4.7 Article

Single cell biology-a Keystone Symposia report

期刊

ANNALS OF THE NEW YORK ACADEMY OF SCIENCES
卷 1506, 期 1, 页码 74-97

出版社

WILEY
DOI: 10.1111/nyas.14692

关键词

development; differentiation; lineage tracing; reprogramming; single cell sequencing; spatial transcriptomics

资金

  1. German Research Foundation (Deutsche Forschungsgemeinschaft, DFG) [BA 6205/2-1]
  2. DFG Research Fellowship [RA 2889/1-1]
  3. National Science Foundation [2047611]
  4. Div Of Biological Infrastructure
  5. Direct For Biological Sciences [2047611] Funding Source: National Science Foundation

向作者/读者索取更多资源

Single cell biology has the potential to unravel critical biological processes and diseases. New technologies are revealing the molecular diversity of cells and how differences in cell state can lead to different cell fates. Computational approaches are needed to address challenges in processing and analyzing vast amounts of data in single cell technologies.
Single cell biology has the potential to elucidate many critical biological processes and diseases, from development and regeneration to cancer. Single cell analyses are uncovering the molecular diversity of cells, revealing a clearer picture of the variation among and between different cell types. New techniques are beginning to unravel how differences in cell state-transcriptional, epigenetic, and other characteristics-can lead to different cell fates among genetically identical cells, which underlies complex processes such as embryonic development, drug resistance, response to injury, and cellular reprogramming. Single cell technologies also pose significant challenges relating to processing and analyzing vast amounts of data collected. To realize the potential of single cell technologies, new computational approaches are needed. On March 17-19, 2021, experts in single cell biology met virtually for the Keystone eSymposium Single Cell Biology to discuss advances both in single cell applications and technologies.

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