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ScharerDavid Orlando

Scharer, Orlando D.
Schärer Lab.
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A new sub-pathway of long-patch base excision repair involving 5 ' gap formation

Author(s)
Woodrick, JordanGupta, SuhaniCamacho, SharonParvathaneni, SwethaChoudhury, SujataCheema, AmritaBai, YiKhatkar, PoojaErkizan, Hayriye VerdaSami, FurqanSu, YanScharer, Orlando D.Sharma, SudhaRoy, Rabindra
Issued Date
2017-06
DOI
10.15252/embj.201694920
URI
https://scholarworks.unist.ac.kr/handle/201301/31027
Fulltext
https://www.embopress.org/doi/full/10.15252/embj.201694920
Citation
EMBO JOURNAL, v.36, no.11, pp.1605 - 1622
Abstract
Base excision repair (BER) is one of the most frequently used cellular DNA repair mechanisms and modulates many human pathophysiological conditions related to DNA damage. Through live cell and in vitro reconstitution experiments, we have discovered a major sub-pathway of conventional long-patch BER that involves formation of a 9-nucleotide gap 50 to the lesion. This new sub-pathway is mediated by RECQ1 DNA helicase and ERCC1-XPF endonuclease in cooperation with PARP1 poly(ADP-ribose) polymerase and RPA. The novel gap formation step is employed during repair of a variety of DNA lesions, including oxidative and alkylation damage. Moreover, RECQ1 regulates PARP1 auto-(ADP-ribosyl)ation and the choice between long-patch and single-nucleotide BER, thereby modulating cellular sensitivity to DNA damage. Based on these results, we propose a revised model of long-patch BER and a new key regulation point for pathway choice in BER.
Publisher
WILEY
ISSN
0261-4189
Keyword (Author)
BER pathway switchoxidative damagePARP inhibitionRECQ1XPF-ERCC1
Keyword
DNA-POLYMERASE-BETAREPLICATION PROTEIN-AHUMAN RECQ1POLY(ADP-RIBOSE) POLYMERASEDEPENDENT REPAIRDISTINCT ROLESDAMAGE REPAIRCELLSENDONUCLEASEHELICASES

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