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Critically short telomeres derepress retrotransposons to promote genome instability in embryonic stem cells

Authors :
Nannan Zhao
Guoxing Yin
Chun Liu
Weiyu Zhang
Yang Shen
Dan Wang
Zhenzhen Lin
Jiao Yang
Jian Mao
Renpeng Guo
Yongwang Zhang
Feng Wang
Zhe Liu
Xinyi Lu
Lin Liu
Source :
Cell Discovery. 9
Publication Year :
2023
Publisher :
Springer Science and Business Media LLC, 2023.

Abstract

Telomeres, at the ends of chromosomes, protect chromosomes from fusion and preserve genomic stability. However, the molecular mechanisms underlying telomere attrition-induced genome instability remain to be understood. We systematically analyzed the expression of retrotransposons and performed genomic sequencing of different cell and tissue types with telomeres of varying lengths due to telomerase deficiency. We found that critically short telomeres altered retrotransposon activity to promote genomic instability in mouse embryonic stem cells, as evidenced by elevated numbers of single nucleotide variants, indels and copy number variations (CNVs). Transpositions of retrotransposons such as LINE1 resulting from the short telomeres can also be found in these genomes with elevated number of mutations and CNVs. Retrotransposon activation is linked to increased chromatin accessibility, and reduced heterochromatin abundance correlates with short telomeres. Re-elongation of telomeres upon recovery of telomerase partly represses retrotransposons and heterochromatin accumulation. Together, our findings suggest a potential mechanism by which telomeres maintain genomic stability by suppressing chromatin accessibility and retrotransposon activity.

Details

ISSN :
20565968
Volume :
9
Database :
OpenAIRE
Journal :
Cell Discovery
Accession number :
edsair.doi...........3f6aeb1e38f86abcdcbc7f58940f9061