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Cat Heart Muscle in Vitro

机译:猫体外心脏肌肉

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The rate of transfer of labeled molecules across a sheet of quiescent cat right ventricle separating two chambers containing chemically identical solutions was followed at 23°C. For the diffusion of sucrose, SO4, and Na the experimental points fit the entire time course of the plot of the diffusion equation for a plane sheet. The tortuosity factor of the extracellular diffusion channel, λ was 1.44 ± 0.05 (mean ± SEM) for sucrose and similar for SO4 and Na. The fractional area available for extracellular diffusion, calculated from λ and the slope of the linear asymptote approached during steady state diffusion, was 0.17–0.23 for both impermeant species (sucrose, SO4, Na) and permeant species (water, urea, glycerol). Permeant molecules showed a characteristic prolongation of the approach to the steady state, with an unexplained "hump" in the curve for water. The observed time courses for diffusion of permeant molecules are interpreted in terms of a model proposed by Fatt et al . for diffusion through linear porous media containing dead-end pore volume. Large molecules like inulin and dialyzed dextran (diameter 150 to 180 A) diffuse through the sheet. These molecules may have a reflection coefficient σ 0. The fraction of muscle water occupied by the sucrose diffusion channel is significantly smaller than the 3 hr. mannitol, sucrose, and inulin spaces.
机译:在23℃下追踪标记的分子跨过静态的猫右心室片材的转移速率,所述片状的静息的猫右心室将包含化学相同溶液的两个腔室分开。对于蔗糖,SO4和Na的扩散,实验点适合平面扩散方程图的整个时间过程。蔗糖的细胞外扩散通道的曲折因子λ为1.44±0.05(平均值±SEM),而SO4和Na则相似。根据λ和稳态扩散过程中接近的线性渐近线的斜率计算出的可用于细胞外扩散的面积,对于非渗透性物质(蔗糖,SO4,Na)和渗透性物质(水,尿素,甘油)均为0.17-0.23。渗透性分子显示出接近稳态的特征性延长,其中水的曲线出现无法解释的“峰”。 Fatt等人提出的模型解释了观察到的渗透分子扩散的时间过程。通过包含死角孔体积的线性多孔介质扩散。菊粉和透析的右旋糖酐(直径150至180 A)之类的大分子扩散通过薄层。这些分子的反射系数σ>0。蔗糖扩散通道所占的肌肉水比例明显小于3小时。甘露醇,蔗糖和菊粉空间。

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