Mechanobiology of Microvascular Function and Structure in Health and Disease: Focus on the Coronary Circulation

被引:23
作者
Brandt, Maarten M. [1 ]
Cheng, Caroline [1 ,2 ]
Merkus, Daphne [1 ,3 ,4 ]
Duncker, Dirk J. [1 ]
Sorop, Oana [1 ]
机构
[1] Univ Med Ctr Rotterdam, Div Expt Cardiol, Dept Cardiol, Erasmus MC, Rotterdam, Netherlands
[2] Univ Med Ctr Utrecht, Div Internal Med & Dermatol, Dept Hypertens & Nephrol, Utrecht, Netherlands
[3] Ludwig Maximilians Univ Munchen, Walter Brendel Ctr Expt Med WBex, Munich, Germany
[4] Munich Alliance MHA, German Ctr Cardiovasc Res DZHK, Partner Site Munich, Munich, Germany
关键词
microvascular remodeling; microvascular density; microvascular dysfunction; coronary blood flow; endothelial dysfunction; ischemic heart disease; microvascular disease;
D O I
10.3389/fphys.2021.771960
中图分类号
Q4 [生理学];
学科分类号
071003 ;
摘要
The coronary microvasculature plays a key role in regulating the tight coupling between myocardial perfusion and myocardial oxygen demand across a wide range of cardiac activity. Short-term regulation of coronary blood flow in response to metabolic stimuli is achieved via adjustment of vascular diameter in different segments of the microvasculature in conjunction with mechanical forces eliciting myogenic and flow-mediated vasodilation. In contrast, chronic adjustments in flow regulation also involve microvascular structural modifications, termed remodeling. Vascular remodeling encompasses changes in microvascular diameter and/or density being largely modulated by mechanical forces acting on the endothelium and vascular smooth muscle cells. Whereas in recent years, substantial knowledge has been gathered regarding the molecular mechanisms controlling microvascular tone and how these are altered in various diseases, the structural adaptations in response to pathologic situations are less well understood. In this article, we review the factors involved in coronary microvascular functional and structural alterations in obstructive and non-obstructive coronary artery disease and the molecular mechanisms involved therein with a focus on mechanobiology. Cardiovascular risk factors including metabolic dysregulation, hypercholesterolemia, hypertension and aging have been shown to induce microvascular (endothelial) dysfunction and vascular remodeling. Additionally, alterations in biomechanical forces produced by a coronary artery stenosis are associated with microvascular functional and structural alterations. Future studies should be directed at further unraveling the mechanisms underlying the coronary microvascular functional and structural alterations in disease; a deeper understanding of these mechanisms is critical for the identification of potential new targets for the treatment of ischemic heart disease.
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页数:26
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共 301 条
[121]   Mechanosensitive TRP channels in cardiovascular pathophysiology [J].
Inoue, Ryuji ;
Jian, Zhong ;
Kawarabayashi, Yasuhiro .
PHARMACOLOGY & THERAPEUTICS, 2009, 123 (03) :371-385
[122]   Mechanics and composition of human subcutaneous resistance arteries in essential hypertension [J].
Intengan, HD ;
Deng, LY ;
Li, JS ;
Schiffrin, EL .
HYPERTENSION, 1999, 33 (01) :569-574
[123]   Vascular remodeling in hypertension - Roles of apoptosis, inflammation, and fibrosis [J].
Intengan, HD ;
Schiffrin, EL .
HYPERTENSION, 2001, 38 (03) :581-587
[124]   ATP-sensitive K+ channels, adenosine, and nitric oxide-mediated mechanisms account for coronary vasodilation during exercise [J].
Ishibashi, Y ;
Duncker, DJ ;
Zhang, JY ;
Bache, RJ .
CIRCULATION RESEARCH, 1998, 82 (03) :346-359
[125]   Wall tissue remodeling regulates longitudinal tension in arteries [J].
Jackson, ZS ;
Gotlieb, AI ;
Langille, BL .
CIRCULATION RESEARCH, 2002, 90 (08) :918-925
[126]   T-type Ca2+ channels and autoregulation of local blood flow [J].
Jensen, Lars Jorn ;
Nielsen, Morten Schak ;
Salomonsson, Max ;
Sorensen, Charlotte Mehlin .
CHANNELS, 2017, 11 (03) :183-195
[127]   VEGF signaling is disrupted in the hearts of mice lacking estrogen receptor alpha [J].
Jesmin, Subrina ;
Mowa, Chishimba N. ;
Sultana, Sayeeda Nusrat ;
Shimojo, Nobutake ;
Togashi, Hiroko ;
Iwashima, Yoshio ;
Kato, Norihiro ;
Sato, Akira ;
Sakuma, Ichiro ;
Hiroe, Michiaki ;
Hattori, Yuichi ;
Yamaguchi, Naoto ;
Kobayashi, Hiroyuki .
EUROPEAN JOURNAL OF PHARMACOLOGY, 2010, 641 (2-3) :168-178
[128]   Increased Aortic Calpain-1 Activity Mediates Age-Associated Angiotensin II Signaling of Vascular Smooth Muscle Cells [J].
Jiang, Liqun ;
Wang, Mingyi ;
Zhang, Jing ;
Monticone, Robert E. ;
Telljohann, Richard ;
Spinetti, Gaia ;
Pintus, Gianfranco ;
Lakatta, Edward G. .
PLOS ONE, 2008, 3 (05)
[129]   Protein kinase N2 mediates flow-induced endothelial NOS activation and vascular tone regulation [J].
Jin, Young-June ;
Chennupati, Ramesh ;
Li, Rui ;
Liang, Guozheng ;
Wang, ShengPeng ;
Iring, Andras ;
Graumann, Johannes ;
Wettschureck, Nina ;
Offermanns, Stefan .
JOURNAL OF CLINICAL INVESTIGATION, 2021, 131 (21)
[130]   Ligand-independent activation of vascular endothelial growth factor receptor 2 by fluid shear stress regulates activation of endothelial nitric oxide synthase [J].
Jin, ZG ;
Ueba, H ;
Tanimoto, T ;
Lungu, AO ;
Frame, MD ;
Berk, BC .
CIRCULATION RESEARCH, 2003, 93 (04) :354-363