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Eleven grand challenges in single-cell data science.

Published version
Peer-reviewed

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Authors

Lähnemann, David 
Köster, Johannes 
Szczurek, Ewa 
McCarthy, Davis J 
Hicks, Stephanie C 

Abstract

The recent boom in microfluidics and combinatorial indexing strategies, combined with low sequencing costs, has empowered single-cell sequencing technology. Thousands-or even millions-of cells analyzed in a single experiment amount to a data revolution in single-cell biology and pose unique data science problems. Here, we outline eleven challenges that will be central to bringing this emerging field of single-cell data science forward. For each challenge, we highlight motivating research questions, review prior work, and formulate open problems. This compendium is for established researchers, newcomers, and students alike, highlighting interesting and rewarding problems for the coming years.

Description

Keywords

Animals, Data Science, Genomics, Humans, RNA-Seq, Single-Cell Analysis

Journal Title

Genome Biol

Conference Name

Journal ISSN

1474-7596
1474-760X

Volume Title

21

Publisher

Springer Science and Business Media LLC