4.7 Article

Mitigating Antagonism between Transcription and Proliferation Allows Near-Deterministic Cellular Reprogramming

期刊

CELL STEM CELL
卷 25, 期 4, 页码 486-+

出版社

CELL PRESS
DOI: 10.1016/j.stem.2019.08.005

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资金

  1. CIRM [TG2-01161]
  2. Kirschstein-NRSA Postdoctoral Fellowship [5F32NS092417]
  3. NIH [R00NS077435, R01NS097850, 5R01DC015530, NS090904, NS100459]
  4. US Department of Defense [W81XWH-15-1-0187]
  5. Donald E. and Delia B. Baxter Foundation
  6. Alzheimer's Drug Discovery Foundation
  7. Association for Frontotemporal Degeneration
  8. Harrington Discovery Institute
  9. Tau Consortium
  10. Pape Adams Foundation
  11. Frick Foundation for ALS Research
  12. Muscular Dystrophy Association
  13. John Douglas French Alzheimer's Foundation
  14. Merkin Family Foundation
  15. New York Stem Cell Foundation
  16. USC Keck School of Medicine
  17. USC Broad Innovation Award
  18. SC Clinical and Translational Science Institute
  19. Foundation Leducq Transatlantic Network of Excellence for the Study of Perivascular Spaces in Small Vessel Disease [16 CVD 05]

向作者/读者索取更多资源

Although cellular reprogramming enables the generation of new cell types for disease modeling and regenerative therapies, reprogramming remains a rare cellular event. By examining reprogramming of fibroblasts into motor neurons and multiple other somatic lineages, we find that epigenetic barriers to conversion can be overcome by endowing cells with the ability to mitigate an inherent antagonism between transcription and DNA replication. We show that transcription factor overexpression induces unusually high rates of transcription and that sustaining hypertranscription and transgene expression in hyperproliferative cells early in reprogramming is critical for successful lineage conversion. However, hypertranscription impedes DNA replication and cell proliferation, processes that facilitate reprogramming. We identify a chemical and genetic cocktail that dramatically increases the number of cells capable of simultaneous hypertranscription and hyperproliferation by activating topoisomerases. Further, we show that hypertranscribing, hyperproliferating cells reprogram at 100-fold higher, near-deterministic rates. Therefore, relaxing biophysical constraints overcomes molecular barriers to cellular reprogramming.

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