Peptide Sequence and Cross-Link Structure Influence Translesion Synthesis Polymerase Bypass of

Qi Zhang1, Iwen Fu2, Suse Broyde2

  • 1Department of Medicinal Chemistry and the Masonic Cancer Center, University of Minnesota, Minneapolis, Minnesota 55455, United States.

PubMed

Insights

The peptide sequence of DNA-peptide cross-links (DpCs) influences how translesion synthesis (TLS) DNA polymerases replicate these lesions. Certain peptide sequences increase replication errors, impacting mutation rates and DNA repair fidelity.

Area of Science:

  • Molecular Biology
  • Biochemistry
  • Genetics

Background:

  • DNA-peptide cross-links (DpCs) are DNA lesions arising from DNA-protein cross-links (DPCs).
  • These lesions impede DNA replication and transcription, necessitating bypass mechanisms.
  • Translesion synthesis (TLS) DNA polymerases are key players in bypassing DNA adducts, with varying fidelity.

Purpose of the Study:

  • To investigate the impact of different peptide sequences on the efficiency and fidelity of TLS bypass of 5-formylcytosine (5fC)-mediated DpC lesions.
  • To compare the bypass capabilities of different TLS polymerases (hPol η, hPol ι, hPol κ) on DpC templates.
  • To elucidate the molecular mechanisms underlying lesion bypass fidelity using biochemical and computational methods.

Main Methods:

  • Primer extension assays using model DpC templates with varying peptide sequences and TLS polymerases.
  • High-performance liquid chromatography electrospray ionization mass spectrometry (HPLC-ESI-MS and HPLC-ESI-MS/MS) for product analysis.
  • Steady-state kinetic analyses to determine enzyme catalytic efficiencies.
  • Molecular modeling and molecular dynamics simulations to assess lesion-induced structural changes.

Main Results:

  • Human polymerase eta (hPol η) showed more efficient *in vitro* replication of DpC templates compared to hPol ι or hPol κ.
  • A specific DpC with peptide NH₂-RPK*PQQFFGLM-COOH exhibited higher error-prone bypass by hPol η, leading to C → T transitions and deletions.
  • While error-free replication was generally more efficient, hPol η displayed higher catalytic efficiency for dAMP misincorporation opposite the mutagenic DpC lesion.
  • Molecular simulations revealed that different DpC lesions induce distinct perturbations in the active site geometry, influencing base pairing fidelity.

Conclusions:

  • The peptide sequence and conjugation chemistry of DpC lesions significantly influence the fidelity of TLS polymerase bypass.
  • Specific DpC structures can promote mutagenic bypass, highlighting the role of lesion context in DNA damage tolerance.
  • Understanding these interactions is crucial for comprehending DNA repair pathways and potential therapeutic strategies.

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