HMCES DNA-protein cross-links promote template slippage during DNA replication
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During replication, nucleolytic processing of apurinic/apyrimidinic (AP) sites in single-stranded (ss)DNA is attenuated by the evolutionarily conserved 5-hydroxymethylcytosine binding, embryonic-specific (HMCES) protein. HMCES forms a covalent thiazolidine linkage with the ring-opened aldehyde form of a ssDNA AP site to stabilize the AP site and suppress the formation of DNA double-strand breaks. The resulting HMCES DNA-protein cross-link (DPC) can then be digested by the SPRTN protease and bypassed through mutagenic translesion synthesis (TLS). Here, we use Xenopus egg extracts and molecular dynamics simulations to investigate how HMCES-DPC formation influences the mutagenicity of AP site bypass. We show that SPRTN processes the HMCES-DPC to a five amino acid peptide adduct prior to TLS. Surprisingly, the mutagenicity of HMCES-DPC bypass is insensitive to the extent of DPC proteolysis and depends only on cross-link formation, which traps the AP site in a more dynamic ring-opened configuration. We further show that the spectrum of mutations produced during bypass of HMCES-adducts strongly depends on the template strand nucleotide immediately 5’ of the AP site. Our data support a model in which HMCES-DPC formation increases the conformational flexibility of the DNA template, allowing template slippage and use of the 5’ template nucleotide to direct insertion opposite the adducted AP site.