Myoglobin facilitated oxygen diffusion in the heart: a mathematical assessment

J. Gardner, R. W. Schubert
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Abstract

Previous theoretical assessments of myoglobin facilitation have failed to validate modeling results with a comparison to experimental data. In this study, myoglobin reaction kinetics is added to a proven cardiac tissue model in an effort to determine the extent of myoglobin facilitation. The mathematical model is compared to experimental pO/sub 2/ measurements taken from an isolated perfused cat heart preparation. The model is based upon the Krogh cylinder. In the tissue region there is axial diffusion, zero-order oxygen consumption, and myoglobin kinetics. Oxygen flux leaving the capillary is represented by a concentration difference times a mass transport coefficient, meaning that the tissue is considered "well mixed" radially. The tissue model is called the Radially-Averaged-Axially-Distributed (RAAD) model. Formulation of the mathematical problem describing the RAAD model yields a stiff, fourth-order, nonlinear, ordinary differential equation, boundary value problem. The equation set was solved numerically using a finite difference routine on a mainframe computer. The amount of diffusion facilitation by myoglobin was estimated by observing the inlet arteriolar pO/sub 2/ for the model with and without myoglobin. The computer simulations show that myoglobin does facilitate diffusion, but only to a small extent. The change in arteriolar pO/sub 2/ was less than 1% (0.76%). The facilitation is limited due to the low concentration and low diffusability of myoglobin in tissue. This suggests that facilitation of oxygen transport is not myoglobin's main physiological function.
肌红蛋白促进氧气在心脏的扩散:一个数学评估
先前对肌红蛋白促进的理论评估未能通过与实验数据的比较来验证模型结果。在这项研究中,肌红蛋白反应动力学被添加到一个已证实的心脏组织模型中,以确定肌红蛋白促进的程度。将数学模型与从离体灌注猫心脏制备中获得的实验pO/sub 2/测量值进行了比较。这个模型是以克拉夫圆柱为基础的。在组织区域有轴向扩散、零级氧消耗和肌红蛋白动力学。离开毛细管的氧通量由浓度差乘以质量传递系数表示,这意味着组织被认为是径向“充分混合”的。该组织模型称为径向平均轴向分布(RAAD)模型。描述RAAD模型的数学问题的公式产生一个刚性的,四阶的,非线性的,常微分方程,边值问题。在大型计算机上用有限差分程序对方程组进行了数值求解。通过观察有肌红蛋白和无肌红蛋白模型的入口小动脉pO/sub 2/来估计肌红蛋白促进扩散的量。计算机模拟表明肌红蛋白确实促进了扩散,但只是在很小的程度上。小动脉pO/sub 2/变化小于1%(0.76%)。由于组织中肌红蛋白的低浓度和低扩散性,促进作用受到限制。这表明促进氧运输并不是肌红蛋白的主要生理功能。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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