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bioRxiv · 10.1101/2021.07.16.452672

Mechanisms of genetic instability in a single S-phase following whole genome doubling

Abstract

Diploid and stable karyotypes are associated with health and fitness in animals. In contrast, whole genome duplications (WGDs) - doubling full chromosome content - are linked to genetic instability (GIN) and frequently found in human cancers 1-3. It has been established that WGDs fuel chromosome instability through abnormal mitosis 4-8, however, the immediate consequences of tetraploidy in the first interphase are not known. This is an essential question because single WGD events such as cytokinesis failure can promote tumorigenesis 9. Here, we found that newly born tetraploid human cells undergo high rates of DNA damage during DNA replication in the first S-phase. Using DNA combing and single cell sequencing, we show that DNA replication dynamics is perturbed, generating under- and over-replicated regions. Mechanistically, we found that these defects result from the lack of protein mass scaling up at the G1/S transition, which impairs the fidelity of DNA replication. This work shows that within a single interphase, unscheduled tetraploid cells can acquire highly abnormal karyotypes. These findings provide an explanation for the GIN landscape that favors tumorigenesis after tetraploidization.

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BibTeXRIS

Gemble, S., Bernhard, S. V., Srivastava, N., Wardenaar, R., Nano, M., Mace, A.-S., Tijhuis, A., Keuper, K., Spierings, D. C. J., Hochegger, H., Piel, M., Foijer, F., Storchova, Z., Basto, R.. 2021-07-16. Mechanisms of genetic instability in a single S-phase following whole genome doubling. https://doi.org/10.1101/2021.07.16.452672

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