4.7 Article

Chromosomal instability accelerates the evolution of resistance to anti-cancer therapies

期刊

DEVELOPMENTAL CELL
卷 56, 期 17, 页码 2427-+

出版社

CELL PRESS
DOI: 10.1016/j.devcel.2021.07.009

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资金

  1. NIH Early Independence award [1DP5OD021385]
  2. NIH [R01CA237652-01]
  3. Department of Defense [W81XWH-20-1-068]
  4. Damon Runyon-Rachleff Innovation award
  5. American Cancer Society Research Scholar Grant
  6. New York Community Trust
  7. Simons Foundation, Life Sciences Founders Directed GivingResearch [519054]
  8. Breast Cancer Research Foundation [19-174]
  9. German Research Foundation [STO918-5]
  10. Cancer Center Support grant [5P30CA045508]

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The study found that transient chromosomal instability can accelerate the development of resistance to anti-cancer therapies in tumor cells, as well as provide phenotypic plasticity for them to adapt to various stressful environments. Furthermore, aneuploidy may be an underexplored cause of therapy failure in human tumors.
Aneuploidy is a ubiquitous feature of human tumors, but the acquisition of aneuploidy typically antagonizes cellular fitness. To investigate how aneuploidy could contribute to tumor growth, we triggered periods of chromosomal instability (CIN) in human cells and then exposed them to different culture environments. We discovered that transient CIN reproducibly accelerates the acquisition of resistance to anti-cancer therapies. Single-cell sequencing revealed that these resistant populations develop recurrent aneuploidies, and independently deriving one chromosome-loss event that was frequently observed in paclitaxel-resistant cells was sufficient to decrease paclitaxel sensitivity. Finally, we demonstrated that intrinsic levels of CIN correlate with poor responses to numerous therapies in human tumors. Our results show that, although CIN generally decreases cancer cell fitness, it also provides phenotypic plasticity to cancer cells that can allow them to adapt to diverse stressful environments. Moreover, our findings suggest that aneuploidy may function as an under-explored cause of therapy failure.

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