Smooth muscle tone and arterial wall viscosity - An in vivo in vitro study

被引:43
作者
Boutouyrie, P
Boumaza, S
Challande, P
Lacolley, P
Laurent, S
机构
[1] Hop Broussais, Serv Pharmacol, Dept Pharmacol, F-75674 Paris 14, France
[2] URA CNRS 879, INSERM U337, St Cyr Lecole, France
关键词
viscosity; arteries; muscle; smooth; sodium nitroprusside; phenylephrine; aorta;
D O I
10.1161/01.HYP.32.2.360
中图分类号
R6 [外科学];
学科分类号
1002 ; 100210 ;
摘要
The relationships between steady and pulsatile pressures, smooth muscle tone, and arterial viscoelastic behavior remain a matter of controversy. We previously showed that arterial wall viscosity (AWV) was 3-fold lower in vivo than in vitro and suggested that in vivo active mechanisms could minimize intrinsic AWV to improve the efficiency of heart-vessel coupling energy balance. The aim of the present study was to determine the role of smooth muscle tone on AWV, under various levels of steady and pulsatile pressures, both in vivo and in vitro. AWV of rat abdominal aorta was studied first in vivo after bolus injections of phenylephrine (PE) or sodium nitroprusside (SNP), then in vitro in response to PE or SNP. In vitro, arterial segments were submitted first to steady pressure (0 to 200 mm Hg) by increments of 20 mm Hg, then to increasing levels of pulse pressure (20 to 50 mm Hg) at various mean arterial pressures (75 to 150 mm Hg). AWV was quantified as the area of the pressure/diameter relationship hysteresis, issued from the simultaneous measurements of pressure (Millar micromanometer) and diameter (NIUS echotracking device). In vivo, AWV increased after PE and decreased after SNP, in parallel with pressure changes. In vitro, AWV was not significantly influenced by PE and SNP. After both PE and SNP, AWV increased with pulse pressure but was not influenced by mean arterial pressure. At any given pulse pressure, AWV was higher in vitro than in vive. The relation between AWV and pulse pressure was significantly steeper in vitro than in vive. These results show that AWV is strongly influenced by steady and pulsatile mechanical load but not by smooth muscle tone, both in vive and in vitro. Factors other than sustained smooth muscle activation should be explored to explain the minimization of AWV in vive compared with intrinsic in vitro values.
引用
收藏
页码:360 / 364
页数:5
相关论文
共 24 条
[1]   SEPARATE DETERMINATION OF THE PULSATILE ELASTIC AND VISCOUS FORCES DEVELOPED IN THE ARTERIAL-WALL INVIVO [J].
BAUER, RD ;
BUSSE, R ;
SCHABERT, A ;
SUMMA, Y ;
WETTERER, E .
PFLUGERS ARCHIV-EUROPEAN JOURNAL OF PHYSIOLOGY, 1979, 380 (03) :221-226
[2]   DYNAMIC ELASTIC PROPERTIES OF ARTERIAL WALL [J].
BERGEL, DH .
JOURNAL OF PHYSIOLOGY-LONDON, 1961, 156 (03) :458-&
[3]   ENERGY-DISSIPATION AND PULSE-WAVE ATTENUATION IN THE CANINE CAROTID-ARTERY [J].
BERTRAM, CD .
JOURNAL OF BIOMECHANICS, 1980, 13 (12) :1061-1073
[4]   In vivo in vitro comparison of rat abdominal aorta wall viscosity - Influence of endothelial function [J].
Boutouyrie, P ;
Bezie, Y ;
Lacolley, P ;
Challande, P ;
ChamiotClerc, P ;
Benetos, A ;
delaFaverie, JFR ;
Safar, M ;
Laurent, S .
ARTERIOSCLEROSIS THROMBOSIS AND VASCULAR BIOLOGY, 1997, 17 (07) :1346-1355
[5]   SYMPATHETIC ACTIVATION DECREASES MEDIUM-SIZED ARTERIAL COMPLIANCE IN HUMANS [J].
BOUTOUYRIE, P ;
LACOLLEY, P ;
GIRERD, X ;
BECK, L ;
SAFAR, M ;
LAURENT, S .
AMERICAN JOURNAL OF PHYSIOLOGY-HEART AND CIRCULATORY PHYSIOLOGY, 1994, 267 (04) :H1368-H1376
[6]  
BRODLEY WE, 1976, J BIOMECH, V9, P489
[7]   DEPENDENCE OF ELASTIC AND VISCOUS PROPERTIES OF ELASTIC ARTERIES ON CIRCUMFERENTIAL WALL STRESS AT 2 DIFFERENT SMOOTH-MUSCLE TONES [J].
BUSSE, R ;
BAUER, RD ;
SATTLER, T ;
SCHABERT, A .
PFLUGERS ARCHIV-EUROPEAN JOURNAL OF PHYSIOLOGY, 1981, 390 (02) :113-119
[8]   INFLUENCE OF VASCULAR SMOOTH MUSCLE ON CONTRACTILE MECHANICS AND ELASTICITY OF ARTERIES [J].
DOBRIN, PB ;
ROVICK, AA .
AMERICAN JOURNAL OF PHYSIOLOGY, 1969, 217 (06) :1644-&
[9]   PSEUDOELASTICITY OF ARTERIES AND THE CHOICE OF ITS MATHEMATICAL EXPRESSION [J].
FUNG, YC ;
FRONEK, K ;
PATITUCCI, P .
AMERICAN JOURNAL OF PHYSIOLOGY, 1979, 237 (05) :H620-H631
[10]  
FUNG YC, 1992, BIOMECHANICS MECHANI, P281