Microcirculation and Physical Exercise In Hypertension

Author:

De Ciuceis Carolina1ORCID,Rizzoni Damiano12ORCID,Palatini Paolo3ORCID

Affiliation:

1. Department of Clinical and Experimental Sciences, University of Brescia, Italy (C.D.C., D.R.).

2. Division of Medicine, Spedali Civili di Brescia, Montichiari, Brescia, Italy (D.R.).

3. Department of Medicine, University of Padova, Padua, Italy (P.P.).

Abstract

Hypertension is associated with important alterations in the morphology of small arteries and arterioles. Vascular-specific manifestations are changes in the structure and function of vascular smooth muscle cells, extracellular matrix, perivascular tissues, and endothelial cells. Arteriole and capillary remodeling and capillary rarefaction have been observed in hypertensive animals and human beings which contribute to increased vascular resistance. An impairment of different angiogenetic factors, such as VEGF (vascular endothelial growth factor), VEGFR (vascular endothelial growth factor receptor)-2, TIMP (tissue inhibitor matrix metalloproteinases)-1, and TSP (thrombospondin)-1, seems to be responsible for the reduction of the microvascular network. Exercise training has been shown to improve vascular structure and function in hypertension not only in the large arteries but also in the peripheral circulation. Exercise training may regress microvascular remodeling and normalize capillary density, leading to capillary growth possibly by increasing proangiogenic stimuli such as VEGF. Exercise enhances endothelium-dependent vascular relaxation through NO release increase and oxidative stress reduction. Other mechanisms include improved balance between prostacyclin and thromboxane levels, lower circulating levels of endothelin-1, attenuation of infiltration of immune cells into perivascular adipose tissue, and increase of local adiponectin secretion. In addition, exercise training favorably modulates the expression of several microRNAs leading to a positive modification in muscle fiber composition. Identifying the bioactive molecules and biological mechanisms that mediate exercise benefits through pathways that differ from those used by antihypertensive drugs may help to improve our knowledge of hypertension pathophysiology and facilitate the development of new therapeutic strategies.

Publisher

Ovid Technologies (Wolters Kluwer Health)

Subject

Internal Medicine

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