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血细胞比容对犬冠状动脉舒张压-血流关系的影响。

Effect of packed cell volume on diastolic coronary artery pressure-flow relations in the dog.

作者信息

Kajiya F, Tsujioka K, Ogasawara Y, Wada Y, Hiramatsu O, Goto M, Nakai M, Tadaoka S, Matsuoka S, Sha Y

机构信息

Department of Medical Engineering, Kawasaki Medical School, Kurashiki, Japan.

出版信息

Cardiovasc Res. 1988 Aug;22(8):545-54. doi: 10.1093/cvr/22.8.545.

Abstract

To elucidate the role of the haemorheological properties of the perfusate in the coronary circulation, the diastolic pressure-flow relation was studied in nine open chest heart blocked dogs with minimal vasomotor tone when blood with various packed cell volumes (12-67%) was used as perfusate. An electrical analogue model with proximal resistance R1, capacitance C, distal resistance R2, and the zero flow pressure intercept Pint was derived from the observation of the pressure-flow relation to support the data analysis. The diastolic pressure decay was then determined after the perfusion line had been clamped to calculate stop flow coronary artery pressure (Psf). The stop flow coronary artery pressure decreased in relation to packed cell volume (r = 0.45, p less than 0.01), and the value for the lowest packed cell volume (10-29%) was slightly higher than the great cardiac vein pressure (about 3 mmHg). The zero flow pressure intercept of the steady state pressure-flow relation showed a close correlation with the stop flow coronary artery pressure (r = 0.87, p less than 0.001). The value of R1 + R2, which reflects the inverse of the steady state pressure-flow slope, decreased simultaneously with the packed cell volume (r = 0.62, p less than 0.001). The resistance ratio R2/(R1 + R2) by our model prediction decreased in relation to packed cell volume (r = 0.5, p less than 0.001). The values of stop flow coronary artery pressure, zero flow pressure intercept, and R1 + R2 for the highest packed cell volume (50-69%) were 17.8(1.1) mmHg, 25.1(1.3) mmHg, and 0.48(0.05) mmHg.ml-1.min.100 g-1 respectively, whereas those for the lowest packed cell volume (10-29%) were 13.4(0.8) mmHg, 19.7(1.0) mmHg, and 0.24(0.02) mmHg.ml-1.min.100 g-1. The pressure difference between the stop flow coronary artery pressure and the zero flow pressure intercept may be due to the non-linearity in the pressure-flow relation at a low perfusion pressure. The left ventricular end diastolic pressure and great cardiac vein pressure did not change in relation to the packed cell volume of the coronary perfusate. Thus it is concluded that packed cell volume is one factor determining the high zero flow pressure.

摘要

为了阐明灌注液血液流变学特性在冠状动脉循环中的作用,我们对9只开胸心脏阻滞犬在血管运动张力最小的情况下进行了研究,使用不同红细胞压积(12%-67%)的血液作为灌注液,观察舒张期压力-流量关系。通过对压力-流量关系的观察,得出了一个具有近端阻力R1、电容C、远端阻力R2和零流量压力截距Pint的电学模拟模型,以支持数据分析。然后在夹闭灌注管后测定舒张期压力衰减,以计算停流冠状动脉压力(Psf)。停流冠状动脉压力随红细胞压积增加而降低(r = 0.45,p<0.01),最低红细胞压积(10%-29%)时的值略高于大冠状静脉压力(约3 mmHg)。稳态压力-流量关系的零流量压力截距与停流冠状动脉压力密切相关(r = 0.87,p<0.001)。反映稳态压力-流量斜率倒数的R1 + R2值随红细胞压积同时降低(r = 0.62,p<0.001)。根据我们的模型预测,阻力比R2/(R1 + R2)随红细胞压积降低(r = 0.5,p<0.001)。最高红细胞压积(50%-69%)时的停流冠状动脉压力、零流量压力截距和R1 + R2值分别为17.8(1.1) mmHg、25.1(1.3) mmHg和0.48(0.05) mmHg·ml-1·min·100 g-1,而最低红细胞压积(10%-29%)时的值分别为13.4(0.8) mmHg、19.7(1.0) mmHg和0.24(0.02) mmHg·ml-1·min·100 g-1。停流冠状动脉压力与零流量压力截距之间的压力差可能是由于低灌注压力下压力-流量关系的非线性所致。左心室舒张末期压力和大冠状静脉压力与冠状动脉灌注液的红细胞压积无关。因此得出结论,红细胞压积是决定高零流量压力的因素之一。

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