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The Fate of Oxidative Strand Breaks in Mitochondrial DNA

Mitochondrial DNA (mtDNA) is particularly vulnerable to somatic mutagenesis. Potential mechanisms include DNA polymerase γ (POLG) errors and the effects of mutagens, such as reactive oxygen species. Here, we studied the effects of transient hydrogen peroxide (H(2)O(2) pulse) on mtDNA integrity in cu...

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Autores principales: Trombly, Genevieve, Said, Afaf Milad, Kudin, Alexei P., Peeva, Viktoriya, Altmüller, Janine, Becker, Kerstin, Köhrer, Karl, Zsurka, Gábor, Kunz, Wolfram S.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2023
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10215735/
https://www.ncbi.nlm.nih.gov/pubmed/37237953
http://dx.doi.org/10.3390/antiox12051087
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author Trombly, Genevieve
Said, Afaf Milad
Kudin, Alexei P.
Peeva, Viktoriya
Altmüller, Janine
Becker, Kerstin
Köhrer, Karl
Zsurka, Gábor
Kunz, Wolfram S.
author_facet Trombly, Genevieve
Said, Afaf Milad
Kudin, Alexei P.
Peeva, Viktoriya
Altmüller, Janine
Becker, Kerstin
Köhrer, Karl
Zsurka, Gábor
Kunz, Wolfram S.
author_sort Trombly, Genevieve
collection PubMed
description Mitochondrial DNA (mtDNA) is particularly vulnerable to somatic mutagenesis. Potential mechanisms include DNA polymerase γ (POLG) errors and the effects of mutagens, such as reactive oxygen species. Here, we studied the effects of transient hydrogen peroxide (H(2)O(2) pulse) on mtDNA integrity in cultured HEK 293 cells, applying Southern blotting, ultra-deep short-read and long-read sequencing. In wild-type cells, 30 min after the H(2)O(2) pulse, linear mtDNA fragments appear, representing double-strand breaks (DSB) with ends characterized by short GC stretches. Intact supercoiled mtDNA species reappear within 2–6 h after treatment and are almost completely recovered after 24 h. BrdU incorporation is lower in H(2)O(2)-treated cells compared to non-treated cells, suggesting that fast recovery is not associated with mtDNA replication, but is driven by rapid repair of single-strand breaks (SSBs) and degradation of DSB-generated linear fragments. Genetic inactivation of mtDNA degradation in exonuclease deficient POLG p.D274A mutant cells results in the persistence of linear mtDNA fragments with no impact on the repair of SSBs. In conclusion, our data highlight the interplay between the rapid processes of SSB repair and DSB degradation and the much slower mtDNA re-synthesis after oxidative damage, which has important implications for mtDNA quality control and the potential generation of somatic mtDNA deletions.
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spelling pubmed-102157352023-05-27 The Fate of Oxidative Strand Breaks in Mitochondrial DNA Trombly, Genevieve Said, Afaf Milad Kudin, Alexei P. Peeva, Viktoriya Altmüller, Janine Becker, Kerstin Köhrer, Karl Zsurka, Gábor Kunz, Wolfram S. Antioxidants (Basel) Article Mitochondrial DNA (mtDNA) is particularly vulnerable to somatic mutagenesis. Potential mechanisms include DNA polymerase γ (POLG) errors and the effects of mutagens, such as reactive oxygen species. Here, we studied the effects of transient hydrogen peroxide (H(2)O(2) pulse) on mtDNA integrity in cultured HEK 293 cells, applying Southern blotting, ultra-deep short-read and long-read sequencing. In wild-type cells, 30 min after the H(2)O(2) pulse, linear mtDNA fragments appear, representing double-strand breaks (DSB) with ends characterized by short GC stretches. Intact supercoiled mtDNA species reappear within 2–6 h after treatment and are almost completely recovered after 24 h. BrdU incorporation is lower in H(2)O(2)-treated cells compared to non-treated cells, suggesting that fast recovery is not associated with mtDNA replication, but is driven by rapid repair of single-strand breaks (SSBs) and degradation of DSB-generated linear fragments. Genetic inactivation of mtDNA degradation in exonuclease deficient POLG p.D274A mutant cells results in the persistence of linear mtDNA fragments with no impact on the repair of SSBs. In conclusion, our data highlight the interplay between the rapid processes of SSB repair and DSB degradation and the much slower mtDNA re-synthesis after oxidative damage, which has important implications for mtDNA quality control and the potential generation of somatic mtDNA deletions. MDPI 2023-05-12 /pmc/articles/PMC10215735/ /pubmed/37237953 http://dx.doi.org/10.3390/antiox12051087 Text en © 2023 by the authors. https://creativecommons.org/licenses/by/4.0/Licensee MDPI, Basel, Switzerland. This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution (CC BY) license (https://creativecommons.org/licenses/by/4.0/).
spellingShingle Article
Trombly, Genevieve
Said, Afaf Milad
Kudin, Alexei P.
Peeva, Viktoriya
Altmüller, Janine
Becker, Kerstin
Köhrer, Karl
Zsurka, Gábor
Kunz, Wolfram S.
The Fate of Oxidative Strand Breaks in Mitochondrial DNA
title The Fate of Oxidative Strand Breaks in Mitochondrial DNA
title_full The Fate of Oxidative Strand Breaks in Mitochondrial DNA
title_fullStr The Fate of Oxidative Strand Breaks in Mitochondrial DNA
title_full_unstemmed The Fate of Oxidative Strand Breaks in Mitochondrial DNA
title_short The Fate of Oxidative Strand Breaks in Mitochondrial DNA
title_sort fate of oxidative strand breaks in mitochondrial dna
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10215735/
https://www.ncbi.nlm.nih.gov/pubmed/37237953
http://dx.doi.org/10.3390/antiox12051087
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