Architecture of Y-Family DNA Polymerases Relevant to Translesion DNA Synthesis as Revealed in Structural and Molecular Modeling Studies

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dc.contributor.author Chandani, Sushil en_US
dc.contributor.author Jacobs, Christopher en_US
dc.contributor.author Loechler, Edward L. en_US
dc.date.accessioned 2012-01-11T16:42:56Z
dc.date.available 2012-01-11T16:42:56Z
dc.date.copyright 2010 en_US
dc.date.issued 2010-9-16 en_US
dc.identifier.citation Chandani, Sushil, Christopher Jacobs, Edward L. Loechler. "Architecture of Y-Family DNA Polymerases Relevant to Translesion DNA Synthesis as Revealed in Structural and Molecular Modeling Studies" Journal of Nucleic Acids 2010:784081. en_US
dc.identifier.issn 2090-021X en_US
dc.identifier.uri http://hdl.handle.net/2144/3122
dc.description.abstract DNA adducts, which block replicative DNA polymerases (DNAPs), are often bypassed by lesion-bypass DNAPs, which are mostly in the Y-Family. Y-Family DNAPs can do non-mutagenic or mutagenic dNTP insertion, and understanding this difference is important, because mutations transform normal into tumorigenic cells. Y-Family DNAP architecture that dictates mechanism, as revealed in structural and modeling studies, is considered. Steps from adduct blockage of replicative DNAPs, to bypass by a lesion-bypass DNAP, to resumption of synthesis by a replicative DNAP are described. Catalytic steps and protein conformational changes are considered. One adduct is analyzed in greater detail: the major benzo[a]pyrene adduct (B[a]P-N2-dG), which is bypassed non-mutagenically (dCTP insertion) by Y-family DNAPs in the IV/κ-class and mutagenically (dATP insertion) by V/η-class Y-Family DNAPs. Important architectural differences between IV/κ-class versus V/η-class DNAPs are discussed, including insights gained by analyzing ~400 sequences each for bacterial DNAPs IV and V, along with sequences from eukaryotic DNAPs kappa, eta and iota. The little finger domains of Y-Family DNAPs do not show sequence conservation; however, their structures are remarkably similar due to the presence of a core of hydrophobic amino acids, whose exact identity is less important than the hydrophobic amino acid spacing. en_US
dc.language.iso en en_US
dc.publisher SAGE-Hindawi Access to Research en_US
dc.rights Copyright 2010 Sushil Chandani et al. en_US
dc.title Architecture of Y-Family DNA Polymerases Relevant to Translesion DNA Synthesis as Revealed in Structural and Molecular Modeling Studies en_US
dc.type article en_US
dc.identifier.doi 10.4061/2010/784081 en_US
dc.identifier.pubmedid 20936174 en_US
dc.identifier.pmcid 2945684 en_US

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