The condensation of HP1α/Swi6 imparts nuclear stiffness

Cell Rep. 2024 Jul 23;43(7):114373. doi: 10.1016/j.celrep.2024.114373. Epub 2024 Jun 20.

Abstract

Biomolecular condensates have emerged as major drivers of cellular organization. It remains largely unexplored, however, whether these condensates can impart mechanical function(s) to the cell. The heterochromatin protein HP1α (Swi6 in Schizosaccharomyces pombe) crosslinks histone H3K9 methylated nucleosomes and has been proposed to undergo condensation to drive the liquid-like clustering of heterochromatin domains. Here, we leverage the genetically tractable S. pombe model and a separation-of-function allele to elucidate a mechanical function imparted by Swi6 condensation. Using single-molecule imaging, force spectroscopy, and high-resolution live-cell imaging, we show that Swi6 is critical for nuclear resistance to external force. Strikingly, it is the condensed yet dynamic pool of Swi6, rather than the chromatin-bound molecules, that is essential to imparting mechanical stiffness. Our findings suggest that Swi6 condensates embedded in the chromatin meshwork establish the emergent mechanical behavior of the nucleus as a whole, revealing that biomolecular condensation can influence organelle and cell mechanics.

Keywords: CP: Cell biology; CP: Molecular biology; HP1; S. pombe; Swi6; biomolecular condensation; biophysics; heterochromatin; microscopy; nuclear mechanics.

MeSH terms

  • Cell Nucleus* / metabolism
  • Chromatin / metabolism
  • Chromobox Protein Homolog 5
  • Chromosomal Proteins, Non-Histone* / metabolism
  • Heterochromatin / metabolism
  • Schizosaccharomyces pombe Proteins* / genetics
  • Schizosaccharomyces pombe Proteins* / metabolism
  • Schizosaccharomyces* / genetics
  • Schizosaccharomyces* / metabolism

Substances

  • Schizosaccharomyces pombe Proteins
  • Chromosomal Proteins, Non-Histone
  • Swi6 protein, S pombe
  • Chromobox Protein Homolog 5
  • Heterochromatin
  • Chromatin