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Diedisheim, M.

Publications and source records attributed to Diedisheim, M..

3 recordsLinked to original sources

Mucosal-Associated Invariant T Cells Promote Atherosclerosis Through Monocyte-Driven Inflammation

Mucosal-associated invariant T (MAIT) cells are unconventional T lymphocytes that may contribute to inflammatory responses, although their specific role in atherosclerosis remains poorly understood. In this study, we identified MAIT cells within human atherosclerotic plaques and found that they were significantly enriched among CD3 T cells in plaques compared to matched peripheral blood samples. MAIT cells within plaques exhibited an activated phenotype and showed upregulation of genes associated with inflammation and cellular activation, compared to circulating MAIT cells from the same patients. Using murine models, we found that low-density lipoprotein receptor (Ldlr)-/- mice carrying the CAST locus, which confers naturally higher frequencies of MAIT cells, displayed increased MAIT cell accumulation in both the liver and atherosclerotic plaques when fed a high-cholesterol diet. In contrast, MAIT cell-deficient Ldlr-/-CAST MR1-/- mice exhibited a reduced atherosclerotic burden, diminished liver fibrosis, smaller myocardial infarcts following coronary artery ligation, without significant changes in plasma cholesterol levels. These atheroprotective effects were accompanied by lower monocyte counts in the bone marrow and blood, as well as reduced plaque macrophage accumulation in the plaques. Furthermore, deletion of CCR2, which impairs monocyte mobilization, abrogated the pro-atherogenic effects of MAIT cells, indicating that MAIT-driven atherogenesis occurs through a monocyte-dependent mechanism. Taken together, these findings identify MAIT cells as active contributors to vascular inflammation and position them as potential therapeutic targets for atherosclerosis and its complications.

immunology↗

Serine palmitoyltransferase-mediated de novo sphingolipid biosynthesis is required for normal insulin production and glucose tolerance

Aims/HypothesisThe importance for normal insulin secretion of ceramide synthesis is unclear. De novo ceramide synthesis requires serine palmitoyl transferase, SPT2, encoded by Sptl2. MethodsWe generated {beta}-cell-selective Sptl2 null mice by crossing animals with floxed alleles to mice expressing Cre recombinase from the Ins1 locus. Metabolic phenotyping, transcriptomic, functional analyses and histology were performed using standard approaches. ResultsIslets from Sptlc2{Delta}Ins1 mice displayed marked alterations in ceramide and sphingomyelin levels: ceramide content: p=0.016 and p=0.109; sphingomyelin content: p=0.016 and p=0.004 in Sptlc2{Delta}Ins1 vs Sptlc2CTL mice under regular and high fat diet, respectively, despite compensatory increases in the expression of enzymes in the salvage and sphingomyelinase pathways. Correspondingly, profound abnormalities were observed in glucose-regulated insulin secretion and glucose tolerance in vivo, both on a regular chow and high fat diet. These changes were associated with a drastic ([~]80%) lowering in {beta}-cell numbers, and a more minor increase in delta cell numbers. They were also preserved in animals maintained on a ketogenic diet, consistent with a cell autonomous effect on the {beta}-cell. Despite normal glucose-regulated intracellular calcium dynamics and insulin secretion, marked transcriptomic changes were observed in Sptlc2{Delta}Ins1 mouse islets, with affected GO terms including lysosome organisation and regulation of autophagy. Consistent with roles for compromised SPT2 function in diseased {beta}-cells, Sptl2 expression in Balbc and DBA2J mouse islets was lowered by a high fat-diet. Moreover, SPTLC2 mRNA tended to be lower, and SPTLC1 mRNA was significantly decreased, in islets from human subjects with type 2 diabetes versus normoglycemic individuals. ConclusionsPreserved de novo ceramide synthesis is required to maintain normal {beta}-cell mass and thus insulin secretion in mice. Therapeutic approaches which seek to target this process systemically using pharmacological SPT2 inhibitors should thus be treated with caution. Research in contextO_ST_ABS- What is already known about this subject?C_ST_ABSCeramides are key components of sphingolipid metabolism. Excess ceramide levels contribute to lipotoxicity and {beta}-cell apoptosis. -cell-restricted deletion of Cers2, which is responsible for the synthesis of very long ceramide chains, alters the insulin content of pancreatic islets and modifies glucose tolerance. Deletion of Cers 5 or 6, responsible for the synthesis of the long chains, has no effect. - What is the key question?What is the importance of de novo ceramide synthesis in {beta}-cells for the normal regulation of insulin production and glucose homeostasis? - What are the new findings?Inhibition of the de novo ceramide synthesis pathway in {beta}-cells, achieved by selective deletion of Sptlc2, encoding subunit 2 of the serine palmitoyltransferase (SPT) enzyme, induces a major alteration of glucose tolerance and insulin secretion. This is accompanied by a drastic reduction in {beta}-cell mass and islet insulin content. The remaining islets of Sptlc2{Delta}Ins1 display normal glucose-regulated intracellular calcium dynamics and insulin secretion despite imbalances in ceramide and sphingomyelin levels and substantial transcriptomic changes. Expression of SPTLC1, which encodes the other subunit of the SPT heterodimer, is reduced in islets from humans with type 2 diabetes, and a trend is observed towards lowered SPTLC2 expression. Taken together, these findings highlight the importance of de novo ceramide synthesis for normal {beta}-cell survival and function - How might this impact on clinical practice in the foreseeable future?By suppressing insulin production, global blockade or inhibition of SPT2, achieved with pharmacological approaches which seek to rescue insulin sensitivity in T2D, may be deleterious for glucose tolerance.

physiology↗

Targeting Pre-existing Club-Like Cells in Prostate Cancer Potentiates Androgen Deprivation Therapy

A critical knowledge gap in prostate cancer research is understanding whether castration-tolerant progenitor-like cells that reside in treatment-naive tumors play a direct role in therapy resistance and tumor progression. Herein, we reveal that the castration tolerance of LSCmed (Lin-, Sca-1+, CD49fmed) progenitor cells, the mouse equivalent of human prostatic Club cells, arises not from intrinsic properties, but from significant transcriptional reprogramming. Utilizing single-cell RNA sequencing of LSCmed cells isolated from prostate-specific Pten-deficient (Ptenpc-/-) mice, we identify the emergence of castration-resistant LSCmed cells enriched in stem-like features, driven by the transcription factor FOSL1/AP-1. We demonstrate that cells exhibiting Ptenpc-/- LSCmed characteristics are prevalent in aggressive double-negative prostate cancer (DNPC) subtypes recently identified in human castration-resistant prostate cancer (CRPC). Furthermore, our findings show that the dual-targeting agents JQ-1 and CX-6258--focused on FOSL1/AP-1 and PIM kinases, respectively--effectively suppress both the progenitor properties and the growth of mouse and human DNPC surrogates in vitro and in vivo. Thus, early eradication of castration-tolerant Club-like cells presents a promising therapeutic strategy to mitigate prostate cancer progression toward CRPC.

cancer biology↗