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通过对坦克履带运动的流变学观察测定红细胞膜粘度

Determination of red blood cell membrane viscosity from rheoscopic observations of tank-treading motion.

作者信息

Tran-Son-Tay R, Sutera S P, Rao P R

出版信息

Biophys J. 1984 Jul;46(1):65-72. doi: 10.1016/S0006-3495(84)83999-5.

Abstract

Measurements of the dimensions and membrane rotational frequency of individual erythrocytes steadily tank-treading in a rheoscope are used to deduce the surface shear viscosity of the membrane. The method is based on an integral energy principle which says that the power supplied to the tank-treading cell by the suspending fluid is equal to the rate at which energy is dissipated by viscous action in the membrane and cytoplasm. The integrals involved are formulated with the aid of an idealized mathematical model of the tank-treading red blood cell (RBC) (Keller and Skalak, 1982, J. Fluid Mech., 120:24-27) and evaluated numerically. The outcome is a surface-averaged value of membrane viscosity which is representative of a finite interval of membrane shear rate. The numerical values computed show a clear shear-thinning characteristic as well as a significant augmentation of viscosity with cell age and tend toward agreement with those determined for the rapid phase of shape recovery in micropipettes (Chien, S., K.-L. P. Sung, R. Skalak, S. Usami, and A. Tozeren, 1978, Biophys. J., 24:463-487). The computations also indicate that the rate of energy dissipation in the membrane is always substantially greater than that in the cytoplasm.

摘要

通过测量流变仪中单个持续“坦克履带式”运动的红细胞的尺寸和膜旋转频率,来推断膜的表面剪切粘度。该方法基于一个积分能量原理,即悬浮液提供给做“坦克履带式”运动细胞的功率等于膜和细胞质中粘性作用耗散能量的速率。所涉及的积分借助做“坦克履带式”运动红细胞(RBC)的理想化数学模型来制定(凯勒和斯卡拉,1982年,《流体力学杂志》,120:24 - 27),并进行数值计算。结果是膜粘度的表面平均值,它代表膜剪切速率的一个有限区间。计算得到的数值显示出明显的剪切变稀特性以及粘度随细胞年龄的显著增加,并且趋于与微量移液器中形状恢复快速阶段所确定的值一致(钱,S.,K.-L.P. 宋,R. 斯卡拉,S. 宇佐美和A. 托泽伦,1978年,《生物物理杂志》,24:463 - 487)。计算还表明,膜中的能量耗散速率总是远大于细胞质中的能量耗散速率。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/8910/1434931/fdcc928a191c/biophysj00203-0068-a.jpg

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