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Acetylation Regulates WRN Catalytic Activities and Affects Base Excision DNA Repair
Author(s) -
Meltem Müftüoğlu,
Rika Kusumoto,
Elżbieta Speina,
Gad Beck,
WenHsing Cheng,
Vilhelm A. Bohr
Publication year - 2008
Publication title -
plos one
Language(s) - English
Resource type - Journals
SCImago Journal Rank - 0.99
H-Index - 332
ISSN - 1932-6203
DOI - 10.1371/journal.pone.0001918
Subject(s) - acetylation , sodium butyrate , histone , dna repair , biology , werner syndrome , premature aging , dna damage , dna , histone deacetylase , ku80 , microbiology and biotechnology , methyl methanesulfonate , genetics , dna binding protein , transcription factor , gene , helicase , rna
Background The Werner protein (WRN), defective in the premature aging disorder Werner syndrome, participates in a number of DNA metabolic processes, and we have been interested in the possible regulation of its function in DNA repair by post-translational modifications. Acetylation mediated by histone acetyltransferases is of key interest because of its potential importance in aging, DNA repair and transcription. Methodology/Principal Findings Here, we have investigated the p300 acetylation mediated changes on the function of WRN in base excision DNA repair (BER). We show that acetylation of WRN increases in cells treated with methyl methanesulfonate (MMS), suggesting that acetylation of WRN may play a role in response to DNA damage. This hypothesis is consistent with our findings that acetylation of WRN stimulates its catalytic activities in vitro and in vivo , and that acetylated WRN enhances pol β-mediated strand displacement DNA synthesis more than unacetylated WRN. Furthermore, we show that cellular exposure to the histone deacetylase inhibitor sodium butyrate stimulates long patch BER in wild type cells but not in WRN depleted cells, suggesting that acetylated WRN participates significantly in this process. Conclusion/Significance Collectively, these results provide the first evidence for a specific role of p300 mediated WRN acetylation in regulating its function during BER.

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