wherein each reservoir of the plurality of reservoirs is associated with a unique barcode sequence.
2. The system described in claim 1, wherein the barcode sequence of each group of oligonucleotides is known and the location on the solid support is known.
3. 3. The system of claim 1, wherein at least a portion of the system is optically transparent to allow optical analysis of microdroplets trapped within reservoirs of the fluid chambers.
4. Each group of oligonucleotides is 10 4 ~10 11 The system according to claims 1 to 3, comprising between 1 and 3 oligonucleotide molecules.
5. The system of claims 1 to 4, wherein each reservoir of the plurality of reservoirs is a cavity having a dimension between 10 μm and 200 μm.
6. The system according to claims 1 to 5, wherein the spatial separation of each of the oligonucleotide groups is at least 100 nm and not more than 1,000 µm.
7. The system of claims 1 to 6, wherein the oligonucleotides in at least a first group of the plurality of groups of oligonucleotides comprise a second type of nucleic acid sequence that is a universal sequence and a further type of nucleic acid sequence that is a hybridizing sequence.
8. 1. A method for attaching an oligonucleotide to a cell, a cellular biomolecule, or a cellular nucleic acid, said method comprising: a) providing a microfluidic system according to any one of claims 1 to 7; b) encapsulating a first cell in a first droplet; c) capturing the first droplet in one reservoir of the plurality of reservoirs; d) fusing a second droplet comprising a lysis composition with the first droplet, thereby allowing the oligonucleotides on the solid support to attach to the first cell, a biomolecule of the first cell, or a nucleic acid of the first cell.
9. 9. The method of claim 8, wherein after the fusion of the first droplet and the second droplet occurs, a reaction step is performed selected from the group comprising cell-cell interaction, exposure to one or more substances, exposure to one or more dyes or one or more antibodies, cell lysis, nucleic acid ligation, nucleic acid amplification, nucleic acid hybridization, nucleic acid sequencing, and / or a reporter or viability assay.
10. Furthermore, the phenotype of at least the first cell is analyzed; a. before fusing the first and second droplets; b. After fusing the first and second droplets, c. before the reaction according to claim 9, or d. The method of claim 8 or 9, wherein the phenotypic analysis is performed after the reaction according to claim 9.
11. The method of claims 8 to 10, wherein a barcode sequence of one or more oligonucleotides attached to the solid support is used to identify the first cell in the reservoir.
12. The method according to claims 8 to 11, wherein the oligonucleotide attached to the solid support is used in the reaction step according to claim 9.
13. 11. The method of claim 10, wherein the analysis of the phenotype comprises at least one method selected from the group consisting of fluorescent imaging, bright field microscopy, fluorescent microscopy, confocal microscopy, sequencing, and qPCR.
14. A kit comprising a microfluidic system according to claims 1 to 7 and, optionally, instructions for carrying out the method according to claims 8 to 13.
15. A method for manufacturing a microfluidic system according to any one of claims 1 to 7, said method comprising the steps of: a. generating a mask including the design of the fluid chamber; b. generating a mold containing the design of the fluid chamber; c. providing a solid support comprising an array slide containing multiple groups of oligonucleotides spotted on its surface; d. placing the shaped surface containing the fluid chamber design against the array slide so that the reservoirs and oligonucleotide spots correspond to each other; e. Assembling the array slide and the molded surface, where heat sealing, double-sided tape or any other sealing technique may be used; The method, comprising the steps of:
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