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Biology subjects

Barisaac, A. S.

Publications and source records attributed to Barisaac, A. S..

2 recordsLinked to original sources

SLAYER: Synthetic Lethality Analysis for Enhanced Targeted Therapy Implicates AhR inhibitor as a Target in RB1-Mutant Bladder Tumors

Synthetic lethality represents a promising therapeutic approach in precision oncology, yet systematic identification of clinically relevant synthetic lethal interactions remains challenging. Here we present SLAYER (Synthetic Lethality AnalYsis for Enhanced taRgeted therapy), a computational framework that integrates cancer genomic data and genome-wide CRISPR knockout screens to identify potential synthetic lethal interactions. SLAYER employs parallel analytical approaches examining both direct mutation-dependency associations and pathway-mediated relationships across 808 cancer cell lines. Our integrative method identified 4,332 statistically significant interactions, which were refined to 142 high-confidence candidates through stringent filtering for effect size, druggability, and clinical prevalence. Systematic validation against protein interaction databases revealed a 15-fold enrichment of known associations among SLAYER predictions compared to random gene pairs. Through pathway-level analysis, we identified inhibition of the aryl hydrocarbon receptor (AhR) as potentially synthetically lethal with RB1 mutations in bladder cancer. Experimental studies demonstrated selective sensitivity to AhR inhibition in RB1-mutant versus wild-type bladder cancer cells, which probably operates through indirect pathway-mediated mechanisms rather than direct genetic interaction. In summary, by integrating mutation profiles, gene dependencies, and pathway relationships, our approach provides a resource for investigating genetic vulnerabilities across cancer types.

bioinformatics↗

Targeting RBM10 deficiency in lung adenocarcinoma

The splicing factor RBM10 is frequently mutated in lung adenocarcinoma (LUAD) (9-25%). Most RBM10 cancer mutations are loss-of-function, correlating with increased tumorigenesis and limiting targeted therapy efficacy in EGFR-mutated lung cancer. Notably, therapeutic strategies leveraging RBM10 deficiency remain unexplored. Hence, we conducted RBM10 CRISPR-Cas9 synthetic lethality (SL) screen and identified [~]250 RBM10 SL genes, including WEE1 kinase. WEE1 inhibition sensitized RBM10-deficient LUAD cells in-vitro and in-vivo. Mechanistically, we identified a splicing-independent role of RBM10 in promoting replication fork progression that underpins RBM10-WEE1 SL. Also, we revealed that RBM10 is associated with active replication forks, which is reliant on PRIM1, an enzyme synthesizing RNA primers for Okazaki fragments. Functionally, we demonstrated that RBM10 serves as an anchor for recruiting HDAC1 and facilitates H4K16 deacetylation to maintain replication fork stability. Collectively, our data revealed a hitherto unrecognized function of RBM10 in fine-tuning DNA replication, and provide therapeutic arsenal for targeting RBM10-deficient tumors.

molecular biology↗