4.7 Article

Large-scale chromatin reorganization reactivates placenta-specific genes that drive cellular aging

期刊

DEVELOPMENTAL CELL
卷 57, 期 11, 页码 1347-+

出版社

CELL PRESS
DOI: 10.1016/j.devcel.2022.05.004

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资金

  1. National Key Research and Development Program of China [2018YFC2000100, 2018YFA0107203, 2021YFF1201005, 2020YFA0803401, 2019YFA0802202, 2021ZD0202401, 2020YFA0804000]
  2. Strategic Priority Research Program of the Chinese Academy of Sciences [XDA16010000]
  3. National Natural Science Foundation of China [81921006, 92149301, 92168201, 82125011, 91949209, 92049304, 92049116, 32100937, 81861168034, 82071588, 82122024, 32121001, 82192863, 81870228, 81922027, 31900523, 31970597, 81901432, 91849132]
  4. Beijing Natural Science Foundation [Z190019]
  5. Key Research Program of the Chinese Academy of Sciences [KFZD-SW-221]
  6. K.C. Wong Education Foundation [GJTD-2019-06, GJTD-2019-08]
  7. Informatization Plan of Chinese Academy of Sciences [CAS-WX2021SF-0301]
  8. Youth Innovation Promotion Association of CAS [E1CAZW0401]
  9. Tencent Foundation [2021-1045]
  10. Milky Way Research Foundation (MWRF)
  11. State Key Laboratory of Stem Cell and Reproductive Biology
  12. State Key Laboratory of Membrane Biology, CAS Project for Young Scientists in Basic Research [YSBR-012]
  13. CAS Special Research Assistant (SRA) Program, Young Elite Scientists Sponsorship Program by CAST [Y-ESS20200012]
  14. Pilot Project for Public Welfare Development and Reform of Beijing-affiliated Medical Research Institutes [11000022T000000461062]
  15. Priority Union Foundation of Yunnan Provincial Science and Technology Department [202001AY070001-011]
  16. Innovation project of CAMS [2021-I2M-1-050]

向作者/读者索取更多资源

Through large-scale epigenomic analyses of isogenic young, senescent, and progeroid human mesenchymal progenitor cells, the study reveals the association between nuclear deformation and erosion of chromatin organization, and uncovers the role of epigenetic de-repression in exacerbating cellular aging.
Nuclear deformation, a hallmark frequently observed in senescent cells, is presumed to be associated with the erosion of chromatin organization at the nuclear periphery. However, how such gradual changes in higher -order genome organization impinge on local epigenetic modifications to drive cellular mechanisms of aging has remained enigmatic. Here, through large-scale epigenomic analyses of isogenic young, senescent, and progeroid human mesenchymal progenitor cells (hMPCs), we delineate a hierarchy of integrated structural state changes that manifest as heterochromatin loss in repressive compartments, euchromatin weakening in active compartments, switching in interfacing topological compartments, and increasing epigenetic entropy. We found that the epigenetic de-repression unlocks the expression of pregnancy-specific beta-1 glycoprotein (PSG) genes that exacerbate hMPC aging and serve as potential aging biomarkers. Our analyses provide a rich resource for uncovering the principles of epigenomic landscape organization and its changes in cellular aging and for identifying aging drivers and intervention targets with a genome-topology-based mechanism.

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