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使用不同方法对对照分析数据进行比较:建模与肌肉提取物实验。

Comparison of control analysis data using different approaches: modelling and experiments with muscle extract.

作者信息

Puigjaner J, Raïs B, Burgos M, Comin B, Ovádi J, Cascante M

机构信息

Departament de Bioquímica i Biologia Molecular, Universitat de Barcelona, Catalunya, Spain.

出版信息

FEBS Lett. 1997 Nov 24;418(1-2):47-52. doi: 10.1016/s0014-5793(97)01347-1.

Abstract

Experimental and model studies have been performed to characterize the control properties of hexokinase and phosphofructokinase in muscle glycolysis and to examine the nature of error associated with experimental flux control coefficient determinations. Different approaches of metabolic control analysis, classical titration, co-response analysis and kinetic modelling indicated that flux control coefficients could be reliably estimated experimentally for the upper part of glycolysis. The kinetic parameters applied to construct the mathematical model were determined in muscle extract under similar conditions used for flux studies. If the kinetic parameters of commercial enzymes are introduced into the model the control analysis data cannot be trusted. Co-response analysis can also be successfully applied to determination of the flux control coefficients of the system. However, the involvement of a rapid-equilibrium enzyme, such as glucose 6-phosphate isomerase, could result in estimation errors for the relevant co-response coefficients that are propagated into the elasticity matrix. If the co-response coefficients related to isomerase activity are replaced by the values obtained by kinetic modelling, the values of elasticities are correct. Our data also suggest that in the upper part of glycolysis hexokinase mainly controls the pathway flux whereas phosphofructokinase exerts dominant control on the turnover of internal metabolite stocks inside the system.

摘要

已经进行了实验和模型研究,以表征己糖激酶和磷酸果糖激酶在肌肉糖酵解中的控制特性,并检验与实验通量控制系数测定相关的误差性质。代谢控制分析的不同方法,经典滴定法、共响应分析法和动力学建模表明,对于糖酵解的上部,可以通过实验可靠地估计通量控制系数。用于构建数学模型的动力学参数是在与通量研究相同的条件下在肌肉提取物中测定的。如果将商业酶的动力学参数引入模型,控制分析数据将不可信。共响应分析也可以成功地应用于系统通量控制系数的测定。然而,快速平衡酶(如葡萄糖6-磷酸异构酶)的参与可能导致相关共响应系数的估计误差,这些误差会传播到弹性矩阵中。如果将与异构酶活性相关的共响应系数替换为通过动力学建模获得的值,则弹性值是正确的。我们的数据还表明,在糖酵解的上部,己糖激酶主要控制途径通量,而磷酸果糖激酶对系统内内部代谢物库的周转起主导控制作用。

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