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Davel, A. P.

Publications and source records attributed to Davel, A. P..

2 recordsLinked to original sources

TUDCA treatment restores aortic and perivascular adipose tissue function in post-weaning protein-restricted mice

BackgroundEarly-life protein restriction is a risk factor for cardiovascular disease, yet the mechanisms underlying vascular dysfunction and therapeutic strategies remain poorly defined. Tauroursodeoxycholic acid (TUDCA) is a bile acid that inhibits endoplasmic reticulum (ER) stress and has therapeutic potential in metabolic diseases. We hypothesized that TUDCA exerts vasculoprotective effects in the setting of post-weaning protein restriction. MethodsPost-weaning male and female mice fed a normoprotein (14% protein) or protein-restricted (6% protein, isocaloric) diet for 105 days. In the last 15 days, mice received TUDCA (300 mg/kg/day) or vehicle. Vascular function was assessed in the thoracic aorta with or without perivascular adipose tissue (PVAT). mRNA expression and histological analyses were performed in aorta and PVAT. ResultsLong-term protein restriction resulted in endothelial dysfunction, vascular hypocontractility, and loss of the anticontractile effect of PVAT in males, but not females. These alterations were restored by TUDCA. In aorta, TUDCA normalized expression of eNOS and contractile phenotype-related genes -actin, SM22, Cav1.2 whereas, in the PVAT, TUDCA restored lipid content and expression of PRDM16, PPAR{gamma}, PGC1, leptin, and OB-Rb in protein-restricted mice. TUDCA attenuated fibrosis and ER stress markers while increased the bile acid receptor FXR expression in both tissues. Similar to TUDCA, ER stress inhibition with 4-phenylbutyric acid restored vascular and PVAT function in protein-restricted male mice. ConclusionsPost-weaning protein restriction induces vascular and PVAT dysfunction and fibrosis in males, associated with ER stress. TUDCA significantly attenuates these alterations, supporting its potential as a therapeutic strategy for vascular complications associated with early-life undernutrition.

physiology↗

Identification and characterization of alamandine-(1-5), a new component of the Renin-Angiotensin System with unique properties

The renin-angiotensin system (RAS) comprises a biochemical cascade that hydrolyzes angiotensinogen into several different bioactive peptides, which can activate different receptors promoting plenty of specific effects. The aim of this study was to evaluate the presence of the putative product of alamandine, the pentapeptide alamandine-(1-5) in the circulation and its biological activity. To accomplish this we have used mass spectrometry (MALDI/TOF/TOF, LC-MS/MS) and several methodologies including isolated blood vessels, isolated perfused hearts, isolated cardiomyocytes, blood pressure recording in freely-moving normotensive and hypertensive rats (SHR), high resolution echocardiography (VEVO 2100), central administration (ICV infusion and microinjection in the insular cortex), cell culture (endothelial cells and GPCR-transfected CHO cells) and wild type and Mas, MrgD or AT2R deficient mice. Our results show that alamandine-(1-5) circulates in the human and rodent blood and promotes many biological central and peripheral actions. More importantly, its plasma concentration is increased in pediatric nephropathic patients. A major role for plasma ACE activity in the formation of alamandine-(1-5) from alamandine was observed using plasma samples from Angiotensinogen-KO mice. Alamandine-(1-5) increased Baroreflex sensitivity and produced a long-lasting ([~]6 hours) anti-hypertensive effect in SHR, associated with a significant reduction in cardiac output. A particularly important effect of this pentapeptide was observed in isolated perfused heart and cardiomyocyte contractility (reduced inotropism). It was capable of stimulating NO production through all receptors from the renin-angiotensin protective arm, (MAS, MrgD and AT2R) in CHO-transfected cells. Our data shows that Alamandine-(1-5) exhibits selective actions that set it apart from traditional concepts of the vasodilatory axis of the RAS and that are possibly intricately linked to a complex interplay between Mas, MrgD and AT2 receptors. This novel finding suggests that RAS may possess a complexity that surpasses our current understanding.

physiology↗