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Nucleosides Rescue Replication-Mediated Genome Instability of Human Pluripotent Stem Cells
Author(s) -
Jason A. Halliwell,
Thomas J. R. Frith,
Owen Laing,
Christopher J. Price,
Oliver J. Bower,
Dylan Stavish,
Paul J. Gokhale,
Zoë Hewitt,
Sherif F. ElKhamisy,
Ivana Barbaric,
Peter W. Andrews
Publication year - 2020
Publication title -
stem cell reports
Language(s) - English
Resource type - Journals
SCImago Journal Rank - 3.207
H-Index - 76
ISSN - 2213-6711
DOI - 10.1016/j.stemcr.2020.04.004
Subject(s) - biology , dna re replication , dna replication , genome instability , induced pluripotent stem cell , dna damage , control of chromosome duplication , mitosis , microbiology and biotechnology , genetics , dna , pre replication complex , eukaryotic dna replication , gene , embryonic stem cell
Human pluripotent stem cells (PSCs) are subject to the appearance of recurrent genetic variants on prolonged culture. We have now found that, compared with isogenic differentiated cells, PSCs exhibit evidence of considerably more DNA damage during the S phase of the cell cycle, apparently as a consequence of DNA replication stress marked by slower progression of DNA replication, activation of latent origins of replication, and collapse of replication forks. As in many cancers, which, like PSCs, exhibit a shortened G1 phase and DNA replication stress, the resulting DNA damage may underlie the higher incidence of abnormal and abortive mitoses in PSCs, resulting in chromosomal non-dysjunction or cell death. However, we have found that the extent of DNA replication stress, DNA damage, and consequent aberrant mitoses can be substantially reduced by culturing PSCs in the presence of exogenous nucleosides, resulting in improved survival, clonogenicity, and population growth.

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