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Bott, S.

Publications and source records attributed to Bott, S..

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Hepatic ADMA/PRMT1 axis regulation is associated with NO-dependent endothelial dysfunction in MASH

Metabolic dysfunction-associated steatohepatitis (MASH) is a severe form of fatty liver disease and a recognized cardiovascular risk factor, yet the mechanisms linking hepatic pathology to vascular dysfunction remain poorly understood. We aimed to investigate whether MASH impairs endothelial function via nitric oxide (NO)-dependent mechanisms and to identify potential liver-derived mediators involved in this process. Endothelial function was assessed in two murine MASH models, Foz mice fed a high-fat diet and C57BL/6JRj mice fed a western diet with fructose, by using wire myography, while blood pressure was monitored via telemetry. NO pathway was further investigated through eNOS expression and activation and Hb-NO measurements. ADMA metabolism was analyzed in both liver tissue and plasma by LC-MS and gene expressions. Additionally, bovine aortic endothelial cells (BAECs) were treated with mouse plasma to measure the circulating factors effects on eNOS activation and the role of oxidative stress. Both models exhibited impaired NO-dependent vasorelaxation without evidence of atherosclerosis. In Foz mice, this impairment was associated with reduced eNOS expression and activation. Surprisingly, plasma Hb-NO levels did not reflect vascular NO deficiency, likely due to elevated hepatic iNOS expression. In both models, hepatic and plasma ADMA levels were increased, concomitant with hepatic upregulation of Prmt1. BAECs exposed to plasma from MASH mice showed reduced eNOS activation independent of oxidative stress. Our findings reveal that MASH is consistently associated with NO-dependent endothelial dysfunction, with ADMA emerging as a key liver-derived mediator. The PRMT1/ADMA/NO axis may represent a mechanistic link between liver pathology and vascular impairment, positioning ADMA as a potential biomarker and therapeutic target for cardiovascular risk associated with MASH. HighlightsO_LIMASH is associated with impaired NO-dependent endothelial function in two distinct MASH models. C_LIO_LICirculating factors disrupt the NOS/NO pathway independently of oxidative stress C_LIO_LIReduced plasma Hb-NO levels do not accurately reflect NO-dependent endothelial dysfunction in a context of MASH. C_LIO_LIElevated plasma and hepatic ADMA levels associated with hepatic prmt1 upregulation are consistently observed in both MASH models. C_LIO_LIThe PRMT1/ADMA/NO axis emerges as a key liver-mediated mechanism driving endothelial dysfunction in MASH C_LI

physiology↗

When the liver is in poor condition, so is the heart - cardiac remodelling in MASH mouse models

Metabolic dysfunction-associated steatohepatitis (MASH) confers a risk for cardiovascular diseases in patients. Animal models may help exploring the mechanisms linking liver and heart diseases. Hence, we explored the cardiac phenotype in MASH mouse models. MethodsWe evaluated pathological alterations in liver and heart in foz/foz mice fed a high fat diet for 24 or 60 weeks and in C57BL/6J mice fed a high fat, high fructose diet for 60 weeks. Angiotensin ll (Angll) was used as an additional cardiovascular stressor. ResultsFoz/foz mice with fibrosing MASH developed cardiac hypertrophy with adverse cardiac remodelling not seen in WT similarly fed the high fat diet. Angll caused hypertension and upregulated the expression of genes contributing to pathological cardiac hypertrophy (Nppa, Myh7) more severely so in foz/foz mice than in controls. After 60 weeks of HFD, while liver disease had progressed to burn-out non steatotic MASH with hepatocellular carcinoma in 50% of the animals, the cardiomyopathy did not. In an independent model (C57BL/6J mice fed a high fat, high fructose diet), moderate fibrosing MASH is associated with cardiac fibrosis and dysregulation of genes involved in pathological remodelling (Collal, Col3al, Vim, Myh6, Slc2al). ConclusionAnimals with MASH present consistent adverse structural changes in the heart with no patent alteration of cardiac function even when stressed with exogenous Angll. Liver disease, and not overfeeding or aging alone, is associated with this cardiac phenotype. Our findings confirm foz/foz mice as suitable for studying links between MASH and heart structural changes ahead of heart failure.

physiology↗