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Biology subjects

Divine, M. E.

Publications and source records attributed to Divine, M. E..

2 recordsLinked to original sources

A functional screen for ubiquitin regulation identifies an E3 ligase secreted by Pseudomonas aeruginosa

Ubiquitin signaling controls many aspects of eukaryotic biology, including targeted protein degradation and immune defense. Remarkably, invading bacterial pathogens have adapted secreted effector proteins that hijack host ubiquitination to gain control over host responses. These ubiquitin-targeted effectors can exhibit, for example, E3 ligase or deubiquitinase activities, often without any sequence or structural homology to eukaryotic ubiquitin regulators. Such convergence in function poses a challenge to the discovery of additional bacterial virulence factors that target ubiquitin. To overcome this, we have developed a workflow to harvest natively secreted bacterial effectors and functionally screen them for ubiquitin regulatory activities. After benchmarking this approach on diverse ligase and deubiquitinase activities from Salmonella Typhimurium, Enteropathogenic Escherichia coli, and Shigella flexneri, we applied it to the identification of a cryptic E3 ligase activity secreted by Pseudomonas aeruginosa. We identified an unreported P. aeruginosa E3 ligase, which we have termed Pseudomonas Ub ligase 1 (PUL-1), that resembles none of the other E3 ligases previously established in or outside of the eukaryotic system. Importantly, in an animal model of P. aeruginosa infection, PUL-1 ligase activity plays an important role in regulating virulence. Thus, our workflow for the functional identification of ubiquitin-targeted effector proteins carries promise for expanding our appreciation of how host ubiquitin regulation contributes to bacterial pathogenesis.

microbiology↗

Septins and K63 chains form separate bacterial microdomains during autophagy of entrapped Shigella

During host cell invasion, Shigella escapes to the cytosol and polymerizes actin for cell-to-cell spread. To restrict cell-to-cell spread, host cells employ cell-autonomous immune responses including antibacterial autophagy and septin cage entrapment. How septins interact with autophagy to target Shigella to destruction is poorly understood. Here, we employed a correlative light and cryo-soft X-ray tomography (cryo-SXT) pipeline to study Shigella septin cage entrapment in its near native state. Quantitative cryo-SXT showed that Shigella fragments mitochondria and enabled visualization of X-ray dense structures ([~]30 nm resolution) surrounding Shigella entrapped in septin cages. Using Airyscan confocal microscopy, we observed Lysine 63 (K63)-linked ubiquitin chains decorating septin caged entrapped Shigella. Remarkably, septins and K63 chains form separate bacterial microdomains, indicating they are recruited separately during antibacterial autophagy. Cryo-SXT and live cell imaging revealed an interaction between septins and LC3B-positive membranes during autophagy of Shigella. Together, these findings demonstrate how septin caged Shigella are targeted to autophagy and provide fundamental insights into autophagy-cytoskeleton interactions.

microbiology↗