4.8 Article

Single-Cell Transcriptomic Atlas of Primate Ovarian Aging

Journal

CELL
Volume 180, Issue 3, Pages 585-+

Publisher

CELL PRESS
DOI: 10.1016/j.cell.2020.01.009

Keywords

-

Funding

  1. National Key Research and Development Program of China [2017YFA0102802, 2017YFA0103304, 2018YFC1003101, 2015CB964800, 2016YFC1000601, 2018YFA0107203, 2018YFC2000400, 2018YFC2000100]
  2. Strategic Priority Research Program of the Chinese Academy of Sciences [XDA16010100]
  3. National Natural Science Foundation of China [81921006, 81625009, 91749202, 91749123, 31671429, 81671377, 81771515, 31601158, 81701388, 81601233, 31601109, 81822018, 81870228, 81801399, 31801010, 81801370, 81861168034, 31900523, 81901432, 81901433, 31900524, 81922027, 81571400, 81771580, 81971381, 81730038, 81571385, 91849132, 91949209]
  4. Beijing Natural Science Foundation [Z190019]
  5. Program of Beijing Municipal Science and Technology Commission [Z191100001519005]
  6. Beijing Municipal Commission of Health and Family Planning [PXM2018_026283_000002]
  7. Key Research Program of the Chinese Academy of Sciences [KFZD-SW-221]
  8. Advanced Innovation Center for Human Brain Protection [3500-1192012]
  9. Young Elite Scientists Sponsorship Program by CAST [2017QNRC001]
  10. State Key Laboratory of Membrane Biology
  11. Strategic Collaborative Research Program of the Ferring Institute of Reproductive Medicine
  12. Ferring Pharmaceuticals
  13. Chinese Academy of Sciences [FIRMC180305]
  14. UCAM
  15. Moxie Foundation
  16. Glenn Foundation

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Molecular mechanisms of ovarian aging and female age-related fertility decline remain unclear. We surveyed the single-cell transcriptomic landscape of ovaries from young and aged non-human primates (NHPs) and identified seven ovarian cell types with distinct gene-expression signatures, including oocyte and six types of ovarian somatic cells. In-depth dissection of gene-expression dynamics of oocytes revealed four subtypes at sequential and stepwise developmental stages. Further analysis of cell-type-specific aging-associated transcriptional changes uncovered the disturbance of antioxidant signaling specific to early-stage oocytes and granulosa cells, indicative of oxidative damage as a crucial factor in ovarian functional decline with age. Additionally, inactivated antioxidative pathways, increased reactive oxygen species, and apoptosis were observed in granulosa cells from aged women. This study provides a comprehensive understanding of the cell-type-specific mechanisms underlying primate ovarian aging at single-cell resolution, revealing new diagnostic biomarkers and potential therapeutic targets for age-related human ovarian disorders.

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