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DOI: 10.1016/j.cell.2015.05.002
¤ OpenAccess: Hybrid
This work has “Hybrid” OA status. This means it is free under an open license in a toll-access journal.

Highly Parallel Genome-wide Expression Profiling of Individual Cells Using Nanoliter Droplets

Evan Z. Macosko,Anindita Basu,Rahul Satija,James Nemesh,Karthik Shekhar,Melissa Goldman,Itay Tirosh,Allison R. Bialas,Nolan Kamitaki,Emily M. Martersteck,John J. Trombetta,David A. Weitz,Joshua R. Sanes,Alex K. Shalek,Aviv Regev,Steven A. McCarroll

Biology
Gene expression profiling
Computational biology
2015
<h2>Summary</h2> Cells, the basic units of biological structure and function, vary broadly in type and state. Single-cell genomics can characterize cell identity and function, but limitations of ease and scale have prevented its broad application. Here we describe Drop-seq, a strategy for quickly profiling thousands of individual cells by separating them into nanoliter-sized aqueous droplets, associating a different barcode with each cell's RNAs, and sequencing them all together. Drop-seq analyzes mRNA transcripts from thousands of individual cells simultaneously while remembering transcripts' cell of origin. We analyzed transcriptomes from 44,808 mouse retinal cells and identified 39 transcriptionally distinct cell populations, creating a molecular atlas of gene expression for known retinal cell classes and novel candidate cell subtypes. Drop-seq will accelerate biological discovery by enabling routine transcriptional profiling at single-cell resolution. <h3>Video Abstract</h3>
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    Highly Parallel Genome-wide Expression Profiling of Individual Cells Using Nanoliter Droplets” is a paper by Evan Z. Macosko Anindita Basu Rahul Satija James Nemesh Karthik Shekhar Melissa Goldman Itay Tirosh Allison R. Bialas Nolan Kamitaki Emily M. Martersteck John J. Trombetta David A. Weitz Joshua R. Sanes Alex K. Shalek Aviv Regev Steven A. McCarroll published in 2015. It has an Open Access status of “hybrid”. You can read and download a PDF Full Text of this paper here.