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Penjweini, R.

Publications and source records attributed to Penjweini, R..

2 recordsLinked to original sources

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↗

High resolution spatial investigation of intracellular oxygen in muscle cells.

Molecular oxygen (O2) is one of the most functionally relevant metabolites. O2 is essential for mito-chondrial aerobic respiration. Changes in O2 affect muscle metabolism and play a critical role in the maintenance of skeletal muscle mass, with lack of sufficient O2 resulting in detrimental loss of muscle mass and function. How exactly O2 is used by muscle cells is less known, mainly due to the lack of tools to address O2 dynamics at the cellular level. Here we discuss a new imaging method for the real time quantification of intracellular O2 in muscle cells based on a genetically encoded O2-responsive sensor, Myoglobin-mCherry. We show that we can spatially resolve and quantify intracellular O2 concentration in single muscle cells and that the spatiotemporal O2 gradient measured by the sensor is linked to, and reflects, functional metabolic changes occurring during the process of muscle differentiation. HighlightsO_LIReal time quantitation of intracellular oxygen with spatial resolution C_LIO_LIIdentification of metabolically active sites in single cells C_LIO_LIOxygen metabolism is linked to muscle differentiation C_LI

cell biology↗