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cowart, l. a.

Publications and source records attributed to cowart, l. a..

2 recordsLinked to original sources

Dyslipidemic SPTLC3 Integrates Bile Acid-FXR Signaling with Sphingolipid Remodeling in MASLD

Molecular mechanisms driving metabolic disease pathogenesis remain poorly understood. Genetic and functional studies implicate SPTLC3 with dyslipidemia. SPTLC3 synthesizes atypical long-chain bases (LCB) precursors for sphingolipid production. We demonstrate significant SPTLC3 expression in human liver. ORMDL1-3 regulate SPTLC3 post-translationally in hepatic and non-hepatic cells. Independently, farnesoid X receptor (FXR) represses hepatic SPTLC3 transcription via a negative promoter element. In mice, high-fat diet (HFD) induced whereas bile acids normalized hepatic SPTLC3 transcription. SPTLC3 derived LCBs in plasma originate from the liver and are elevated in HFD-fed mice and in patients with metabolic dysfunction-associated steatotic liver disease (MASLD). Cross-species comparison revealed marked differences in LCB composition between mice and humans. Notably, omega-3-methylsphingosine (meC18SO) was significantly associated with MASLD in humans but undetectable in mice. In Huh7 cells, meC18SO enhanced complex II and IV activity, oxygen consumption, and mitochondrial ROS content. FXR-SPTLC3 axis and presented findings have potential implications for future translational research.

biochemistry↗

The non-steroidal mineralocorticoid receptor (MR) antagonist (FINERENONE) reverses Western diet-induced kidney disease by enhancing mitochondrial metabolism and decreasing lipid accumulation and inflammation

Mineralocorticoid receptor (MR) overactivation plays a crucial role in the pathogenesis of chronic kidney disease, as well as several cardiovascular and arterial diseases. Current studies determined the mechanisms of the beneficial kidney effects of the non-steroidal MR antagonist Finerenone (FN) in a mouse model of western diet-induced obesity and insulin resistance. 10-week-old male C57BL/6J mice were fed a low fat (LF) or a western diet (WD) for 12 weeks followed by treatment with either vehicle or finerenone (FN) for another 14 weeks (intervention studies) until they were 36 weeks old. Finerenone treatment prevented a) the increased albuminuria and kidney injury molecule 1 (KIM1), b) the expanded extracellular mesangial matrix, and podocyte injury, c) fibronectin, collagen IV, CD45 and CD68 immunostaining, d) glomerular basement membrane disruption, podocyte foot process loss, and mitochondrial structural abnormalities, e) the pro-inflammatory cytokines (MCP1), innate immunity pathways (TLR2, STING, STAT3), and fibrosis markers fibronectin, TGF{beta} and Pai1, and f) the increased kidney cholesterol levels. There was also reduced expression of nuclear receptor ERR{gamma} without changes in ERR in WD-fed mice whereas both ERR and ERR{gamma} expression levels increased after Finerenone treatment. NADH lifetime analysis showed decreased bound NADH, compatible with decreased mitochondrial OXPHOS in the kidneys of WD-fed mice compared to controls, which was prevented by finerenone treatment. In conclusion, Finerenone treatment exhibits a renal protective role and prevents the progression of kidney disease by regulating mitochondrial function, most likely via ERR{gamma}, and reducing lipid accumulation and inflammation.

pharmacology and toxicology↗