Mechanical influences on vascular smooth muscle cell function

被引:162
作者
Williams, B [1 ]
机构
[1] Univ Leicester, Cardiovasc Res Inst, Leicester, Leics, England
关键词
mechanical strain; vascular smooth muscle; hypertension;
D O I
10.1097/00004872-199816121-00011
中图分类号
R6 [外科学];
学科分类号
1002 ; 100210 ;
摘要
The increase in vascular wall stress imposed by hypertension has been strongly implicated in the pathogenesis of cardiovascular disease. Much of this chronic cyclical mechanical strain is experienced by the vascular smooth (VSM) cells of the vascular media. The cellular mechanisms whereby VSM cells sense and respond to changing mechanical forces are poorly understood. This review focuses on an emerging field of cardiovascular research in which the direct effects of mechanical strain on VSM cells and isolated blood vessels in organ culture have been characterized, in vitro. Cyclical mechanical strain profoundly influences cultured VSM cell orientation, growth and phenotype. Mechanical strain also increases the secretory function of VSM cells leading to increased extracellular matrix protein production, Vasoactive mediators such as angiotensin II potentiate these effects. Mechanical strain increases VSM cell release of platelet derived growth factor, transforming growth factor beta(1), fibroblast growth factor and vascular endothelial growth factor, which act in autocrine or paracrine loops to influence VSM and endothelial cell growth and function. Mechanical strain may also activate local tissue renin-angiotensin systems and regulate expression of angiotensin II receptors within the cardiovascular system. The mechanism whereby VSM cells transduce mechanical stimuli into an intracellular signal and biological response, i.e, 'mechanotransduction', is strongly dependent on integrins. Moreover, specific matrix protein:integrin engagements lead to differential VSM cells responses via the selective activation of numerous intracellular signalling pathways including; mitogen-activated protein kinase, focal adhesion kinase and c-Src. The study of vascular mechanotransduction has begun to delineate the complex cellular basis of cardiovascular structural and functional modification in hypertension. J Hypertens 1998, 16:1921-1929 (C) 1998 Lippincott Williams & Wilkins.
引用
收藏
页码:1921 / 1929
页数:9
相关论文
共 79 条
[1]   EVIDENCE FOR INCREASED MEDIA THICKNESS, INCREASED NEURONAL AMINE UPTAKE, AND DEPRESSED EXCITATION CONTRACTION COUPLING IN ISOLATED RESISTANCE VESSELS FROM ESSENTIAL HYPERTENSIVES [J].
AALKJAER, C ;
HEAGERTY, AM ;
PETERSEN, KK ;
SWALES, JD ;
MULVANY, MJ .
CIRCULATION RESEARCH, 1987, 61 (02) :181-186
[2]   ENALAPRIL CAN PREVENT VASCULAR AMPLIFIER DEVELOPMENT IN SPONTANEOUSLY HYPERTENSIVE RATS [J].
ADAMS, MA ;
BOBIK, A ;
KORNER, PI .
HYPERTENSION, 1990, 16 (03) :252-260
[3]  
[Anonymous], HYPERTENSION PATHOPH
[4]  
[Anonymous], 1994, Textbook of Hypertension
[5]   CYCLIC STRAIN UP-REGULATES NITRIC-OXIDE SYNTHASE IN CULTURED BOVINE AORTIC ENDOTHELIAL-CELLS [J].
AWOLESI, MA ;
SESSA, WC ;
SUMPIO, BE .
JOURNAL OF CLINICAL INVESTIGATION, 1995, 96 (03) :1449-1454
[6]  
BANES AJ, 1990, AM BIOTECHNOL LAB, V8, P12
[7]   Pressure and angiotensin II synergistically induce aortic fibronectin expression in organ culture model of rabbit aorta - Evidence for a pressure-induced tissue renin-angiotensin system [J].
Bardy, N ;
Merval, R ;
Benessiano, J ;
Samuel, JL ;
Tedgui, A .
CIRCULATION RESEARCH, 1996, 79 (01) :70-78
[8]   DIFFERENTIAL-EFFECTS OF PRESSURE AND FLOW ON DNA AND PROTEIN-SYNTHESIS AND ON FIBRONECTIN EXPRESSION BY ARTERIES IN A NOVEL ORGAN-CULTURE SYSTEM [J].
BARDY, N ;
KARILLON, GJ ;
MERVAL, R ;
SAMUEL, JL ;
TEDGUI, A .
CIRCULATION RESEARCH, 1995, 77 (04) :684-694
[9]  
Bayliss WM, 1902, J PHYSIOL-LONDON, V28, P220
[10]  
Birukov KG, 1997, CIRC RES, V81, P895