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TRAN VAN NHIEU, G.

Publications and source records attributed to TRAN VAN NHIEU, G..

3 recordsLinked to original sources

Enteropathogenic E. coli-mediated Fast and Coordinated Ca2+ responses regulate NF-κB activation

Enteropathogenic Escherichia coli (EPEC) is a major bacterial enteropathogen causing infectious diarrhea among children in developing countries. Here, we found that EPEC induced isolated Ca2+ responses in epithelial cells, triggered by extracellular ATP (eATP). These responses were dependent on type III secretion (T3S) and down-regulated by the bacterial secreted protease EspC, consistent with eATP released by the T3S translocon pore-forming activity in host membranes. By performing high speed Ca2+ imaging, we uncovered that at the onset of infection, low eATP levels triggered Ca2+-responses involving the whole cell but showing the small amplitude and fast kinetics usually associated with local Ca2+ responses. The findings, supported by theoretical modeling, evocate a conceptual shift whereby low amounts of inositol 1, 4, 5-trisphosphate (IP3) induced by low eATP levels and subsequent moderate Ca2+ release enable the fast coordination of IP3 receptor cluster activation throughout the cell. Importantly, these yet undescribed coordinated fast responses occurred over prolonged time periods and defined a cell state with dampened activation of the pro-inflammatory transcriptional activator NF-kB associated with a decrease in its Ca2+-dependent O-linked {beta}-N-acetylglucosamine modification.

cell biology↗

A pre-loaded and assembled human Ago2-miRISC orchestrates Shigella-induced vacuolar rupture through the targeting of RhoGDIα

The enteroinvasive bacterium Shigella flexneri causes bacillary dysentery. It invades intestinal epithelial cells and forms a bacterium-containing vacuole, which it rapidly ruptures to reach the cytosol. Here, we found that human Argonaute 2 (Ago2), the central component of miRNA-induced silencing complex (miRISC), positively regulates early steps of Shigella infection, including vacuolar rupture. This is consistent with the rapid recruitment of Ago2 at Shigella entry foci. The ability of Ago2 to form an assembled miRISC was found required for vacuolar maturation, while its slicer activity is dispensable for this process. Furthermore, we found that the RhoGTPase inhibitor RhoGDI is targeted by specific miRNAs, pre-loaded in Ago2, which, collectively, accelerate vacuolar rupture. Therefore, a pre-loaded and assembled Ago2-miRISC orchestrates vacuolar maturation by targeting RhoGDI. These findings may have wider implications in the understanding of how stored Ago2-loaded miRNAs control immediate steps of infection, prior to the differential expression of microbe-responsive miRNAs.

molecular biology↗

Ca2+ Regulation of Myosin II and Myosin VI during Rupture of the Shigella-Containing Vacuole

Shigella, the causative agent of bacillary dysentery, invades epithelial cells to colonize the intestinal mucosa. Following invasion, Shigella is enclosed in a vacuole that needs to rupture for bacterial intra-cytosolic replication. We show here that rupture of the Shigella vacuole requires Ca2+ influx leading to long lasting local Ca2+ increases that regulate actin dynamics affecting the Shigella vacuole integrity. These Ca2+ increases promote vacuolar rupture by activating myosin II associated with actin filaments in membrane ruffles distant from the vacuole, while tethering myosin VI at the actin coat-surrounded vacuole. Ca2+ depletion and myosin II inhibition impair formation of the actin coat and vacuole rupture. Inhibition of myosin VI also delays rupture of vacuoles but lead to their tumbling. These findings highlight a role for Ca2+ in coordinating actin-based forces and constraints during early rupture steps of bacterial vacuole, that pull on vacuolar membranes and tether them to the actin cortex via myosin II and VI, respectively, a process relevant to intracellular pathogen and endomembrane trafficking.

microbiology↗