Erosion of the telomeric single-strand overhang at replicative senescence
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- 24 March 2003
- journal article
- research article
- Published by Springer Nature in Nature Genetics
- Vol. 33 (4), 492-496
- https://doi.org/10.1038/ng1127
Abstract
Cultured primary human cells inevitably enter a state of replicative senescence for which the specific molecular trigger is unknown. We show that the single-strand telomeric overhang, a key component of telomere structure, is eroded at senescence. Expression of telomerase prevents overhang loss, suggesting that this enzyme prevents senescence by maintaining proper telomere structure. In contrast, progressive overhang loss occurs in cells that avoid senescence through the inactivation of p53 and Rb, indicating that overhang erosion is the result of continuous cell division and not a consequence of senescence. We thus provide evidence for a specific molecular alteration in telomere structure at senescence and suggest that this change, rather than overall telomere length, serves to trigger this state.Keywords
This publication has 28 references indexed in Scilit:
- The disparity between human cell senescence in vitro and lifelong replication in vivoNature Biotechnology, 2002
- Historical claims and current interpretations of replicative agingNature Biotechnology, 2002
- Subsenescent Telomere Lengths in Fibroblasts Immortalized by Limiting Amounts of TelomeraseJournal of Biological Chemistry, 2000
- Telomerase extends the lifespan of virus-transformed human cells without net telomere lengtheningProceedings of the National Academy of Sciences, 1999
- Reconstitution of telomerase activity in normal human cells leads to elongation of telomeres and extended replicative life spanCurrent Biology, 1998
- Extension of Life-Span by Introduction of Telomerase into Normal Human CellsScience, 1998
- Evidence for a Critical Telomere Length in Senescent Human FibroblastsExperimental Cell Research, 1995
- Telomerase, Cell Immortality, and CancerCold Spring Harbor Symposia on Quantitative Biology, 1994
- Telomeres shorten during ageing of human fibroblastsNature, 1990
- The biology of human agingThe American Journal of the Medical Sciences, 1973