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Oxidative Stress Induces Persistent Telomeric DNA Damage Responsible for Nuclear Morphology Change in Mammalian Cells
Elisa Coluzzi, Monica Colamartino, Renata Cozzi, Stefano Leone, Carlo Meneghini, Nathan J. O’Callaghan, Antonella Sgura
PLoS ONE · 2014 · ▲ 192 citations
Genomic instability
Telomere attrition
Mitochondrial dysfunction
Cell culture / in vitro
Human
In vitro
Abstract
One main function of telomeres is to maintain chromosome and genome stability. The rate of telomere(definition) shortening can be accelerated significantly by chemical and physical environmental agents. Reactive oxygen species are a source of oxidative stress and can produce modified bases (mainly 8-oxoG) and single strand breaks anywhere in the genome. The high incidence of guanine residues in telomeric DNA sequences makes the telomere a preferred target for oxidative damage. Our aim in this work is to evaluate whether chromosome instability induced by oxidative stress is related specifically to telomeric damage. We treated human primary fibroblasts (MRC-5) in vitro with hydrogen peroxide (100 and 200 µM) for 1 hr and collected data at several time points. To evaluate the persistence of oxidative stress-induced DNA damage up to 24 hrs after treatment, we analysed telomeric and genomic oxidative damage by qPCR and a modified comet assay, respectively. The results demonstrate that the genomic damage is completely repaired, while the telomeric oxidative damage persists. The analysis of telomere length reveals a significant telomere shortening 48 hrs after treatment, leading us to hypothesise that residual telomere damage could be responsible for the telomere shortening observed. Considering the influence of telomere length modulation on genomic stability, we quantified abnormal nuclear morphologies (Nucleoplasmic Bridges, Nuclear Buds and Micronuclei) and observed an increase of chromosome instability in the same time frame as telomere shortening. At subsequent times (72 and 96 hrs), we observed a restoration of telomere length and a reduction of chromosome instability, leaving us to conjecture a correlation between telomere shortening/dysfunction and chromosome instability. We can conclude that oxidative base damage leads to abnormal nuclear morphologies and that telomere dysfunction is an important contributor to this effect.
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- 10.1371/journal.pone.0110963
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- 2026-06-09 MST
Cite this
APA
Coluzzi, E., Colamartino, M., Cozzi, R., Leone, S., Meneghini, C., O’Callaghan, N.J., & Sgura, A. (2014). Oxidative Stress Induces Persistent Telomeric DNA Damage Responsible for Nuclear Morphology Change in Mammalian Cells. <em>PLoS ONE</em>. https://doi.org/10.1371/journal.pone.0110963
Vancouver
Coluzzi E, Colamartino M, Cozzi R, Leone S, Meneghini C, O’Callaghan NJ, et al. Oxidative Stress Induces Persistent Telomeric DNA Damage Responsible for Nuclear Morphology Change in Mammalian Cells. PLoS ONE. 2014. doi:10.1371/journal.pone.0110963.
BibTeX
@article{elisa2014Oxidat,
title = {Oxidative Stress Induces Persistent Telomeric DNA Damage Responsible for Nuclear Morphology Change in Mammalian Cells},
author = {Elisa Coluzzi and Monica Colamartino and Renata Cozzi and Stefano Leone and Carlo Meneghini and Nathan J. O’Callaghan and Antonella Sgura},
journal = {PLoS ONE},
year = {2014},
doi = {10.1371/journal.pone.0110963},
}
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