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Su, A. Y.

Publications and source records attributed to Su, A. Y..

2 recordsLinked to original sources

Synergistic cytotoxicity with Chk1/Chk2-inhibitor prexasertib in small cell lung cancer following lurbinectedin-induced G2/M-checkpoint activation

Small cell lung cancer (SCLC) is an aggressive thoracic malignancy with a 5-year survival rate under 7%. Lack of meaningful improvement of survival rates despite advances in treatment highlights the need for novel therapeutic approaches to improve patient outcomes. Currently, carboplatin + etoposide chemotherapy is the backbone of treatment for most patients. Lurbinectedin is a cytotoxic drug with unique activity against small cell lung cancers in patients with extensive disease and acquired resistance to carboplatin + etoposide. Our preliminary experiments in human SCLC cell lines treated with lurbinectedin demonstrated a dose-dependent increase in Chk1 and Chk2 protein phosphorylation. A consequence of the frequent TP53 inactivation in SCLC is tumor cell reliance on G2/M cell cycle checkpoints involving Chk1/Chk2 to maintain genomic integrity and allow cell survival following DNA damage. We hypothesised that inhibition of Chk1/Chk2-dependent responses with dual-inhibitor prexasertib (ACR-368), would potentiate tumor cell killing by lurbinectedin potentially in a synergistic manner. SCLC cells underwent cell death following single agent prexasertib exposure and this further increased with prexasertib + lurbinectedin combination. Highest Single Agent (HSA) synergy score calculations based on cell viability measurements suggested synergistic action between prexasertib and lurbinectedin at select dose combinations. Western blot analysis of intracellular proteins from SCLC cells treated with both drugs demonstrate dynamic, dose-dependent effects on Chk2, Chk1 and downstream effector Wee1, with lurbinectedin increasing intracellular levels of pChk1 and pChk2, while co-treatment with prexasertib deregulates this process across multiple human-derived cell lines. Synergistic killing was associated with elevated {psi}-H2AX levels indicative of DNA double strand breaks and PARP-cleavage due to apoptotic caspase activation. Despite some heterogeneity among treated SCLC cells, the increased phosphorylation of Chk1 was noted at several kinase-activating sites including Serine 296, 317, and 345 while Chk2 Tyrosine 68 phosphorylation was consistently upregulated by lurbinectedin. The results provide a preclinical mechanistic rationale for overcoming a pro-survival, drug resistance-promoting checkpoint pathway to enhance the unique efficacy of single-agent lurbinectedin in patients with SCLC.

cancer biology↗

microRNA-21 promotes dysregulated lipid metabolism and hepatocellular carcinoma

Backgrounds and AimsThe prevalence of hepatocellular carcinoma (HCC) is rising in parallel with increasing obesity and metabolic dysfunction-associated steatohepatitis (MASH). MicroRNAs are key post-transcriptional regulators of gene expression and are attractive targets for HCC therapy. Here we sought to identify and characterize dysregulated microRNAs in MASH-driven HCC (MASH-HCC). Approach and ResultsWe profiled microRNA expression in liver tissue from patients with MASH and/or MASH-HCC and in zebrafish HCC driven by activated {beta}-catenin (ABC), one of the most commonly mutated oncogenes in MASH-HCC. We found significant overlap between dysregulated human and zebrafish miRNAs, including miR-21, which was increasingly upregulated from normal liver to MASH to MASH-HCC. We generated transgenic zebrafish that overexpress or sponge (downregulate) miR-21. We found that miR-21 overexpression caused larval liver overgrowth and increased HCC while miR-21 sponge suppressed {beta}-catenin-driven larval liver overgrowth. By performing histologic and lipidomic analysis, we found that overexpression of miR-21, like ABC, suppressed lipid accumulation in response to a high cholesterol diet and increased accumulation of acylcarnitines. ConclusionsHere we characterize microRNA dysregulation in MASH and MASH-HCC in patients, identify miR-21 as increasingly dysregulated from MASH to MASH-HCC, and delineate the impacts of miR-21 overexpression on lipid metabolism and hepatocarcinogenesis in zebrafish {beta}-catenin-driven HCC. This study shows that miR-21, which is similarly dysregulated in human and zebrafish HCC, promotes lipid metabolic changes that may help drive hepatocarcinogenesis.

cancer biology↗