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Role of Inflammation in Coronary Epicardial and Microvascular Dysfunction

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Journal Eur Cardiol
Date 2021 Apr 26
PMID 33897839
Citations 27
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Abstract

There is accumulating evidence highlighting a close relationship between inflammation and coronary microvascular dysfunction (CMD) in various experimental and clinical settings, with major clinical implications. Chronic low-grade vascular inflammation plays important roles in the underlying mechanisms behind CMD, especially in patients with coronary artery disease, obesity, heart failure with preserved ejection fraction and chronic inflammatory rheumatoid diseases. The central mechanisms of coronary vasomotion abnormalities comprise enhanced coronary vasoconstrictor reactivity, reduced endothelium-dependent and -independent coronary vasodilator capacity and increased coronary microvascular resistance, where inflammatory mediators and responses are substantially involved. How to modulate CMD to improve clinical outcomes of patients with the disorder and whether CMD management by targeting inflammatory responses can benefit patients remain challenging questions in need of further research. This review provides a concise overview of the current knowledge of the involvement of inflammation in the pathophysiology and molecular mechanisms of CMD from bench to bedside.

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References
1.
Odaka Y, Takahashi J, Tsuburaya R, Nishimiya K, Hao K, Matsumoto Y . Plasma concentration of serotonin is a novel biomarker for coronary microvascular dysfunction in patients with suspected angina and unobstructive coronary arteries. Eur Heart J. 2016; 38(7):489-496. DOI: 10.1093/eurheartj/ehw448. View

2.
Halberg N, Khan T, Trujillo M, Wernstedt-Asterholm I, Attie A, Sherwani S . Hypoxia-inducible factor 1alpha induces fibrosis and insulin resistance in white adipose tissue. Mol Cell Biol. 2009; 29(16):4467-83. PMC: 2725728. DOI: 10.1128/MCB.00192-09. View

3.
Shimokawa H . 2014 Williams Harvey Lecture: importance of coronary vasomotion abnormalities-from bench to bedside. Eur Heart J. 2014; 35(45):3180-93. DOI: 10.1093/eurheartj/ehu427. View

4.
Nishimiya K, Matsumoto Y, Shimokawa H . Viewpoint: Recent Advances in Intracoronary Imaging for Vasa Vasorum Visualisation. Eur Cardiol. 2018; 12(2):121-123. PMC: 6223353. DOI: 10.15420/ecr.2017:13:1. View

5.
Mazurek T, Zhang L, Zalewski A, Mannion J, Diehl J, Arafat H . Human epicardial adipose tissue is a source of inflammatory mediators. Circulation. 2003; 108(20):2460-6. DOI: 10.1161/01.CIR.0000099542.57313.C5. View