Publication:
Dispensability of HPF1 for cellular removal of DNA single-strand breaks.

cris.virtualsource.author-orcid5360348a-7a09-49b4-929e-e53164482430
datacite.rightsopen.access
dc.contributor.authorHrychova, Kristyna
dc.contributor.authorBurdova, Kamila
dc.contributor.authorPolackova, Zuzana
dc.contributor.authorGiamaki, Despoina
dc.contributor.authorValtorta, Beatrice
dc.contributor.authorBrazina, Jan
dc.contributor.authorKrejcikova, Katerina
dc.contributor.authorKuttichova, Barbora
dc.contributor.authorCaldecott, Keith W
dc.contributor.authorHanzlikova, Hana
dc.date.accessioned2024-10-26T18:45:08Z
dc.date.available2024-10-26T18:45:08Z
dc.date.issued2024-10-14
dc.description.abstractIn response to DNA damage, the histone PARylation factor 1 (HPF1) regulates PARP1/2 activity, facilitating serine ADP-ribosylation of chromatin-associated factors. While PARP1/2 are known for their role in DNA single-strand break repair (SSBR), the significance of HPF1 in this process remains unclear. Here, we investigated the impact of HPF1 deficiency on cellular survival and SSBR following exposure to various genotoxins. We found that HPF1 loss did not generally increase cellular sensitivity to agents that typically induce DNA single-strand breaks (SSBs) repaired by PARP1. SSBR kinetics in HPF1-deficient cells were largely unaffected, though its absence partially influenced the accumulation of SSB intermediates after exposure to specific genotoxins in certain cell lines, likely due to altered ADP-ribosylation of chromatin. Despite reduced serine mono-ADP-ribosylation, HPF1-deficient cells maintained robust poly-ADP-ribosylation at SSB sites, possibly reflecting PARP1 auto-poly-ADP-ribosylation at non-serine residues. Notably, poly-ADP-ribose chains were sufficient to recruit the DNA repair factor XRCC1, which may explain the relatively normal SSBR capacity in HPF1-deficient cells. These findings suggest that HPF1 and histone serine ADP-ribosylation are largely dispensable for PARP1-dependent SSBR in response to genotoxic stress, highlighting the complexity of mechanisms that maintain genomic stability and chromatin remodeling.
dc.description.numberOfPages13
dc.description.sponsorshipInstitut für Tierpathologie (ITPA) - Labor Dermatopathologie
dc.identifier.doi10.48350/199870
dc.identifier.pmid39162207
dc.identifier.publisherDOI10.1093/nar/gkae708
dc.identifier.urihttps://boris-portal.unibe.ch/handle/20.500.12422/179898
dc.language.isoen
dc.publisherOxford University Press
dc.relation.ispartofNucleic acids research
dc.relation.issn0305-1048
dc.relation.organizationDCD5A442C072E17DE0405C82790C4DE2
dc.relation.organizationDCD5A442C1CCE17DE0405C82790C4DE2
dc.titleDispensability of HPF1 for cellular removal of DNA single-strand breaks.
dc.typearticle
dspace.entity.typePublication
dspace.file.typetext
oaire.citation.endPage10998
oaire.citation.issue18
oaire.citation.startPage10986
oaire.citation.volume52
oairecerif.author.affiliationInstitut für Tierpathologie (ITPA) - Labor Dermatopathologie
oairecerif.author.affiliation2Institut für Tierpathologie (ITPA) - Labortierpathologie
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unibe.date.licenseChanged2024-08-22 05:10:39
unibe.description.ispublishedpub
unibe.eprints.legacyId199870
unibe.journal.abbrevTitleNUCLEIC ACIDS RES
unibe.refereedtrue
unibe.subtype.articlejournal

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