Every time a cell copies its DNA before dividing, its genome is vulnerable to breakage—and a newly identified protein called MRNIP may be the key to preventing that damage from turning into cancer. DNA replication is a high-risk moment: chemotherapy drugs deliberately jam the replication machinery, causing the DNA "zipper" to get stuck. If the cell cannot free and repair the fork, the DNA breaks, and the cell dies. Cancer cells that survive chemotherapy have often evolved ways to stabilise these stuck forks. The protein MRNIP appears to do exactly that—it binds to replication forks, prevents them from being chewed up by a nuclease called MRE11, and helps the cell resist multiple chemotherapies. Without MRNIP, forks degrade and the genome becomes unstable. This is fundamental science. The researchers aim to work out exactly how MRNIP controls MRE11 at reversed forks, how it helps repair double-strand breaks caused by radiation, and what its three-dimensional structure looks like. They will also measure MRNIP levels in tumour samples—it is already underexpressed in 11% of ovarian adenocarcinomas. If MRNIP-deficient cancers form a distinct subgroup, the team will screen for genes those cells depend on, potentially revealing new drug targets. No immediate clinical application exists, but understanding how cells protect their DNA during replication has historically led directly to treatments like PARP inhibitors for BRCA-deficient cancers.
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Genome instability eg: a high mutation rate and/or the presence of chromosomal aberrations - can cause cancer, promote disease progression and drive the genetic variation underpinning therapeutic resistance. Since genomic DNA is constantly under threat from various sources of DNA damage, the cell has evolved elegant repair mechanisms to deal specifically with each type of lesion encountered. The most dangerous DNA lesions are Double-Strand Breaks (DSBs) - these are repaired either by inaccurate rejoining or by high-fidelity Homologous Recombination (HR), a process that uses the intact sister DNA sequence as a template to copy back the correct DNA code. Among the crucial players in DSB repair by HR are the tumour suppressors BRCA1/2 - found mutated in breast, ovarian and prostate cancers. Indeed, cancer-specific DNA repair defects also provide opportunities to implement precision medicine strategies, notably evidenced by the recent success of PARP inhibitors in the treatment of BRCA-deficient cancers. All cells must copy their DNA before they can divide and during DNA replication the genome is particularly vulnerable. DNA replication is carried out by a complex molecular machine that unwinds the two DNA strands, forming a fork-like structure akin to a partially done zipper. Many chemotherapy drugs work by altering DNA structure and causing the zipper to get stuck. If the zipper can be freed and zipped up, then the cell can proceed normally - but if it cannot, the zipper is prone to breakage. In cellular terms, this entails fork collapse, damaged DNA and cell death. The overall response to chemotherapy is determined by the ability of the cancer cell to deal with this scenario. It has become apparent that replication forks undergo a process of physical reversal upon encountering replication stresses or other genotoxic insults, the newly-made DNA reforms into a four-way structure described as 'chicken foot-like'. Recent work demonstrates crucial roles for several HR proteins including BRCA2, BRCA1, and RAD51 in promoting the stability of reversed forks. BRCA2 stabilises the fork by loading RAD51 onto the reversed arm - it is now apparent that RAD51 loading prevents genome instability induced by aberrant 'chewing' of the fork DNA by the nucleases MRE11 and EXO1. This function of BRCA2 is independent of its known role in DSB repair by HR. Despite significant advances in understanding the biology of the reversed fork, how MRE11 nuclease activity is regulated at reversed forks to prevent genome instability is poorly understood. We identified an uncharacterised protein called MRNIP (MRE11-RAD50-NBS1-Interacting Protein) as a novel factor that promotes DSB repair by HR. Our ongoing studies show that MRNIP binds to and stabilises replication forks, promoting fork progression, genome stability, and resistance to multiple chemotherapies. Loss of MRNIP results in marked MRE11-dependent replication fork degradation - overall our data points to a novel important genome stability mechanism. The enzyme PARP1 recruits MRE11 to replication forks - our initial data suggests that PARP may also recruit MRNIP - indeed, it is logical that regulators of MRE11 are co-recruited by PARP to prevent aberrant degradation. Our goals are to elucidate the mechanisms via which MRNIP promotes fork stability, as well as the DSB response to ionising radiation, to analyse MRNIP structure, and to develop assays to test how MRNIP influences MRE11 activity against DNA. We will also assess MRNIP levels in cancer tissues - MRNIP is underexpressed in some cancers including ovarian adenocarcinoma (11% of cancers), and thus an in-depth study of MRNIP levels could yield information leading to biomarker-based treatment strategies or prognostic indication. Should we identify a subset of MRNIP-deficient cancers, we will screen for genes that are required for survival of MRNIP-deficient cells, thus identifying potential novel targets for therapeutic intervention.
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