Literature DB >> 17118716

A unique error signature for human DNA polymerase nu.

Mercedes E Arana1, Kei-ichi Takata, Miguel Garcia-Diaz, Richard D Wood, Thomas A Kunkel.   

Abstract

Human DNA polymerase nu (pol nu) is one of three A family polymerases conserved in vertebrates. Although its biological functions are unknown, pol nu has been implicated in DNA repair and in translesion DNA synthesis (TLS). Pol nu lacks intrinsic exonucleolytic proofreading activity and discriminates poorly against misinsertion of dNTP opposite template thymine or guanine, implying that it should copy DNA with low base substitution fidelity. To test this prediction and to comprehensively examine pol nu DNA synthesis fidelity as a clue to its function, here we describe human pol nu error rates for all 12 single base-base mismatches and for insertion and deletion errors during synthesis to copy the lacZ alpha-complementation sequence in M13mp2 DNA. Pol nu copies this DNA with average single-base insertion and deletion error rates of 7 x 10(-5) and 17 x 10(-5), respectively. This accuracy is comparable to that of replicative polymerases in the B family, lower than that of its A family homolog, human pol gamma, and much higher than that of Y family TLS polymerases. In contrast, the average single-base substitution error rate of human pol nu is 3.5 x 10(-3), which is inaccurate compared to the replicative polymerases and comparable to Y family polymerases. Interestingly, the vast majority of errors made by pol nu reflect stable misincorporation of dTMP opposite template G, at average rates that are much higher than for homologous A family members. This pol nu error is especially prevalent in sequence contexts wherein the template G is preceded by a C-G or G-C base pair, where error rates can exceed 10%. Amino acid sequence alignments based on the structures of more accurate A family polymerases suggest substantial differences in the O-helix of pol nu that could contribute to this unique error signature.

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Year:  2006        PMID: 17118716      PMCID: PMC1950682          DOI: 10.1016/j.dnarep.2006.09.012

Source DB:  PubMed          Journal:  DNA Repair (Amst)        ISSN: 1568-7856


  68 in total

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Review 4.  DNA interstrand cross-link repair in the cell cycle: a critical role for polymerase zeta in G1 phase.

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5.  Survival choices.

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7.  Error rate and specificity of human and murine DNA polymerase eta.

Authors:  T Matsuda; K Bebenek; C Masutani; I B Rogozin; F Hanaoka; T A Kunkel
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8.  Crystal structures of a ddATP-, ddTTP-, ddCTP, and ddGTP- trapped ternary complex of Klentaq1: insights into nucleotide incorporation and selectivity.

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9.  Fidelity and processivity of DNA synthesis by DNA polymerase kappa, the product of the human DINB1 gene.

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10.  The Y-family DNA polymerase kappa (pol kappa) functions in mammalian nucleotide-excision repair.

Authors:  Tomoo Ogi; Alan R Lehmann
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  31 in total

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2.  Kinetic analysis of the unique error signature of human DNA polymerase ν.

Authors:  Mercedes E Arana; Olga Potapova; Thomas A Kunkel; Catherine M Joyce
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Review 3.  The fidelity of DNA synthesis by eukaryotic replicative and translesion synthesis polymerases.

Authors:  Scott D McCulloch; Thomas A Kunkel
Journal:  Cell Res       Date:  2008-01       Impact factor: 25.617

Review 4.  On the sequence-directed nature of human gene mutation: the role of genomic architecture and the local DNA sequence environment in mediating gene mutations underlying human inherited disease.

Authors:  David N Cooper; Albino Bacolla; Claude Férec; Karen M Vasquez; Hildegard Kehrer-Sawatzki; Jian-Min Chen
Journal:  Hum Mutat       Date:  2011-09-02       Impact factor: 4.878

5.  DNA polymerase POLN participates in cross-link repair and homologous recombination.

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6.  The roles of polymerases ν and θ in replicative bypass of O 6- and N 2-alkyl-2'-deoxyguanosine lesions in human cells.

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7.  DNA polymerases nu and theta are required for efficient immunoglobulin V gene diversification in chicken.

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8.  Evolutionary conservation of residues in vertebrate DNA polymerase N conferring low fidelity and bypass activity.

Authors:  Kei-ichi Takata; Mercedes E Arana; Mineaki Seki; Thomas A Kunkel; Richard D Wood
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9.  A nuclear family A DNA polymerase from Entamoeba histolytica bypasses thymine glycol.

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Authors:  Kinrin Yamanaka; Irina G Minko; Kei-ichi Takata; Alexander Kolbanovskiy; Ivan D Kozekov; Richard D Wood; Carmelo J Rizzo; R Stephen Lloyd
Journal:  Chem Res Toxicol       Date:  2010-03-15       Impact factor: 3.739

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