5dgb Citations

Structural and Kinetic Analysis of Miscoding Opposite the DNA Adduct 1,N6-Ethenodeoxyadenosine by Human Translesion DNA Polymerase η.

J Biol Chem 291 14134-14145 (2016)
Related entries: 5dg7, 5dg8, 5dg9, 5dga

Cited: 10 times
EuropePMC logo PMID: 27226627

Abstract

1,N(6)-Ethenodeoxyadenosine (1,N(6)-ϵdA) is the major etheno lesion formed in the reaction of DNA with epoxides substituted with good leaving groups (e.g. vinyl chloride epoxide). This lesion is also formed endogenously in DNA from lipid oxidation. Recombinant human DNA polymerase η (hpol η) can replicate oligonucleotide templates containing 1,N(6)-ϵdA. In steady-state kinetic analysis, hpol η preferred to incorporate dATP and dGTP, compared with dTTP. Mass spectral analysis of incorporation products also showed preferred purine (A, G) incorporation and extensive -1 frameshifts, suggesting pairing of the inserted purine and slippage before further replication. Five x-ray crystal structures of hpol η ternary complexes were determined, three at the insertion and two at the extension stage. Two insertion complexes revealed incoming non-hydrolyzable dATP or dGTP analogs not pairing with but instead in a staggered configuration relative to 1,N(6)-ϵdA in the anti conformation, thus opposite the 5'-T in the template, explaining the proclivity for frameshift misincorporation. In another insertion complex, dTTP was positioned opposite 1,N(6)-ϵdA, and the adduct base was in the syn conformation, with formation of two hydrogen bonds. At the extension stage, with either an incorporated dA or dT opposite 1,N(6)-ϵdA and 2'-deoxythymidine-5'-[(α,β)-imido]triphosphate opposite the 5'-A, the 3'-terminal nucleoside of the primer was disordered, consistent with the tendency not to incorporate dTTP opposite 1,N(6)-ϵdA. Collectively, the results show a preference for purine pairing opposite 1,N(6)-ϵdA and for -1 frameshifts.

Articles - 5dgb mentioned but not cited (1)

  1. Structural and Kinetic Analysis of Miscoding Opposite the DNA Adduct 1,N6-Ethenodeoxyadenosine by Human Translesion DNA Polymerase η. Patra A, Su Y, Zhang Q, Johnson KM, Guengerich FP, Egli M. J Biol Chem 291 14134-14145 (2016)


Reviews citing this publication (2)

  1. Formation and repair of oxidatively generated damage in cellular DNA. Cadet J, Davies KJA, Medeiros MH, Di Mascio P, Wagner JR. Free Radic Biol Med 107 13-34 (2017)
  2. Etheno adducts: from tRNA modifications to DNA adducts and back to miscoding ribonucleotides. Guengerich FP, Ghodke PP. Genes Environ 43 24 (2021)

Articles citing this publication (7)

  1. Bypass of DNA-Protein Cross-links Conjugated to the 7-Deazaguanine Position of DNA by Translesion Synthesis Polymerases. Wickramaratne S, Ji S, Mukherjee S, Su Y, Pence MG, Lior-Hoffmann L, Fu I, Broyde S, Guengerich FP, Distefano M, Schärer OD, Sham YY, Tretyakova N. J Biol Chem 291 23589-23603 (2016)
  2. Human DNA polymerase η has reverse transcriptase activity in cellular environments. Su Y, Ghodke PP, Egli M, Li L, Wang Y, Guengerich FP. J Biol Chem 294 6073-6081 (2019)
  3. Mechanisms of Insertion of dCTP and dTTP Opposite the DNA Lesion O6-Methyl-2'-deoxyguanosine by Human DNA Polymerase η. Patra A, Zhang Q, Guengerich FP, Egli M. J Biol Chem 291 24304-24313 (2016)
  4. Impact of 1,N 6-ethenoadenosine, a damaged ribonucleotide in DNA, on translesion synthesis and repair. Ghodke PP, Guengerich FP. J Biol Chem 295 6092-6107 (2020)
  5. Tri-Cyclic Nucleobase Analogs and their Ribosides as Substrates of Purine-Nucleoside Phosphorylases. II Guanine and Isoguanine Derivatives. Stachelska-Wierzchowska A, Wierzchowski J, Górka M, Bzowska A, Wielgus-Kutrowska B. Molecules 24 E1493 (2019)
  6. Enzymatic bypass and the structural basis of miscoding opposite the DNA adduct 1,N2-ethenodeoxyguanosine by human DNA translesion polymerase η. Ghodke PP, Mali JR, Patra A, Rizzo CJ, Guengerich FP, Egli M. J Biol Chem 296 100642 (2021)
  7. Tricyclic Nucleobase Analogs and Their Ribosides as Substrates and Inhibitors of Purine-Nucleoside Phosphorylases III. Aminopurine Derivatives. Stachelska-Wierzchowska A, Wierzchowski J, Górka M, Bzowska A, Stolarski R, Wielgus-Kutrowska B. Molecules 25 E681 (2020)