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Biology subjects

Dagg, R. A.

Publications and source records attributed to Dagg, R. A..

2 recordsLinked to original sources

Mutational and functional heterogeneity of homology-directed repair deficiency and clinical implications

Homology-directed repair deficiency (HRd) encompasses mutations in multiple genes yet is treated clinically as a single entity. Here, through parallel analyses of isogenic knockouts of multiple HR pathway genes, integrating multi-omic analyses with genome-wide CRISPR-Cas9-dependency and resistance screens, we show that HRd is not a single entity but exists along a molecular and functional continuum. BRCA1, BRCA2, PALB2, RAD51C, and RAD51D mutants shared many HRd-associated mutational signatures, while RAD51B, BRIP1, CDK12 exhibited distinct genomic patterns. Functional heterogeneity was equally apparent: synthetic lethal interactions including CIP2A and a novel dependency on PRDX1 were penetrant across most HRd genotypes, whereas FANCM dependency was linked to HRd subtypes characterized by tandem duplications. PARPi resistance screens in distinct HRd contexts uncovered BRIP1 and RECQL5 as new BRCA2-specific resistance genes. HRd is thus a complex continuum, underscoring why modernizing the molecular taxonomy utilizing all genomic features available per patient is crucial to informing precision interventions.

genomics↗

Nucleophagy removes cytotoxic trapped PARP1

Poly (ADP-Ribose) Polymerase inhibitors (PARPi) induce cytotoxicity in homologous recombination repair (HRR)-deficient cancers by causing PARP1 to become trapped on chromatin, resulting in irreparable replication-associated DNA damage. Although increased clearance of trapped PARP1 from chromatin reduces the sensitivity of cancer cells to PARPi, details surrounding this process remain unclear. PARPi exposure is known to cause increased autophagy flux, whilst autophagy inhibition can hypersensitise cells to PARPi. Using various biochemical, cell biological and live imaging-based assays, we found that trapped PARP1 is cleared by nucleophagy, the selective autophagy of nuclear substrates. Specifically, the nucleophagy of trapped PARP1 was orchestrated by the selective autophagy receptor TEX264 and its partner segregase p97/VCP. TEX264 mediates this process by directly interacting with trapped PARP1, thus bridging PARP1 to the autophagosomal resident protein LC3 for processing via autophagy. Impeding this process, either chemically or genetically, heightened PARP1 trapping, leading to accumulation of protein aggregates, replication-associated DNA damage and cell lethality, re-sensitising PARPi-resistant cells to various PARPi. In conclusion, we show that nucleophagy acts in a cytoprotective manner to directly target PARPi-induced trapped PARP1 for degradation.

cell biology↗