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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.
Abstract:
DNA-peptide cross-links (DpCs) are generated via the proteolytic cleavage of DNA-protein cross-links (DPCs), ubiquitous DNA lesions that block DNA replication and transcription. Translesion synthesis (TLS) DNA polymerases can facilitate replication bypass of DpC adducts in either an error-free or error-prone manner. We have previously demonstrated that local DNA sequence context significantly influences hPol η-mediated replication bypass of 5-formylcytosine (5fC)-mediated DpC lesions. However, the effects of peptide sequence on the efficiency and fidelity of the TLS bypass of 5fC-mediated DpC lesions remained unknown. In the present study, model DpCs containing three different peptides (NH2-GGGKGLGK*GGA-COOH, NH2-RPK*PQQFFGLM-COOH, and NH2-RPKPQQFK*GLM-COOH, K* = oxy-lysine) were subjected to primer extension experiments in the presence of TLS polymerases. We found that in vitro replication of DpC-containing templates by hPol η was more efficient than that catalyzed by hPol l or hPol κ. HPLC-ESI-MS and HPLC-ESI-MS/MS analyses of hPol η primer extension products indicated that the replication bypass of DpC containing NH2-RPK*PQQFFGLM-COOH was more error-prone than replication of the other two DpCs, leading to targeted C → T transitions, small deletions, and untargeted mutations downstream from the lesion. Steady-state kinetics investigation of hPol η-catalyzed nucleotide incorporation opposite the DpC lesions containing three different peptides revealed that, in all cases, error-free replication was far more efficient than incorporation of incorrect nucleotides. For mutagenic bypass, the catalytic efficiency of hPol η-mediated dAMP misincorporation opposite DpC with peptide NH2-RPK*PQQFFGLM-COOH was higher than adenine misincorporation across from the other two DpCs and unmodified dC. These steady-state kinetic findings were further explained by molecular modeling and molecular dynamics simulations, revealing that the three different DpC lesions impose varying perturbations to the geometry of the C-G and C-A pairs at the hPol η active site. Collectively, our results reveal that the peptide sequence and conjugation chemistry of DpC lesions can influence the fidelity of lesion bypass by TLS polymerases.
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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