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Single-cell barcoding and sequencing using droplet microfluidics
by
Klein, Allon M
, Savova, Virginia
, Zemmour, David
, Zilionis, Rapolas
, Mazutis, Linas
, Veres, Adrian
, Nainys, Juozas
in
38/39
/ 38/62
/ 38/91
/ 49/39
/ 49/62
/ 631/1647/2217/2018
/ 631/1647/514/1949
/ 631/61/350/877
/ Analytical Chemistry
/ Bar codes
/ Beads
/ Biological Techniques
/ Cell cycle
/ Computational Biology/Bioinformatics
/ Deoxyribonucleic acid
/ DNA
/ Droplets
/ Encapsulation
/ Equipment Design
/ Gene mapping
/ Gene sequencing
/ Genetic research
/ Genomic analysis
/ Heterogeneity
/ High-Throughput Nucleotide Sequencing - instrumentation
/ Hydrogels
/ Innovations
/ Lab-On-A-Chip Devices
/ Life Sciences
/ Methods
/ Microarrays
/ Microfluidics
/ Organic Chemistry
/ protocol
/ Reagents
/ Reverse transcription
/ Ribonucleic acid
/ RNA
/ RNA sequencing
/ Sequence Analysis, RNA - instrumentation
/ Single-Cell Analysis - instrumentation
/ Stem cells
/ Transcription (Genetics)
/ Transcriptomes
2017
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Single-cell barcoding and sequencing using droplet microfluidics
by
Klein, Allon M
, Savova, Virginia
, Zemmour, David
, Zilionis, Rapolas
, Mazutis, Linas
, Veres, Adrian
, Nainys, Juozas
in
38/39
/ 38/62
/ 38/91
/ 49/39
/ 49/62
/ 631/1647/2217/2018
/ 631/1647/514/1949
/ 631/61/350/877
/ Analytical Chemistry
/ Bar codes
/ Beads
/ Biological Techniques
/ Cell cycle
/ Computational Biology/Bioinformatics
/ Deoxyribonucleic acid
/ DNA
/ Droplets
/ Encapsulation
/ Equipment Design
/ Gene mapping
/ Gene sequencing
/ Genetic research
/ Genomic analysis
/ Heterogeneity
/ High-Throughput Nucleotide Sequencing - instrumentation
/ Hydrogels
/ Innovations
/ Lab-On-A-Chip Devices
/ Life Sciences
/ Methods
/ Microarrays
/ Microfluidics
/ Organic Chemistry
/ protocol
/ Reagents
/ Reverse transcription
/ Ribonucleic acid
/ RNA
/ RNA sequencing
/ Sequence Analysis, RNA - instrumentation
/ Single-Cell Analysis - instrumentation
/ Stem cells
/ Transcription (Genetics)
/ Transcriptomes
2017
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Single-cell barcoding and sequencing using droplet microfluidics
by
Klein, Allon M
, Savova, Virginia
, Zemmour, David
, Zilionis, Rapolas
, Mazutis, Linas
, Veres, Adrian
, Nainys, Juozas
in
38/39
/ 38/62
/ 38/91
/ 49/39
/ 49/62
/ 631/1647/2217/2018
/ 631/1647/514/1949
/ 631/61/350/877
/ Analytical Chemistry
/ Bar codes
/ Beads
/ Biological Techniques
/ Cell cycle
/ Computational Biology/Bioinformatics
/ Deoxyribonucleic acid
/ DNA
/ Droplets
/ Encapsulation
/ Equipment Design
/ Gene mapping
/ Gene sequencing
/ Genetic research
/ Genomic analysis
/ Heterogeneity
/ High-Throughput Nucleotide Sequencing - instrumentation
/ Hydrogels
/ Innovations
/ Lab-On-A-Chip Devices
/ Life Sciences
/ Methods
/ Microarrays
/ Microfluidics
/ Organic Chemistry
/ protocol
/ Reagents
/ Reverse transcription
/ Ribonucleic acid
/ RNA
/ RNA sequencing
/ Sequence Analysis, RNA - instrumentation
/ Single-Cell Analysis - instrumentation
/ Stem cells
/ Transcription (Genetics)
/ Transcriptomes
2017
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Single-cell barcoding and sequencing using droplet microfluidics
Journal Article
Single-cell barcoding and sequencing using droplet microfluidics
2017
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Overview
Zilionis
et al
. describe a protocol for the inDrops platform, which is a high-throughput droplet microfluidics system that allows for single-cell barcoding of over 15,000 cells in 1 h.
Single-cell RNA sequencing has recently emerged as a powerful tool for mapping cellular heterogeneity in diseased and healthy tissues, yet high-throughput methods are needed for capturing the unbiased diversity of cells. Droplet microfluidics is among the most promising candidates for capturing and processing thousands of individual cells for whole-transcriptome or genomic analysis in a massively parallel manner with minimal reagent use. We recently established a method called inDrops, which has the capability to index >15,000 cells in an hour. A suspension of cells is first encapsulated into nanoliter droplets with hydrogel beads (HBs) bearing barcoding DNA primers. Cells are then lysed and mRNA is barcoded (indexed) by a reverse transcription (RT) reaction. Here we provide details for (i) establishing an inDrops platform (1 d); (ii) performing hydrogel bead synthesis (4 d); (iii) encapsulating and barcoding cells (1 d); and (iv) RNA-seq library preparation (2 d). inDrops is a robust and scalable platform, and it is unique in its ability to capture and profile >75% of cells in even very small samples, on a scale of thousands or tens of thousands of cells.
Publisher
Nature Publishing Group UK,Nature Publishing Group
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