非整倍体
生物
着丝粒
染色体分离
染色体
遗传学
有丝分裂
凝聚力(化学)
基因
化学
有机化学
作者
Joseph T Worrall,Naoka Tamura,Alice Mazzagatti,Nadeem Shaikh,Tineke van Lingen,Björn Bakker,Diana C.J. Spierings,Elina Vladimirou,Floris Foijer,Sarah E. McClelland
出处
期刊:Cell Reports
[Elsevier]
日期:2018-06-01
卷期号:23 (11): 3366-3380
被引量:73
标识
DOI:10.1016/j.celrep.2018.05.047
摘要
A common assumption is that human chromosomes carry equal chances of mis-segregation during compromised cell division. Human chromosomes vary in multiple parameters that might generate bias, but technological limitations have precluded a comprehensive analysis of chromosome-specific aneuploidy. Here, by imaging specific centromeres coupled with high-throughput single-cell analysis as well as single-cell sequencing, we show that aneuploidy occurs non-randomly following common treatments to elevate chromosome mis-segregation. Temporary spindle disruption leads to elevated mis-segregation and aneuploidy of a subset of chromosomes, particularly affecting chromosomes 1 and 2. Unexpectedly, we find that a period of mitotic delay weakens centromeric cohesion and promotes chromosome mis-segregation and that chromosomes 1 and 2 are particularly prone to suffer cohesion fatigue. Our findings demonstrate that inherent properties of individual chromosomes can bias chromosome mis-segregation and aneuploidy rates, with implications for studies on aneuploidy in human disease.
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