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The DNA damage-sensing NER repair factor XPC-RAD23B does not recognize bulky DNA lesions with a missing nucleotide opposite the lesion.
- Source :
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DNA repair [DNA Repair (Amst)] 2020 Dec; Vol. 96, pp. 102985. Date of Electronic Publication: 2020 Oct 01. - Publication Year :
- 2020
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Abstract
- The Nucleotide Excision Repair (NER) mechanism removes a wide spectrum of structurally different lesions that critically depend on the binding of the DNA damage sensing NER factor XPC-RAD23B (XPC) to the lesions. The bulky mutagenic benzo[a]pyrene diol epoxide metabolite-derived cis- and trans-B[a]P-dG lesions (G*) adopt base-displaced intercalative (cis) or minor groove (trans) conformations in fully paired DNA duplexes with the canonical C opposite G* (G*:C duplexes). While XPC has a high affinity for binding to these DNA lesions in fully complementary double-stranded DNA, we show here that deleting only the C in the complementary strand opposite the lesion G* embedded in 50-mer duplexes, fully abrogates XPC binding. Accurate values of XPC dissociation constants (K <subscript>D</subscript> ) were determined by employing an excess of unmodified DNA as a competitor; this approach eliminated the binding and accumulation of multiple XPC molecules to the same DNA duplexes, a phenomenon that prevented the accurate estimation of XPC binding affinities in previous studies. Surprisingly, a detailed comparison of XPC dissociation constants K <subscript>D</subscript> of unmodified and lesion-containing G*:Del complexes, showed that the K <subscript>D</subscript> values were -2.5-3.6 times greater in the case of G*:Del than in the unmodified G:Del and fully base-paired G:C duplexes. The origins of this unexpected XPC lesion avoidance effect is attributed to the intercalation of the bulky, planar B[a]P aromatic ring system between adjacent DNA bases that thermodynamically stabilize the G*:Del duplexes. The strong lesion-base stacking interactions associated with the absence of the partner base, prevent the DNA structural distortions needed for the binding of the BHD2 and BHD3 β-hairpins of XPC to the deletion duplexes, thus accounting for the loss of XPC binding and the known NER-resistance of G*:Del duplexes.<br /> (Copyright © 2020. Published by Elsevier B.V.)
- Subjects :
- 7,8-Dihydro-7,8-dihydroxybenzo(a)pyrene 9,10-oxide chemistry
DNA chemistry
DNA metabolism
DNA Adducts chemistry
DNA Repair Enzymes metabolism
DNA-Binding Proteins chemistry
Humans
Kinetics
Molecular Dynamics Simulation
Nucleic Acid Conformation
Protein Conformation
Saccharomyces cerevisiae enzymology
Saccharomyces cerevisiae genetics
Saccharomyces cerevisiae metabolism
Saccharomyces cerevisiae Proteins chemistry
Substrate Specificity
7,8-Dihydro-7,8-dihydroxybenzo(a)pyrene 9,10-oxide metabolism
DNA Adducts metabolism
DNA Repair
DNA-Binding Proteins metabolism
Saccharomyces cerevisiae Proteins metabolism
Subjects
Details
- Language :
- English
- ISSN :
- 1568-7856
- Volume :
- 96
- Database :
- MEDLINE
- Journal :
- DNA repair
- Publication Type :
- Academic Journal
- Accession number :
- 33035795
- Full Text :
- https://doi.org/10.1016/j.dnarep.2020.102985