首页> 外文期刊>Thermochimica Acta: An International Journal Concerned with the Broader Aspects of Thermochemistry and Its Applications to Chemical Problems >HEAT FLUX AND THE CALORIMETRIC-RESPIROMETRIC RATIO AS MEASURES OF CATABOLIC FLUX IN MAMMALIAN CELLS
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HEAT FLUX AND THE CALORIMETRIC-RESPIROMETRIC RATIO AS MEASURES OF CATABOLIC FLUX IN MAMMALIAN CELLS

机译:热通量和热量-热量比作为哺乳动物细胞中分解代谢通量的测定

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It is advocated that cellular heat flow rate (Phi = dQ/dt, where Q is heat) be expressed as an intensive quantity specific to cell size (X) and termed heat flux (J(Phi/X)). It has been the practice to cite such data on a 'per cell' basis, but it would be preferable to use biomass (cellular volume or mass). This quantity is shown to be a measure of metabolic activity and, more accurately, catabolic rate coupled to the demand for ATP in anabolic processes and work in the cell. Recent developments in flow microcalorimetry and dielectric spectroscopy reveal that heat flux can be measured on-line, with the potential of industrial use as a control variable in the growth of hybridoma and genetically engineered cells. This is because the enthalpy change of growth can be regarded as a unique kind of stoichiometric coefficient directly related to the mass coefficients in the growth reaction. This can be verified by an enthalpy balance comparing data for material fluxes of catabolites with the value for heat flux. Information revealed by the stoichiometric growth equation can be used to improve medium design. The ratio of heat flux to oxygen consumption (flux) is known as the calorimetric-respirometric (CR) ratio. It detects anaerobic processes when the value is more negative than -450 (+/-5%) kJ mol(-1) O-2. These processes are found in cells growing under fully aerobic conditions, because glycolysis provides biosynthetic precursors with lactate as the by-product. It is suggested that the CR ratio would be a powerful on-line control variable for the growth of animal cells in bioreactors. (C) 1997 Elsevier Science B.V. [References: 65]
机译:提倡将细胞的热流率(Phi = dQ / dt,其中Q为热)表示为特定于细胞大小(X)的集约量,并称为热通量(J(Phi / X))。惯例是在“每个细胞”的基础上引用此类数据,但最好使用生物质(细胞体积或质量)。该量显示为代谢活性的量度,更准确地说,是分解代谢率与合成代谢过程和细胞中对ATP需求的耦合。流动微量量热法和介电谱学的最新发展表明,可以在线测量热通量,工业用途的潜力可作为杂交瘤和基因工程细胞生长的控制变量。这是因为生长的焓变可以被视为与生长反应中的质量系数直接相关的独特的化学计量系数。这可以通过将分解代谢物的材料通量数据与热通量值进行比较的焓平衡来验证。化学计量增长方程揭示的信息可用于改进培养基设计。热通量与氧气消耗量(通量)之比称为量热呼吸法(CR)。当该值比-450(+/- 5%)kJ mol(-1)O-2更负时,它将检测到厌氧过程。在完全有氧条件下生长的细胞中发现了这些过程,因为糖酵解提供了生物合成的前体,其中乳酸是副产物。建议CR比率将是生物反应器中动物细胞生长的强大在线控制变量。 (C)1997 Elsevier Science B.V. [参考:65]

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