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Biology subjects

Vasavada, R. C.

Publications and source records attributed to Vasavada, R. C..

2 recordsLinked to original sources

Proinflammatory circulating extracellular vesicles from type 1 diabetes patients contribute to beta cell cytotoxicity and disease pathogenicity

In Type 1 diabetes (T1D), {beta}-cell loss and autoimmunity initiate years before disease diagnosis. However, the mechanisms remain unknown. Here, we investigated the role and mechanisms of circulating extracellular vesicles (cEVs) on T1D pathogenesis and {beta}-cell cytotoxicity. We used cEVs isolated from healthy donors (HD), T1D, multiple autoantibody-positive (AAb+), pre- and post-islet transplantation T1D subjects, NOD-T1D mice, and T1D PBMCs. Patient T1D-cEVs significantly induced apoptosis in vitro in human {beta}-cells but not -cells compared to HD-cEVs. cEVs from AAb+ subjects and pre-diabetic mice were cytotoxic, demonstrating that cEV-induced {beta}-cell cytotoxicity precedes T1D onset and diagnosis. cEV reduction in prediabetic NOD-T1D mice improved {beta}-cell health implying cEV contribution to T1D development. Proteomic analysis of patient T1D-cEVs found several proinflammatory proteins, including interferon gamma, which induced {beta}-cell cytotoxicity. Our data using cEVs from pre- and post-islet transplant and PBMC-EVs from T1D patients implicated immune cells as a potential cellular source of cytotoxic cEVs in T1D. Collectively, our data using T1D patient samples coupled with studies in mice demonstrate that cEVs contribute to {beta}-cell cytotoxicity and to the progression of T1D pathogenicity. Our study is one of the first to demonstrate a functional role of the proinflammatory cEV protein cargo on glucose homeostasis, {beta}-cell health, and insulitis. Our studies on T1D-cEVs may lead to discovery of novel biomarkers and therapeutic targets for T1D.

cell biology↗

LGR4 is essential for maintaining beta-cell homeostasis through suppression of RANK

Pancreatic {beta}-cell stress contributes to diabetes progression. This study demonstrates that Leucine-rich repeat-containing G-protein-coupled-receptor-4 (LGR4) is critical for maintaining {beta}-cell health and is modulated by stressors. In vitro, Lgr4 knockdown decreases proliferation and survival in rodent {beta}-cells, while overexpression protects against cytokine-induced cell death in rodent and human {beta}-cells. Mechanistically, LGR4 suppresses Receptor Activator of Nuclear Factor Kappa B (NF{kappa}B) (RANK) and its subsequent activation of NF{kappa}B to protect {beta}-cells. {beta}-cell-specific Lgr4-conditional knockout (cko) mice exhibit normal glucose homeostasis but increased {beta}-cell death in both sexes and decreased proliferation only in females. Male Lgr4cko mice under stress display reduced {beta}-cell proliferation and a further increase in {beta}-cell death. Upon aging, both male and female Lgr4cko mice display impaired {beta}-cell homeostasis, however, only female mice are glucose intolerant with decreased plasma insulin. We show that LGR4 is required for maintaining {beta}-cell health under basal and stress-induced conditions, through suppression of RANK. TeaserLGR4 receptor is critical for maintaining {beta}-cell health under basal and stressed conditions, through suppression of RANK.

physiology↗