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首页> 外文期刊>Annals of Biomedical Engineering >Blood HbO2 and HbCO2 Dissociation Curves at Varied O2, CO2, pH, 2,3-DPG and Temperature Levels
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Blood HbO2 and HbCO2 Dissociation Curves at Varied O2, CO2, pH, 2,3-DPG and Temperature Levels

机译:O2,CO2,pH,2,3-DPG和温度水平下的血液HbO2 和HbCO2 解离曲线

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New mathematical model equations for O2 and CO2 saturations of hemoglobin (S HbO 2 and S HbCO 2) are developed here from the equilibrium binding of O2 and CO2 with hemoglobin inside RBCs. They are in the form of an invertible Hill-type equation with the apparent Hill coefficients K HbO 2 and K HbCO 2 in the expressions for S HbO 2 and S HbCO 2 dependent on the levels of O2 and CO2 partial pressures (P O 2 and P CO 2), pH, 2,3-DPG concentration, and temperature in blood. The invertibility of these new equations allows P O 2 and P CO 2 to be computed efficiently from S HbO 2 and S HbCO 2 and vice-versa. The oxyhemoglobin (HbO2) and carbamino-hemoglobin (HbCO2) dissociation curves computed from these equations are in good agreement with the published experimental and theoretical curves in the literature. The model solutions describe that, at standard physiological conditions, the hemoglobin is about 97.2% saturated by O2 and the amino group of hemoglobin is about 13.1% saturated by CO2. The O2 and CO2 content in whole blood are also calculated here from the gas solubilities, hematocrits, and the new formulas for S HbO 2 and S HbCO 2. Because of the mathematical simplicity and invertibility, these new formulas can be conveniently used in the modeling of simultaneous transport and exchange of O2 and CO2 in the alveoli-blood and blood-tissue exchange systems.
机译:从平衡点出发,建立了新的血红蛋白O2 和CO2 饱和度的数学模型方程(S HbO 2 和S HbCO 2 ) O2 和CO2 与红细胞内血红蛋白的结合。它们采用可逆希尔型方程的形式,在S HbO的表达式中具有视希尔系数K HbO 2 和K HbCO 2 2 和S HbCO 2 取决于O2 和CO2 分压(PO 2 和P CO 2 ),pH,2,3-DPG浓度和血液中的温度。这些新方程的可逆性使PO 2 和P CO 2 可以从S HbO 2 和S HbCO 2 ,反之亦然。由这些方程式计算出的氧合血红蛋白(HbO2 )和卡巴氨基血红蛋白(HbCO2 )解离曲线与文献中已发表的实验和理论曲线相吻合。模型解决方案描述了在标准生理条件下,O2饱和了血红蛋白的浓度 ,而CO2饱和了血红蛋白的氨基饱和度的13.1%。这里还从气体溶解度,血细胞比容以及S HbO 2 和S HbCO 的新公式计算出全血中O2 和CO2 的含量2 。由于数学上的简单性和可逆性,这些新公式可方便地用于在肺泡血液和血液组织交换系统中同时传输和交换O2 和CO2 的模型。

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