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Stress controls heterochromatin inheritance via histone H3 ubiquitylation

  • Bharat Bhatt
  • , Yi Wei
  • , Ashis Kumar Pradhan
  • , Jothy Dhakshnamoorthy
  • , Martin Zofall
  • , Hua Xiao
  • , Drisya Vijayakumari
  • , Shweta Jain
  • , Hernan Diego Folco
  • , Hongyun Qi
  • , David A. Ball
  • , Tatiana S. Karpova
  • , David Wheeler
  • , Jiemin Wong
  • , Shiv I.S. Grewal*
  • *此作品的通讯作者

科研成果: 期刊稿件文章同行评审

摘要

Heterochromatin, marked by histone H3 lysine 9 methylation, can be epigenetically inherited through cell division1, 2–3, maintaining gene repression that preserves cell identity and enables adaptation to environmental challenges2, 3, 4, 5–6. Studies on Schizosaccharomyces pombe have shown that heterochromatin propagation depends on the read–write mechanism, wherein a sufficient density of H3K9me3-modified nucleosomes, stabilized by histone deacetylases, concentrates Clr4SUV39H on chromatin to promote further deposition of H3K9 methylation7, 8–9. Whether other mechanisms control heterochromatin propagation by means of Clr4SUV39H, a subunit of the E3 ubiquitin ligase complex ClrC10, 11–12, was unknown. Here we uncover a ubiquitin-dependent heterochromatin heritability regulatory hub (HRH) that broadly governs heterochromatin propagation, even without histone deacetylase activity. The HRH is tuned by the limiting factor Raf1DDB2, a substrate receptor for the ClrC ubiquitin ligase. In addition to linking Clr4SUV39H to other ClrC components on chromatin, Raf1DDB2 acts in a dosage-dependent manner to promote ubiquitination of histone H3 at lysine 14 (H3K14ub), which is critical for heterochromatin self-propagation. HRH is intricately linked to environmentally responsive pathways, including nonsense-mediated decay (NMD) and target of rapamycin (TOR) signalling, enabling cells to adapt to changing conditions. By modulating heterochromatin propagation, cells leverage the HRH to gain resistance to antifungal agents and adapt to high temperature. Thus, heterochromatin self-propagation is actively regulated by means of H3K14ub in response to external stimuli, with broad implications for understanding mechanisms governing rapid changes in the epigenetic landscape in physiology and disease.

源语言英语
页(从-至)768-778
页数11
期刊Nature
650
8102
DOI
出版状态已出版 - 19 2月 2026

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