Mismatched and matched dNTP incorporation by DNA polymerase beta proceed via analogous kinetic pathways

Michelle P Roettger1, Marina Bakhtina, Ming-Daw Tsai

  • 1The Ohio State Biochemistry Program, The Ohio State University, Columbus, Ohio 43210, USA.

Biochemistry
|August 23, 2008
PubMed

Insights

DNA polymerase beta (Pol beta) fidelity depends on both correct and incorrect nucleotide incorporation. This study reveals mismatched incorporation follows similar pathways to matched incorporation, with fidelity arising from destabilizing mismatched complexes.

Area of Science:

  • Molecular Biology
  • Biochemistry
  • Enzymology

Background:

  • DNA polymerase beta (Pol beta) plays a crucial role in DNA repair.
  • Understanding Pol beta fidelity requires examining both matched and mismatched nucleotide incorporation.
  • Previous studies focused mainly on matched nucleotide incorporation.

Purpose of the Study:

  • To investigate the mechanism of mismatched nucleotide incorporation by wild-type (WT) Pol beta and its I260Q variant.
  • To compare the kinetic pathways of matched and mismatched dNTP incorporation.
  • To elucidate the basis of Pol beta's fidelity and the error-proneness of the I260Q mutant.

Main Methods:

  • Stopped-flow fluorescence assays.
  • Steady-state fluorescence spectroscopy.
  • Pre-steady-state kinetic analysis.

Main Results:

  • Mismatched dNTP incorporation by both WT and I260Q Pol beta follows biphasic fluorescence kinetics, analogous to matched incorporation.
  • The I260Q mutant exhibits enhanced efficiency of mismatched incorporation due to a reduced ability to destabilize mismatched ternary complexes.
  • Both enzymes show similar correct dNTP insertion profiles, with fidelity linked to destabilization of the mismatched closed ternary complex.

Conclusions:

  • Mismatched and matched dNTP incorporations proceed via analogous kinetic pathways.
  • Pol beta fidelity originates from the destabilization of mismatched closed ternary complexes and the chemical transition state.
  • The I260Q mutation compromises fidelity by impairing the destabilization of mismatched ternary complexes.

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