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Biology subjects

McMurrick, P. J.

Publications and source records attributed to McMurrick, P. J..

3 recordsLinked to original sources

Helicobacter pylori vacuolating cytotoxin A exploits human endosomes for intracellular activation

Helicobacter pylori infection is the main cause of gastric cancer. Vacuolating cytotoxin A (VacA) is a H. pylori pore-forming toxin and a key determinant of gastric cancer risk. VacA is secreted as an 88-kDa polypeptide (p88) that upon interaction with host cells induces cytotoxic effects, including cell vacuolation and mitochondrial dysfunction. These effects are currently believed to be due to VacA p88 accumulating inside host cells and forming oligomeric anion-specific channels in membranes of intracellular compartments. However, the molecular nature of intracellular VacA channels in host cells remains undefined. Here we show that VacA p88 does not accumulate inside human epithelial cells, but instead is rapidly processed in endosomes into smaller p31/p28 and p37 products in a manner that precedes VacA-induced vacuolation. VacA processing requires endosomal acidification and concerted cleavage by multiple endo-lysosomal proteases including cathepsins. In situ structural mapping reveals that upon processing, the toxins central hydrophilic linker and globular C-terminus are excised, whereas oligomerization determinants are retained. Congruently, the processed products are constituents of a high-molecular-weight complex inside the host cell [boxh] which we propose is the intracellular, mature and active VacA pore. These findings suggest that VacA exploits human endosomes for proteolytic processing and intracellular activation. Significance StatementHelicobacter pylori is a cancer-causing bacterium that infects the stomach of billions of people worldwide. Vacuolating cytotoxin A (VacA) is an important H. pylori virulence factor and its activity directly correlates with gastric carcinogenesis. Yet despite decades of intense research, the mechanisms underlying VacA activity in human cells remain incompletely understood. Here, we present evidence suggesting that VacA is activated inside human cells by multi-step proteolytic processing involving endo-lysosomal proteases including cathepsins. We also track and identify the functional processed VacA isoforms in host cells. These results revolutionize our understanding of the mechanism of VacA activation in human cells, whilst expanding our knowledge of the diversity of microbial virulence factors that exploit human endo-lysosomes for pathogenesis.

molecular biology↗

Aspirin synergizes with regorafenib to reduce growth of colorectal cancer

PurposeRegorafenib is a multi-kinase inhibitor approved for refractory metastatic colorectal cancer. Previous studies have suggested that combining kinase inhibitors with aspirin may improve patient outcomes. We aimed to determine the effects of aspirin and regorafenib combination treatment in preclinical models of colorectal cancer. Experimental DesignSW480, RKO and LIM1215 colorectal cancer cell lines were treated with aspirin and regorafenib to determine effects on proliferation and cytotoxicity. RNA sequencing and Western blotting were performed to explore underlying molecular effects. Aspirin and regorafenib combination treatment was also tested using organoids derived from three human colorectal cancer tissue specimens. For the in vivo study, SW480-derived tumors were established in athymic mice. Tumor volume was measured during treatment with aspirin and regorafenib, followed by immunohistochemical staining for markers of proliferation and apoptosis. ResultsAspirin and regorafenib synergistically inhibited proliferation of colorectal cancer cell lines and patient-derived organoids, irrespective of KRAS or BRAF mutation status. This was associated with inhibition of the PI3K-Akt-mTOR pathway and activation of the AMPK pathway. Aspirin and regorafenib effectively inhibited growth of microsatellite stable KRAS-mutant SW480-derived tumors in vivo. Immunohistochemical staining for Ki67 and cleaved caspase 3 showed that combination treatment elicited a synergistic anti-proliferative effect, in addition to a pro-apoptotic effect that was driven by regorafenib. ConclusionsAspirin and regorafenib demonstrate synergistic anti-proliferative effects in preclinical models of colorectal cancer. This suggests that combining regorafenib with aspirin may be an improved treatment strategy for patients with refractory metastatic colorectal cancer.

cancer biology↗

SRSF3 confers selective processing of miR-17-92 cluster to promote tumorigenic properties in colorectal cancer

Almost a half of microRNAs (miRNAs) in mammalian cells are generated from polycistronic primary transcripts encoding more than one miRNA. Mature miRNAs from polycistronic clusters frequently regulate complementary sets of target mRNAs. How the processing of individual miRNAs within the clusters is controlled to give rise to distinct miRNA levels in vivo is not fully understood. Our investigation of SRSF3 (Serine-Arginine Rich Splicing Factor3) regulated noncoding RNAs in pluripotent cells identified miR-17-92 cluster as a key SRSF3 target, SRSF3 binding to the CNNC motif 17-18nt downstream of the miRNA stem loop. Here we show that SRSF3 binding site context, not merely the distance from the stem loop, within primary transcript is a critical determinant of the processing efficiency of distinct miRNAs derived from the miR-17-92 cluster. SRSF3 specifically enhanced the processing of two paralog miRNAs, miR-17 and miR-20a, targeting overlapping mRNAs including the cell cycle inhibitor CDKN1A/p21. Functional analysis demonstrated that SRSF3 inhibits CDKN1A expression and promotes cell cycle and self-renewal through the miRNA processing pathway both in normal pluripotent stem cells and cancer cells. Strikingly, analysis of colorectal cancer tumour-normal pairs demonstrated that the SRSF3-regulated miRNA processing pathway is present in a large proportion of colorectal cancer patients and distinguishes poorly differentiated high-grade tumours. Our research uncovers a critical role of SRSF3 in selective processing of miR-17-92 miRNAs, which mechanistically and functionally links SRSF3 to hallmark features of cancer.

cell biology↗