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Biology subjects

Sad, S.

Publications and source records attributed to Sad, S..

2 recordsLinked to original sources

Casp1 and Ripk3 are required for homeostatic insulin secretion in mice

Objectives- Cell death and inflammatory pathways play important roles in adaptations to nutrient overload and metabolic dysfunction. This study investigates the metabolic consequences that arise from the dual disruption of both caspase 1 (Casp1) and receptor interacting protein kinase 3 (Ripk3) in mice fed a control or obesity-inducing diet. Methods- Male and female wild-type (WT), Casp1/11 knockout (KO), Ripk3 KO and Casp1/11/Ripk3 double knockout (DKO) mice were fed a matched low-fat or a 60% kcal high fat diet, followed by metabolic phenotyping. Islets were isolated from WT and DKO mice for measures of dynamic glucose-stimulated insulin and somatostatin (Sst) secretion. Islet architecture and cellular composition were assessed in WT and DKO mice by immunofluorescent staining of intact pancreatic sections. Pharmacological inhibition of Casp1 (Ac-YVAD-cmk) and Ripk3 (GSK872) was performed in WT and DKO mice using isolated islets and in vivo administration. Exogenous hormones were administered prior to glucose injection to test in vivo responses. Results- High-fat feeding resulted in increased adiposity in male, but not female mice, with single or double deletion of Casp1/11 and Ripk3. These mice also exhibited markers of impaired glucose tolerance and insulin sensitivity. Interestingly, when both Casp1 and Ripk3 were deleted or inhibited in mice fed a low-fat diet, mice experienced reductions in glucose excursion following administration of glucose due to increased plasma insulin levels. This increase in insulin secretion was recapitulated in isolated islets ex vivo and was independent of changes in the proportions of -, {beta}-, and {delta}-cells within the islet. There were significant reductions in the percentage of urocortin-3 (Ucn3)-positive {beta}-cells in DKO mice compared to control, suggesting altered Ucn3-Sst signaling; however, only exogenous Sst (Octreotide) and not Ucn3 was able to correct the decreased glucose excursion. Conclusions- Loss or inhibition of both Casp1 and Ripk3 fundamentally alter islet responses to glucose. Our findings highlight that endogenous Casp1 and Ripk3 act independently of inflammatory or cell death signals to coordinate normal glucose-stimulated insulin release.

physiology↗

The ER-phagy receptor FAM134B is targeted by Salmonella Typhimurium to promote infection

Macroautophagy/autophagy is a key catabolic-recycling pathway that can selectively target damaged organelles or invading pathogens for degradation. The selective autophagic degradation of the endoplasmic reticulum (hereafter referred to as ER-phagy) is a homeostatic mechanism, controlling ER size, the removal of misfolded protein aggregates, and organelle damage. ER-phagy is also stimulated by pathogen infection. However, the link between ER-phagy and bacterial infection remains poorly understood, as are the mechanisms evolved by pathogens to escape the effects of ER-phagy. Here, we show that Salmonella enterica serovar Typhimurium inhibits ER-phagy by targeting the ER-phagy receptor FAM134B, leading to a pronounced increase in Salmonella viability after invasion. Salmonella prevents FAM134B oligomerization, which is required for efficient ER-phagy. FAM134B knock-out raises intracellular Salmonella number, while FAM134B activation reduces Salmonella burden. Additionally, we found that Salmonella targets FAM134B through the bacterial effector SopF to enhance intracellular survival through ER-phagy inhibition. Furthermore, FAM134B knock-out mice infected with Salmonella presented severe intestinal damage and increased bacterial burden. These results provide new mechanistic insight into the interplay between ER-phagy and bacterial infection, highlighting a key role for FAM134B in innate immunity.

molecular biology↗