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Altshuller, M.

Publications and source records attributed to Altshuller, M..

2 recordsLinked to original sources

ATM promotes reversed fork processing during DNA interstrand cross-link repair

During replication-coupled DNA interstrand cross-link (ICL) repair, fork reversal is thought to enable the Fanconi anemia (FA) pathway to resolve the ICL through nucleolytic incisions. Subsequent fork restoration then allows nascent DNA strand extension past the lesion. Although these fork remodeling events are crucial for ICL repair, their regulation remains poorly understood. Here, we use cell-free Xenopus egg extracts to investigate fork dynamics during ICL repair by the FA pathway. We find that the ataxia telangiectasia-mutated (ATM) kinase is activated concomitantly with fork reversal and promotes resection of the reversed fork intermediate. This resection depends on the coordinated activities of the EXO1 and DNA2 nucleases. Our data indicate that EXO1 initiates 5 to 3 resection of nascent lagging strands in the regressed arm, while DNA2 performs 5 to 3 resection of recessed lagging strands. We further show that the inhibition of protein phosphatase 2A (PP2A) during ICL repair results in ATM hyperactivation, reversed fork over-resection, and formation of aberrant end-joining products, indicating that PP2A counteracts ATM signaling to constrain reversed fork resection. Taken together, this work implicates reversed forks as substrates for ATM activation and reveals a phospho-regulatory circuit that governs reversed fork processing during ICL repair.

molecular biology↗

The Fanconi anemia pathway repairs colibactin-induced DNA interstrand cross-links

Colibactin is a secondary metabolite produced by bacteria present in the human gut and is implicated in the progression of colorectal cancer and inflammatory bowel disease. This genotoxin alkylates deoxyadenosines on opposite strands of host cell DNA to produce DNA interstrand cross-links (ICLs) that block DNA replication. While cells have evolved multiple mechanisms to resolve ("unhook") ICLs encountered by the replication machinery, little is known about which of these pathways promote resistance to colibactin-induced ICLs. Here, we use Xenopus egg extracts to investigate replication-coupled repair of plasmids engineered to contain site-specific colibactin-ICLs. We show that replication fork stalling at a colibactin-ICL leads to replisome disassembly and activation of the Fanconi anemia ICL repair pathway, which unhooks the colibactin-ICL through nucleolytic incisions. These incisions generate a DNA double-strand break intermediate in one sister chromatid, which can be repaired by homologous recombination, and a monoadduct ("ICL remnant") in the other. Our data indicate that translesion synthesis past the colibactin-ICL remnant depends on Pol{eta} and a Pol{kappa}-REV1-Pol{zeta} polymerase complex. Although translesion synthesis past colibactin-induced DNA damage is frequently error-free, it can introduce T>N point mutations that partially recapitulate the mutation signature associated with colibactin exposure in vivo. Taken together, our work provides a biochemical framework for understanding how cells tolerate a naturally-occurring and clinically-relevant ICL.

molecular biology↗