Aneuploidy renders cancer cells vulnerable to mitotic checkpoint inhibition

非整倍体 有丝分裂 癌细胞 生物 主轴检查点 细胞生物学 癌症研究 癌症 倍性 遗传学 细胞 主轴装置 细胞分裂 染色体 基因
作者
Yael Cohen‐Sharir,James M. McFarland,Mai Abdusamad,Carolyn Marquis,Sara Bernhard,Mariya Kazachkova,Helen Tang,Marica Rosaria Ippolito,Kathrin Laue,Johanna Zerbib,Heidi L.H. Malaby,Andrew Jones,Lisa-Marie Stautmeister,Irena Bočkaj,René Wardenaar,Nicholas Lyons,Ankur K. Nagaraja,Adam J. Bass,Diana C.J. Spierings,Floris Foijer,Rameen Beroukhim,Stefano Santaguida,Todd R. Golub,Jason Stumpff,Zuzana Štorchová,Uri Ben‐David
出处
期刊:Nature [Springer Nature]
卷期号:590 (7846): 486-491 被引量:170
标识
DOI:10.1038/s41586-020-03114-6
摘要

Selective targeting of aneuploid cells is an attractive strategy for cancer treatment1. However, it is unclear whether aneuploidy generates any clinically relevant vulnerabilities in cancer cells. Here we mapped the aneuploidy landscapes of about 1,000 human cancer cell lines, and analysed genetic and chemical perturbation screens2–9 to identify cellular vulnerabilities associated with aneuploidy. We found that aneuploid cancer cells show increased sensitivity to genetic perturbation of core components of the spindle assembly checkpoint (SAC), which ensures the proper segregation of chromosomes during mitosis10. Unexpectedly, we also found that aneuploid cancer cells were less sensitive than diploid cells to short-term exposure to multiple SAC inhibitors. Indeed, aneuploid cancer cells became increasingly sensitive to inhibition of SAC over time. Aneuploid cells exhibited aberrant spindle geometry and dynamics, and kept dividing when the SAC was inhibited, resulting in the accumulation of mitotic defects, and in unstable and less-fit karyotypes. Therefore, although aneuploid cancer cells could overcome inhibition of SAC more readily than diploid cells, their long-term proliferation was jeopardized. We identified a specific mitotic kinesin, KIF18A, whose activity was perturbed in aneuploid cancer cells. Aneuploid cancer cells were particularly vulnerable to depletion of KIF18A, and KIF18A overexpression restored their response to SAC inhibition. Our results identify a therapeutically relevant, synthetic lethal interaction between aneuploidy and the SAC. Aneuploid cancer cell lines show increased dependence on the spindle assembly complex (SAC); initially they are resistant to SAC perturbations, but over time they accumulate chromosomal aberrations that impair their fitness.
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