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Coronary Microvascular Disease As an Early Culprit in the Pathophysiology of Diabetes and Metabolic Syndrome

Overview
Journal Pharmacol Res
Publisher Elsevier
Specialty Pharmacology
Date 2017 Jul 13
PMID 28700893
Citations 36
Authors
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Abstract

Metabolic syndrome (MetS) is a group of cardio-metabolic risk factors that includes obesity, insulin resistance, hypertension, and dyslipidemia; these are also a combination of independent coronary artery disease (CAD) risk factors. Alarmingly, the prevalence of MetS risk factors are increasing and a leading cause for mortality. In the vasculature, complications from MetS and type 2 diabetes (T2D) can be divided into microvascular (retinopathy and nephropathy) and macrovascular (cardiovascular diseases and erectile dysfunction). In addition to vascular and endothelial dysfunction, vascular remodeling and stiffness are also hallmarks of cardiovascular disease (CVD), and well-characterized vascular changes that are observed in the early stages of hypertension, T2D, and obesity [1-3]. In the heart, the link between obstructive atherosclerosis of coronary macrovessels and myocardial ischemia (MI) is well established. However, recent studies show that abnormalities in the coronary microcirculation are associated with functional and structural changes in coronary microvessels (classically defined as being ≤150-200μm internal diameter), which may cause or contribute to MI even in the absence of obstractive CAD. This suggests a prognostic value of an abnormal coronary microcirculation as an early sub-clinical culprit in the pathogenesis and progression of heart disease in T2D and MetS. The aim of this review is to summarize recent studies investigating the coronary microvascular remodeling in an early pre-atherosclerotic phase of MetS and T2D, and to explore potential mechanisms associated with the timing of coronary microvascular remodeling relative to that of the macrovasculature.

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References
1.
Malek A, Izumo S . Physiological fluid shear stress causes downregulation of endothelin-1 mRNA in bovine aortic endothelium. Am J Physiol. 1992; 263(2 Pt 1):C389-96. DOI: 10.1152/ajpcell.1992.263.2.C389. View

2.
Singh P, Zheng X . Dual regulation of myocardin expression by tumor necrosis factor-α in vascular smooth muscle cells. PLoS One. 2014; 9(11):e112120. PMC: 4226488. DOI: 10.1371/journal.pone.0112120. View

3.
Wang W, Hein T, Zhang C, Zawieja D, Liao J, Kuo L . Oxidized low-density lipoprotein inhibits nitric oxide-mediated coronary arteriolar dilation by up-regulating endothelial arginase I. Microcirculation. 2010; 18(1):36-45. PMC: 3058270. DOI: 10.1111/j.1549-8719.2010.00066.x. View

4.
Lu X, Guo X, Karathanasis S, Zimmerman K, Onyia J, Peterson R . Rosiglitazone reverses endothelial dysfunction but not remodeling of femoral artery in Zucker diabetic fatty rats. Cardiovasc Diabetol. 2010; 9:19. PMC: 2891691. DOI: 10.1186/1475-2840-9-19. View

5.
Katz P, Trask A, Souza-Smith F, Hutchinson K, Galantowicz M, Lord K . Coronary arterioles in type 2 diabetic (db/db) mice undergo a distinct pattern of remodeling associated with decreased vessel stiffness. Basic Res Cardiol. 2011; 106(6):1123-34. PMC: 3229644. DOI: 10.1007/s00395-011-0201-0. View