Decrease in coronary blood flow reserve during hyperlipidemia is secondary to an increase in blood viscosity

被引:94
作者
Rim, SJ [1 ]
Leong-Poi, H [1 ]
Lindner, JR [1 ]
Wei, K [1 ]
Fisher, NG [1 ]
Kaul, S [1 ]
机构
[1] Univ Virginia, Div Cardiovasc, Med Ctr, Cardiovasc Imaging Ctr, Charlottesville, VA 22908 USA
关键词
risk factors; lipids; microcirculation;
D O I
10.1161/hc4701.099580
中图分类号
R5 [内科学];
学科分类号
1002 ; 100201 ;
摘要
Background-During maximal hyperemia, capillaries provide the greatest resistance to flow. A major determinant of capillary resistance is viscosity. We, therefore, hypothesized that abnormal coronary blood flow (CBF) reserve observed during hyperlipidemia is secondary to increased blood viscosity and not abnormal coronary vasomotion. Methods and Results-Maximal hyperemia was induced in 9 dogs using adenosine. Serum triglyceride levels were increased by incremental doses of Intralipid. A good correlation was noted between serum triglyceride levels and blood viscosity (r=0.82). Neither total coronary blood volume nor myocardial blood volume changed with increasing serum triglyceride levels, indicating lack of vasomotion. Myocardial vascular resistance (MVR) increased with increasing triglyceride levels (r=0.84), while hyperemic myocardial blood flow (MBF) decreased (r=-0.64). The decrease in hyperemic MBF was associated with a decrease in blood velocity (r=-0.56). These findings were confirmed with direct intravital microscopic observations in the mice cremaster muscle. Conclusions-Increasing lipid levels in a fully dilated normal coronary bed causes no change in large or small vessel dimensions. Instead, the increase in blood viscosity causes capillary resistance to rise, which attenuates hyperemic CBF. Therefore, the abnormal CBF reserve associated with hyperlipidemia is due to increase blood viscosity and not abnormal vascular function.
引用
收藏
页码:2704 / 2709
页数:6
相关论文
共 27 条
[1]   MICROVASCULAR DISTRIBUTION OF CORONARY VASCULAR-RESISTANCE IN BEATING LEFT-VENTRICLE [J].
CHILIAN, WM ;
EASTHAM, CL ;
MARCUS, ML .
AMERICAN JOURNAL OF PHYSIOLOGY, 1986, 251 (04) :H779-H788
[2]   EFFECT OF SHORT-TERM CARDIOVASCULAR CONDITIONING AND LOW-FAT DIET ON MYOCARDIAL BLOOD-FLOW AND FLOW RESERVE [J].
CZERNIN, J ;
BARNARD, J ;
SUN, KT ;
KRIVOKAPICH, J ;
NITZSCHE, E ;
DORSEY, D ;
PHELPS, ME ;
SCHELBERT, HR .
CIRCULATION, 1995, 92 (02) :197-204
[3]   EARLY DETECTION OF ABNORMAL CORONARY FLOW RESERVE IN ASYMPTOMATIC MEN AT HIGH-RISK FOR CORONARY-ARTERY DISEASE USING POSITRON EMISSION TOMOGRAPHY [J].
DAYANIKLI, F ;
GRAMBOW, D ;
MUZIK, O ;
MOSCA, L ;
RUBENFIRE, M ;
SCHWAIGER, M .
CIRCULATION, 1994, 90 (02) :808-817
[4]   REDUCTION IN SERUM-CHOLESTEROL WITH PRAVASTATIN IMPROVES ENDOTHELIUM-DEPENDENT CORONARY VASOMOTION IN PATIENTS WITH HYPERCHOLESTEROLEMIA [J].
EGASHIRA, K ;
HIROOKA, Y ;
KAI, H ;
SUGIMACHI, M ;
SUZUKI, S ;
INOU, T ;
TAKESHITA, A .
CIRCULATION, 1994, 89 (06) :2519-2524
[5]   BLOOD-FLOW MEASUREMENTS WITH RADIONUCLIDE-LABELED PARTICLES [J].
HEYMANN, MA ;
PAYNE, BD ;
HOFFMAN, JIE ;
RUDOLPH, AM .
PROGRESS IN CARDIOVASCULAR DISEASES, 1977, 20 (01) :55-79
[6]  
Hozumi T, 2001, J AM COLL CARDIOL, V37, p259A
[7]  
HULSMANN WC, 1976, BASIC RES CARDIOL, V71, P179
[8]   Role of capillaries in determining CBF reserve: new insights using myocardial contrast echocardiography [J].
Jayaweera, AR ;
Wei, K ;
Coggins, M ;
Bin, JP ;
Goodman, C ;
Kaul, S .
AMERICAN JOURNAL OF PHYSIOLOGY-HEART AND CIRCULATORY PHYSIOLOGY, 1999, 277 (06) :H2363-H2372
[9]   IN-VIVO MYOCARDIAL KINETICS OF AIR-FILLED ALBUMIN MICROBUBBLES DURING MYOCARDIAL CONTRAST ECHOCARDIOGRAPHY - COMPARISON WITH RADIOLABELED RED-BLOOD-CELLS [J].
JAYAWEERA, AR ;
EDWARDS, N ;
GLASHEEN, WP ;
VILLANUEVA, FS ;
ABBOTT, RD ;
KAUL, S .
CIRCULATION RESEARCH, 1994, 74 (06) :1157-1165
[10]   LOVASTATIN ALTERS BLOOD RHEOLOGY IN PRIMARY HYPERLIPOPROTEINEMIA - DEPENDENCE ON LIPOPROTEIN(A) [J].
KOENIG, W ;
HEHR, R ;
DITSCHUNEIT, HH ;
KUHN, K ;
ERNST, E ;
ROSENTHAL, J ;
HOMBACH, V .
JOURNAL OF CLINICAL PHARMACOLOGY, 1992, 32 (06) :539-545