4.8 Article

Liquid Nuclear Condensates Mechanically Sense and Restructure the Genome

期刊

CELL
卷 175, 期 6, 页码 1481-+

出版社

CELL PRESS
DOI: 10.1016/j.cell.2018.10.057

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资金

  1. Howard Hughes Medical Institute
  2. NIH 4D Nucleome Program [U01 DA040601]
  3. DARPA [HR0011-17-2-0010]
  4. Princeton Center for Complex Materials, an NSF [DMR 1420541]
  5. NSF CAREER award [1253035]
  6. NSF [PHY-1607612, DCE-1656466]
  7. Research Resettlement Fund for the new faculty of Seoul National University

向作者/读者索取更多资源

Phase transitions involving biomolecular liquids are a fundamental mechanism underlying intracellular organization. In the cell nucleus, liquid-liquid phase separation of intrinsically disordered proteins (IDPs) is implicated in assembly of the nucleolus, as well as transcriptional clusters, and other nuclear bodies. However, it remains unclear whether and how physical forces associated with nucleation, growth, and wetting of liquid condensates can directly restructure chromatin. Here, we use CasDrop, a novel CRISPR-Cas9-based optogenetic technology, to show that various IDPs phase separate into liquid condensates that mechanically exclude chromatin as they grow and preferentially form in low-density, largely euchromatic regions. A minimal physical model explains how this stiffness sensitivity arises from lower mechanical energy associated with deforming softer genomic regions. Targeted genomic loci can nonetheless be mechanically pulled together through surface tension-driven coalescence. Nuclear condensates may thus function as mechano-active chromatin filters, physically pulling in targeted genomic loci while pushing out non-targeted regions of the neighboring genome.

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