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日本血吸虫谷胱甘肽S-转移酶不可逆热变性的动力学研究

Kinetic study on the irreversible thermal denaturation of Schistosoma japonicum glutathione S-transferase.

作者信息

Quesada-Soriano Indalecio, García-Maroto Federico, García-Fuentes Luis

机构信息

Dpto. de Química Física, Bioquímica y Q. Inorgánica, Facultad de Ciencias Experimentales, Universidad de Almería, La Cañada de San Urbano, 04120 Almería, Spain.

出版信息

Biochim Biophys Acta. 2006 May;1764(5):979-84. doi: 10.1016/j.bbapap.2006.03.002. Epub 2006 Apr 4.

Abstract

The thermal unfolding pathway of the Schistosoma japonicum glutathione S-transferase (Sj26GST) was previously interpreted by applying equilibrium thermodynamics and a reversible two-state model (Kaplan et al., (1997) Protein Science, 6, 399-406), though weak support for this interpretation was provided. In our study, thermal denaturation of Sj26GST has been re-examined by differential scanning calorimetry in the pH range of 6.5-8.5 and in the presence of the substrate and S-hexylglutathione. Calorimetric traces were found to be irreversible and highly scan-rate dependent. Thermogram shapes, as well as their scan-rate dependence, can be globally explained by assuming that thermal denaturation takes place according to one irreversible step described by a first-order kinetic constant that changes with temperature, as given by an Arrhenius equation. On the basis of this model, values for the rate constant as a function of temperature and the activation energy have been determined. Data also indicate that binding of GSH or S-hexylglutathione just exert a very little stabilising effect on the dimeric structure of the molecule.

摘要

日本血吸虫谷胱甘肽S-转移酶(Sj26GST)的热解折叠途径此前是通过应用平衡热力学和可逆二态模型来解释的(卡普兰等人,(1997年)《蛋白质科学》,6,399 - 406),不过对这种解释的支持力度较弱。在我们的研究中,通过差示扫描量热法在pH值6.5 - 8.5范围内以及存在底物和S - 己基谷胱甘肽的情况下对Sj26GST的热变性进行了重新研究。发现量热曲线是不可逆的且高度依赖扫描速率。热谱图形状及其对扫描速率的依赖性可以通过假设热变性按照由随温度变化的一级动力学常数描述的一个不可逆步骤发生来整体解释,该常数由阿仑尼乌斯方程给出。基于此模型,已确定了速率常数随温度变化的值以及活化能。数据还表明,谷胱甘肽(GSH)或S - 己基谷胱甘肽的结合对该分子的二聚体结构仅产生非常小的稳定作用。

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