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Structure/Function Analysis of PARP-1 in Oxidative and Nitrosative Stress-Induced Monomeric ADPR Formation
Author(s) -
Ben Buelow,
Burak Uzunparmak,
Marcia N. Paddock,
Andrew M. Scharenberg
Publication year - 2009
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.0006339
Subject(s) - poly adp ribose polymerase , dna damage , dna repair , context (archaeology) , biology , polymerase , dna , xrcc1 , adp ribosylation , biochemistry , microbiology and biotechnology , chemistry , enzyme , gene , nad+ kinase , paleontology , single nucleotide polymorphism , genotype
P oly a denosine diphosphate- r ibose p olymerase-1 (PARP-1) is a multifunctional enzyme that is involved in two major cellular responses to oxidative and nitrosative (O/N) stress: detection and response to DNA damage via formation of protein-bound p oly a denosine diphosphate- r ibose (PAR), and formation of the soluble 2 nd messenger monomeric a denosine d i p hosphate- r ibose (mADPR). Previous studies have delineated specific roles for several of PARP-1′s structural domains in the context of its involvement in a DNA damage response. However, little is known about the relationship between the mechanisms through which PARP-1 participates in DNA damage detection/response and those involved in the generation of monomeric ADPR. To better understand the relationship between these events, we undertook a structure/function analysis of PARP-1 via reconstitution of PARP-1 deficient DT40 cells with PARP-1 variants deficient in catalysis, DNA binding, auto-PARylation, and PARP-1′s BRCT protein interaction domain. Analysis of responses of the respective reconstituted cells to a model O/N stressor indicated that PARP-1 catalytic activity, DNA binding, and auto-PARylation are required for PARP-dependent mADPR formation, but that BRCT-mediated interactions are dispensable. As the BRCT domain is required for PARP-dependent recruitment of XRCC1 to sites of DNA damage, these results suggest that DNA repair and monomeric ADPR 2 nd messenger generation are parallel mechanisms through which PARP-1 modulates cellular responses to O/N stress.

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