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Avolio, E.

Publications and source records attributed to Avolio, E..

3 recordsLinked to original sources

Contractile reprogramming of cardiac pericytes by MEK inhibition promotes arteriologenesis of the ischemic heart

BackgroundThe development of collateral arteries after a myocardial infarction (MI) was intensively studied, while the mechanism by which pericytes (PCs) contribute to arteriologenesis remains unexplored. This study aimed to 1) investigate if cardiac PCs gain functional features of contractile vascular smooth muscle cells (VSMCs) in vitro, and 2) determine if this potential can be evoked pharmacologically to encourage heart arteriologenesis in vivo. MethodsPCs were immunosorted as CD31neg/CD34pos cells from human and mouse hearts. Contractile reprogramming was induced by either depletion of growth factors or addition of PD0325901, a clinically available MEK inhibitor. Next generation RNA-Sequencing was performed in naive and differentiated human PCs to assess the whole-transcriptome profile. Three in vivo studies were conducted in C57BL6/J mice to determine: 1) the ability of human PCs to promote arteriole formation when implanted subcutaneously within PD0325901-containing Matrigel plugs, 2) the effect of orally administered PD0325901 on the arteriole density of normoperfused hearts, and 3) the possibility of promoting capillary formation and muscularization of the infarcted heart through the same pharmacological approach. ResultsRemoval of epidermal growth factor (EGF) and basic fibroblast growth factor (bFGF) from the culture medium induced the differentiation of PCs into contractile VSMC-like cells. Because both growth factors induce the extracellular signal-regulated kinase 1/2 (ERK1/2) signalling, we attempted to induce PC differentiation in vitro and in vivo using PD0325901. RNA-sequencing revealed that differentiated PCs were enriched in transcripts associated with smooth muscle contraction and biological function. PD0325901-treated PCs rapidly acquired antigenic and functional features of contractile VSMCs in vitro. Moreover, human PCs formed new arterioles when implanted subcutaneously within PD0325901-containing Matrigel plugs in mice. Oral administration of PD0325901 for two weeks increased the density and expression of contractile proteins in small-calibre arterioles of the murine heart, thereby increasing myocardial perfusion. Similarly, PD0325901 induced reparative arteriologenesis and capillarization, reduced the scar, and improved left ventricular performance in a murine model of MI. ConclusionWe propose a novel method to promote the heart vascularization through the pharmacological modulation of resident mural cells. This novel approach could have an immediate impact on the treatment of coronary artery disease. Clinical perspectiveO_ST_ABSWhat is new?C_ST_ABSO_LIHuman myocardial pericytes have intrinsic vascular plasticity that can be pharmacologically evoked using PD0325901, a clinically available MEK inhibitor. C_LIO_LIIn mice, the pharmacological inhibition of ERK1/2 signalling, by the oral administration of PD0325901 for 2 weeks, encouraged the heart arteriologenesis through pericyte differentiation. C_LIO_LIIn a preclinical mouse model of myocardial infarction, the oral administration of PD0325901 for 2 weeks induced reparative arteriologenesis and capillarization, reduced the scar, and improved left ventricular performance. C_LI What are the clinical implications?O_LIThis novel drug-based therapeutic approach is readily available to all patients. C_LIO_LITherefore, it could have an immediate clinical impact for the treatment of coronary artery disease and other heart conditions associated with deficient coronary vascularization. C_LI

cell biology

Human saphenous vein provides a unique source of anti-calcific pericytes for prosthetic cardiac valve engineering

AimsTissue engineering seeks to improve the longevity of prosthetic heart valves, but the cell source of choice has yet to be determined. This study aimed to establish a mechanistic rationale supporting the suitability of human adventitial pericytes (APCs). Methods and ResultsAntigenically APCs were immunomagnetically sorted from saphenous vein leftovers of patients undergoing coronary artery surgery and antigenically characterized for purity. Unlike bone marrow-derived mesenchymal stromal cells (BM-MSCs), APCs were resistant to osteochondrogenic induction by high phosphate (HP), as assessed by cytochemistry and expression of osteogenic markers. MiR-132 is natively expressed by APCs, with copy numbers being enhanced by HP stimulation. In silico bioinformatic analysis, followed by luciferase assays in HEK293 cells and miR-132 titration using agomiR and antagomiR in APCs, demonstrated that several osteochondrogenic genes were negatively regulated by miR-132. Among these, the glycolytic marker GLUT1 was downregulated in HP-stimulated APCs. In contrast to BM-APCs, APCs showed no increase in glycolysis under HP. Interestingly, incubation with APC-derived conditioned medium conferred swine cardiac valves with resistance to osteogenic transformation by HP; whereas, conditioned media from miR-132-knocked-down APCs failed to prevent the expression of these markers. Finally, we demonstrated the feasibility of using APCs to engineer bovine pericardium patches. APCs proliferate in the patch and secrete factors able to attract aortic endothelial cells under HP. ConclusionsHuman APCs are resistant to calcification compared with BM-MSCs and convey the anti-calcific phenotype to heart valves through miR-132. These findings may open new important avenues for prosthetic valve cellularization.

cell biology

Catestatin (CST) is a key mediator of the immunoendocrine regulation of cardiovascular function

Hypertension (HTN) is associated with inflammation and excessive production of catecholamines. Hypertensive patients have reduced plasma levels of Catestatin (CST), a bioactive cleavage product of the prohormone Chromogranin A (CgA). In mouse models, HTN symptoms can be reduced by administration of CST, but the role of CST in the regulation of cardiovascular function is unknown. In this study, we generated mice with knockout (KO) of the region of the CgA gene coding for CST (CST-KO) and found that CST-KO mice are not only hypertensive as predicted, but also display left ventricular hypertrophy, have marked macrophage infiltration of the heart and adrenal gland, and have elevated levels of pro-inflammatory cytokines and catecholamines. Intraperitoneal injection with CST reversed these phenotypes, and ischemic pre-conditioning-induced cardioprotection was also abolished in CST-KO mice. Experiments with chlodronate depletion of macrophages and bone-marrow transfer showed that macrophages produce CST and that the anti-hypertensive effects of CST are mediated in part via CSTs immunosuppression of macrophages as a form of feedback inhibition. The data thus implicate CST as a key autocrine attenuator of the cardiac inflammation in HTN by reducing macrophage inflammation.

physiology