4.5 Article

Liquid-like chromatin in the cell: What can we learn from imaging and computational modeling?

期刊

CURRENT OPINION IN STRUCTURAL BIOLOGY
卷 71, 期 -, 页码 123-135

出版社

CURRENT BIOLOGY LTD
DOI: 10.1016/j.sbi.2021.06.004

关键词

Nucleosome; Chromatin; Super-resolution imaging; 30-nm fiber; Multi-scale computational modeling; Liquid-liquid phase separation

资金

  1. JSPS [19K23735, 20J00572, 20H05936, 21H02453]
  2. Takeda Science Foundation
  3. Uehara Memorial Foundation
  4. European Research Council (ERC) under the European Union's Horizon 2020 research and innovation programme [803326]
  5. Engineering and Physical Sciences Research Council (EPSRC) [EP/R513180/1]
  6. Grants-in-Aid for Scientific Research [20H05936, 20J00572, 19K23735, 21H02453] Funding Source: KAKEN

向作者/读者索取更多资源

Chromatin in eukaryotic cells is a complex structure comprised of DNA, histones, and associated proteins, exhibiting dynamic liquid-like behavior and undergoing structural variations within the cell. Advanced imaging techniques have allowed for the observation of these characteristics, while computational modeling has provided insight into the molecular mechanisms behind this behavior, highlighting the importance of chromatin dynamics in living cells.
Chromatin in eukaryotic cells is a negatively charged long polymer consisting of DNA, histones, and various associated proteins. With its highly charged and heterogeneous nature, chromatin structure varies greatly depending on various factors (e.g. chemical modifications and protein enrichment) and the surrounding environment (e.g. cations): from a 10-nm fiber, a folded 30-nm fiber, to chromatin condensates/droplets. Recent advanced imaging has observed that chromatin exhibits a dynamic liquid-like behavior and undergoes structural variations within the cell. Current computational modeling has made it possible to reconstruct the liquid-like chromatin in the cell by dealing with a number of nucleosomes on multiscale levels and has become a powerful technique to inspect the molecular mechanisms giving rise to the observed behavior, which imaging methods cannot do on their own. Based on new findings from both imaging and modeling studies, we discuss the dynamic aspect of chromatin in living cells and its functional relevance.

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