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The catalytic cycle for ribonucleotide incorporation by human DNA Pol λ

Although most DNA polymerases discriminate against ribonucleotide triphosphaets (rNTPs) during DNA synthesis, recent studies have shown that large numbers of ribonucleotides are incorporated into the eukaryotic nuclear genome. Here, we investigate how a DNA polymerase can stably incorporate an rNTP....

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Autores principales: Gosavi, Rajendrakumar A., Moon, Andrea F., Kunkel, Thomas A., Pedersen, Lars C., Bebenek, Katarzyna
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Oxford University Press 2012
Materias:
RNA
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3424563/
https://www.ncbi.nlm.nih.gov/pubmed/22584622
http://dx.doi.org/10.1093/nar/gks413
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author Gosavi, Rajendrakumar A.
Moon, Andrea F.
Kunkel, Thomas A.
Pedersen, Lars C.
Bebenek, Katarzyna
author_facet Gosavi, Rajendrakumar A.
Moon, Andrea F.
Kunkel, Thomas A.
Pedersen, Lars C.
Bebenek, Katarzyna
author_sort Gosavi, Rajendrakumar A.
collection PubMed
description Although most DNA polymerases discriminate against ribonucleotide triphosphaets (rNTPs) during DNA synthesis, recent studies have shown that large numbers of ribonucleotides are incorporated into the eukaryotic nuclear genome. Here, we investigate how a DNA polymerase can stably incorporate an rNTP. The X-ray crystal structure of a variant of human DNA polymerase λ reveals that the rNTP occupies the nucleotide binding pocket without distortion of the active site, despite an unfavorable interaction between the 2′-O and Tyr505 backbone carbonyl. This indicates an energetically unstable binding state for the rNTP, stabilized by additional protein–nucleotide interactions. Supporting this idea is the 200-fold lower catalytic efficiency for rNTP relative to deoxyribonucleotide triphosphate (dNTP) incorporation, reflecting a higher apparent Km value for the rNTP. Furthermore, distortion observed in the structure of the post-catalytic product complex suggests that once the bond between the α- and β-phosphates of the rNTP is broken, the unfavorable binding state of the ribonucleotide cannot be maintained. Finally, structural and biochemical evaluation of dNTP insertion onto an ribonucleotide monophosphate (rNMP)-terminated primer indicates that a primer-terminal rNMP does not impede extension. The results are relevant to how ribonucleotides are incorporated into DNA in vivo, during replication and during repair, perhaps especially in non-proliferating cells when rNTP:dNTP ratios are high.
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spelling pubmed-34245632012-08-22 The catalytic cycle for ribonucleotide incorporation by human DNA Pol λ Gosavi, Rajendrakumar A. Moon, Andrea F. Kunkel, Thomas A. Pedersen, Lars C. Bebenek, Katarzyna Nucleic Acids Res RNA Although most DNA polymerases discriminate against ribonucleotide triphosphaets (rNTPs) during DNA synthesis, recent studies have shown that large numbers of ribonucleotides are incorporated into the eukaryotic nuclear genome. Here, we investigate how a DNA polymerase can stably incorporate an rNTP. The X-ray crystal structure of a variant of human DNA polymerase λ reveals that the rNTP occupies the nucleotide binding pocket without distortion of the active site, despite an unfavorable interaction between the 2′-O and Tyr505 backbone carbonyl. This indicates an energetically unstable binding state for the rNTP, stabilized by additional protein–nucleotide interactions. Supporting this idea is the 200-fold lower catalytic efficiency for rNTP relative to deoxyribonucleotide triphosphate (dNTP) incorporation, reflecting a higher apparent Km value for the rNTP. Furthermore, distortion observed in the structure of the post-catalytic product complex suggests that once the bond between the α- and β-phosphates of the rNTP is broken, the unfavorable binding state of the ribonucleotide cannot be maintained. Finally, structural and biochemical evaluation of dNTP insertion onto an ribonucleotide monophosphate (rNMP)-terminated primer indicates that a primer-terminal rNMP does not impede extension. The results are relevant to how ribonucleotides are incorporated into DNA in vivo, during replication and during repair, perhaps especially in non-proliferating cells when rNTP:dNTP ratios are high. Oxford University Press 2012-08 2012-05-14 /pmc/articles/PMC3424563/ /pubmed/22584622 http://dx.doi.org/10.1093/nar/gks413 Text en Published by Oxford University Press 2012. http://creativecommons.org/licenses/by-nc/3.0 This is an Open Access article distributed under the terms of the Creative Commons Attribution Non-Commercial License (http://creativecommons.org/licenses/by-nc/3.0), which permits unrestricted non-commercial use, distribution, and reproduction in any medium, provided the original work is properly cited.
spellingShingle RNA
Gosavi, Rajendrakumar A.
Moon, Andrea F.
Kunkel, Thomas A.
Pedersen, Lars C.
Bebenek, Katarzyna
The catalytic cycle for ribonucleotide incorporation by human DNA Pol λ
title The catalytic cycle for ribonucleotide incorporation by human DNA Pol λ
title_full The catalytic cycle for ribonucleotide incorporation by human DNA Pol λ
title_fullStr The catalytic cycle for ribonucleotide incorporation by human DNA Pol λ
title_full_unstemmed The catalytic cycle for ribonucleotide incorporation by human DNA Pol λ
title_short The catalytic cycle for ribonucleotide incorporation by human DNA Pol λ
title_sort catalytic cycle for ribonucleotide incorporation by human dna pol λ
topic RNA
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3424563/
https://www.ncbi.nlm.nih.gov/pubmed/22584622
http://dx.doi.org/10.1093/nar/gks413
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