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Hill, J. H.

Publications and source records attributed to Hill, J. H..

2 recordsLinked to original sources

Clec12a tempers inflammation while restricting expansion of a colitogenic commensal

SUMMARYRegulation of the microbiota is critical to intestinal health yet the mechanisms employed by innate immunity remain unclear. Here we show that mice deficient in the C-Type-lectin receptor, Clec12a developed severe colitis, which was dependent on the microbiota. Fecal-microbiota-transplantation (FMT) studies into germfree mice revealed a colitogenic microbiota formed within Clec12a-/- mice that was marked by expansion of the gram-positive organism, Faecalibaculum rodentium. Treatment with F. rodentium was sufficient to worsen colitis in wild-type mice. Macrophages within the gut express the highest levels of Clec12a. Cytokine and sequencing analysis in Clec12a-/- macrophages revealed heighten inflammation but marked reduction in genes associated with phagocytosis. Indeed, Clec12a-/- macrophages are impaired in their ability to uptake F. rodentium. Purified Clec12a had higher binding to gram-positive organisms such as F. rodentium. Thus, our data identifies Clec12a as an innate immune surveillance mechanism to control expansion of potentially harmful commensals without overt inflammation.

immunology↗

A microbiota membrane disrupter disseminates to the pancreas and increases β-cell mass

Microbiome dysbiosis is a feature of diabetes, but how microbial products influence insulin production is poorly understood. Here we report the mechanism of BefA, a microbiome-derived protein that increases proliferation of insulin-producing {beta}-cells during pancreatic development in gnotobiotic zebrafish and mice. BefA disseminates systemically via multiple anatomic routes to act directly on pancreatic islets. We report the structure of BefA, containing a lipid-binding SYLF domain, and demonstrate that it permeabilizes synthetic liposomes and bacterial membranes. A BefA mutant impaired in membrane disruption fails to expand {beta}-cells whereas the pore-forming host defense protein, Reg3, stimulates {beta}-cell proliferation. Our work demonstrates that membrane permeabilization by microbiome-derived and host defense proteins is necessary and sufficient for {beta}-cell expansion during pancreas development, thereby connecting microbiome composition with diabetes risk.

molecular biology↗