4.8 Article

A cytoskeletal function for PBRM1 reading methylated microtubules

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SCIENCE ADVANCES
卷 7, 期 14, 页码 -

出版社

AMER ASSOC ADVANCEMENT SCIENCE
DOI: 10.1126/sciadv.abf2866

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资金

  1. Department of Defense [KC170259]
  2. Owen's Foundation
  3. NIH [R35CA231993, P30ES030285, R01CA203012, RO1CA195670, R37 AI 36040, P30CA125123, R35GM131744, R35GM137996]
  4. Templeton Foundation [61099]
  5. Welch Foundation [Q1279]
  6. American Heart Association [19PRE34430069]
  7. Baylor College of Medicine (BCM) Medical Scientist Training Program
  8. BP America Biomedical Scholarship from the BCM Graduate School of Biomedical Sciences
  9. Philip Foundation
  10. Kidney Cancer Association
  11. American Society of Clinical Oncology/Conquer Cancer Foundation
  12. Institute for Personalized Cancer Therapy (The University of Texas MD Anderson Cancer Center)
  13. NCI center grant
  14. Cancer Prevention and Research Institute of Texas (CPRIT) [RP170005]
  15. Ligue Nationale Contre le Cancer

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The study demonstrates that the coordinated read-write activity of the epigenetic machinery involves the cytoskeleton, with PBRM1 regulating mitosis by binding microtubule methyl marks written by SETD2. This activity is crucial for normal mitosis, and disruptions can lead to genomic instability.
Epigenetic effectors read marks written on chromatin to regulate function and fidelity of the genome. Here, we show that this coordinated read-write activity of the epigenetic machinery extends to the cytoskeleton, with PBRM1 in the PBAF chromatin remodeling complex reading microtubule methyl marks written by the SETD2 histone methyltransferase. PBRM1 binds SETD2 methyl marks via BAH domains, recruiting PBAF components to the mitotic spindle. This read-write activity was required for normal mitosis: Loss of SETD2 methylation or pathogenic BAH domain mutations disrupt PBRM1 microtubule binding and PBAF recruitment and cause genomic instability. These data reveal PBRM1 functions beyond chromatin remodeling with domains that allow it to integrate chromatin and cytoskeletal activity via its acetyl-binding BD and methyl-binding BAH domains, respectively. Conserved coordinated activity of the epigenetic machinery on the cytoskeleton opens a previously unknown window into how chromatin remodeler defects can drive disease via both epigenetic and cytoskeletal dysfunction.

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