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Mark, H.

Publications and source records attributed to Mark, H..

2 recordsLinked to original sources

Structural basis of iron piracy by a prominent human gut symbiont

Iron is an essential element that can be growth-limiting in microbial communities, particularly those present within host organisms. To acquire iron, many bacteria secrete siderophores, secondary metabolites that chelate ferric iron. These iron chelates can be transported back into the cell via TonB-dependent transporters in the outer membrane, followed by intracellular liberation of the iron. Pathogenic Escherichia coli and Salmonella produce siderophores during gut infection. In response to iron starvation, the human gut symbiont Bacteroides thetaiotaomicron upregulates an iron piracy system, XusABC, which steals iron-bound siderophores from the invading pathogens. Here, we investigated the molecular details of xenosiderophore uptake across the outer membrane by the XusAB complex. Our crystal and cryogenic electron microscopy structures explain how the XusB lipoprotein recognises iron-bound xenosiderophores and passes them on to the XusA TonB-dependent transporter. Moreover, we show that Xus homologues can transport a variety of siderophores with different iron-chelating functional groups.

microbiology↗

Iterative remodeling of the mouse uterus requires Hedgehog signaling

The adult uterus regenerates in the human during the menstrual cycle, and remodels in the mouse during the estrous cycle. Decades of work has demonstrated that this process is controlled by cycling steroid hormones, estrogen and progesterone. However, downstream signaling pathways that link hormonal action to this regeneration and remodeling are yet to be identified in the cycling uterus. We set out to identify these pathways, with the overarching hypothesis that developmental signaling pathways are redeployed in the adult uterus to control remodeling in the mouse. We were surprised to find that the majority of Hedgehog signaling components were transcriptionally co-regulated throughout the estrous cycle. To test the role of Hh signaling in cyclical uterine remodeling, we conditionally knocked out the major activator of the pathway, smoothened (Smo) using the progesterone receptor cre (PR-Cre). In the absence of Hh signaling, the uterus no longer remodels throughout the estrous cycle. We also show that the smooth muscle fibers of the uterus are significantly larger in the conditional knockouts compared to the controls suggesting hypertrophy of the smooth muscle. Our findings support the possibility that this smooth muscle homeostasis may underlie important aspects of uterine function such as contractility during late-stage pregnancy or the development of uterine smooth muscle tumors.

developmental biology↗