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Conformational Insights into the Lesion and Sequence Effects for Arylamine-Induced Translesion DNA Synthesis: (19)F NMR, Surface Plasmon Resonance, and Primer Kinetic Studies

[Image: see text] Adduct-induced DNA damage can affect transcription efficiency and DNA replication and repair. We previously investigated the effects of the 3′-next flanking base (G*CT vs G*CA; G*, FABP, N-(2′-deoxyguanosin-8-yl)-4′-fluoro-4-aminobiphenyl; FAF, N-(2′-deoxyguanosin-8-yl)-7-fluoro-2-...

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Autores principales: Jain, Vipin, Vaidyanathan, Vaidyanathan G., Patnaik, Satyakam, Gopal, Sathyaraj, Cho, Bongsup P.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: American Chemical Society 2014
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4075988/
https://www.ncbi.nlm.nih.gov/pubmed/24915610
http://dx.doi.org/10.1021/bi5003212
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author Jain, Vipin
Vaidyanathan, Vaidyanathan G.
Patnaik, Satyakam
Gopal, Sathyaraj
Cho, Bongsup P.
author_facet Jain, Vipin
Vaidyanathan, Vaidyanathan G.
Patnaik, Satyakam
Gopal, Sathyaraj
Cho, Bongsup P.
author_sort Jain, Vipin
collection PubMed
description [Image: see text] Adduct-induced DNA damage can affect transcription efficiency and DNA replication and repair. We previously investigated the effects of the 3′-next flanking base (G*CT vs G*CA; G*, FABP, N-(2′-deoxyguanosin-8-yl)-4′-fluoro-4-aminobiphenyl; FAF, N-(2′-deoxyguanosin-8-yl)-7-fluoro-2-aminofluorene) on the conformation of arylamine-DNA lesions in relation to E. coli nucleotide excision repair ( V. Jain, B. Hilton, B. Lin, S. Patnaik, F. Liang, E. Darian, Y. Zou, A. D. Mackerell Jr., and B. P. Cho (2013) Nucleic Acids Res., 41, 869−88023180767). Here, we report the differential effects of the same pair of sequences on DNA replication in vitro by the polymerases exofree Klenow fragment (Kf-exo(–)) and Dpo4. We obtained dynamic (19)F NMR spectra for two 19-mer modified templates during primer elongation: G*CA [d(5′-CTTACCATCG*CAACCATTC-3′)] and G*CT [d(5′-CTTACCATCG*CTACCATTC-3′)]. We found that lesion stacking is favored in the G*CT sequence compared to the G*CA counterpart. Surface plasmon resonance binding results showed consistently weaker affinities for the modified DNA with the binding strength in the order of FABP > FAF and G*CA > G*CT. Primer extension was stalled at (n) and near (n – 1 and n + 1) the lesion site, and the extent of blockage and the extension rates across the lesion were influenced by not only the DNA sequences but also the nature of the adduct’s chemical structure (FAF vs FABP) and the polymerase employed (Kf-exo(–) vs Dpo4). Steady-state kinetics analysis with Kf-exo(–) revealed the most dramatic sequence and lesion effects at the lesion (n) and postinsertion (n + 1) sites, respectively. Taken together, these results provide insights into the important role of lesion-induced conformational heterogeneity in modulating translesion DNA synthesis.
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spelling pubmed-40759882015-05-29 Conformational Insights into the Lesion and Sequence Effects for Arylamine-Induced Translesion DNA Synthesis: (19)F NMR, Surface Plasmon Resonance, and Primer Kinetic Studies Jain, Vipin Vaidyanathan, Vaidyanathan G. Patnaik, Satyakam Gopal, Sathyaraj Cho, Bongsup P. Biochemistry [Image: see text] Adduct-induced DNA damage can affect transcription efficiency and DNA replication and repair. We previously investigated the effects of the 3′-next flanking base (G*CT vs G*CA; G*, FABP, N-(2′-deoxyguanosin-8-yl)-4′-fluoro-4-aminobiphenyl; FAF, N-(2′-deoxyguanosin-8-yl)-7-fluoro-2-aminofluorene) on the conformation of arylamine-DNA lesions in relation to E. coli nucleotide excision repair ( V. Jain, B. Hilton, B. Lin, S. Patnaik, F. Liang, E. Darian, Y. Zou, A. D. Mackerell Jr., and B. P. Cho (2013) Nucleic Acids Res., 41, 869−88023180767). Here, we report the differential effects of the same pair of sequences on DNA replication in vitro by the polymerases exofree Klenow fragment (Kf-exo(–)) and Dpo4. We obtained dynamic (19)F NMR spectra for two 19-mer modified templates during primer elongation: G*CA [d(5′-CTTACCATCG*CAACCATTC-3′)] and G*CT [d(5′-CTTACCATCG*CTACCATTC-3′)]. We found that lesion stacking is favored in the G*CT sequence compared to the G*CA counterpart. Surface plasmon resonance binding results showed consistently weaker affinities for the modified DNA with the binding strength in the order of FABP > FAF and G*CA > G*CT. Primer extension was stalled at (n) and near (n – 1 and n + 1) the lesion site, and the extent of blockage and the extension rates across the lesion were influenced by not only the DNA sequences but also the nature of the adduct’s chemical structure (FAF vs FABP) and the polymerase employed (Kf-exo(–) vs Dpo4). Steady-state kinetics analysis with Kf-exo(–) revealed the most dramatic sequence and lesion effects at the lesion (n) and postinsertion (n + 1) sites, respectively. Taken together, these results provide insights into the important role of lesion-induced conformational heterogeneity in modulating translesion DNA synthesis. American Chemical Society 2014-05-29 2014-06-24 /pmc/articles/PMC4075988/ /pubmed/24915610 http://dx.doi.org/10.1021/bi5003212 Text en Copyright © 2014 American Chemical Society Terms of Use (http://pubs.acs.org/page/policy/authorchoice_termsofuse.html)
spellingShingle Jain, Vipin
Vaidyanathan, Vaidyanathan G.
Patnaik, Satyakam
Gopal, Sathyaraj
Cho, Bongsup P.
Conformational Insights into the Lesion and Sequence Effects for Arylamine-Induced Translesion DNA Synthesis: (19)F NMR, Surface Plasmon Resonance, and Primer Kinetic Studies
title Conformational Insights into the Lesion and Sequence Effects for Arylamine-Induced Translesion DNA Synthesis: (19)F NMR, Surface Plasmon Resonance, and Primer Kinetic Studies
title_full Conformational Insights into the Lesion and Sequence Effects for Arylamine-Induced Translesion DNA Synthesis: (19)F NMR, Surface Plasmon Resonance, and Primer Kinetic Studies
title_fullStr Conformational Insights into the Lesion and Sequence Effects for Arylamine-Induced Translesion DNA Synthesis: (19)F NMR, Surface Plasmon Resonance, and Primer Kinetic Studies
title_full_unstemmed Conformational Insights into the Lesion and Sequence Effects for Arylamine-Induced Translesion DNA Synthesis: (19)F NMR, Surface Plasmon Resonance, and Primer Kinetic Studies
title_short Conformational Insights into the Lesion and Sequence Effects for Arylamine-Induced Translesion DNA Synthesis: (19)F NMR, Surface Plasmon Resonance, and Primer Kinetic Studies
title_sort conformational insights into the lesion and sequence effects for arylamine-induced translesion dna synthesis: (19)f nmr, surface plasmon resonance, and primer kinetic studies
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4075988/
https://www.ncbi.nlm.nih.gov/pubmed/24915610
http://dx.doi.org/10.1021/bi5003212
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