Dimer asymmetry and the catalytic cycle of alkaline phosphatase from Escherichia coli.

Stjepan Orhanović, Maja Pavela-Vrancic
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引用次数: 20

Abstract

Although alkaline phosphatase (APase) from Escherichia coli crystallizes as a symmetric dimer, it displays deviations from Michaelis-Menten kinetics, supported by a model describing a dimeric enzyme with unequal subunits [Orhanović S., Pavela-Vrancic M. and Flogel-Mrsić M. (1994) Acta. Pharm.44, 87-95]. The possibility, that the observed asymmetry could be attributed to negative cooperativity in Mg2+ binding, has been examined. The influence of the metal ion content on the catalytic properties of APase from E. coli has been examined by kinetic analyses. An activation study has indicated that Mg2+ enhances APase activity by a mechanism that involves interactions between subunits. The observed deviations from Michaelis-Menten kinetics are independent of saturation with Zn2+ or Mg2+ ions, suggesting that asymmetry is an intrinsic property of the dimeric enzyme. In accordance with the experimental data, a model describing the mechanism of substrate hydrolysis by APase has been proposed. The release of the product is enhanced by a conformational change generating a subunit with lower affinity for both the substrate and the product. In the course of the catalytic cycle the conformation of the subunits alternates between two states in order to enable substrate binding and product release. APase displays higher activity in the presence of Mg2+, as binding of Mg2+ increases the rate of conformational change. A conformationally controlled and Mg2+-assisted dissociation of the reaction product (Pi) could serve as a kinetic switch preventing loss of Pi into the environment.

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二聚体不对称与大肠杆菌碱性磷酸酶的催化循环。
尽管来自大肠杆菌的碱性磷酸酶(APase)结晶为对称二聚体,但它显示出与Michaelis-Menten动力学的偏差,这得到了描述具有不相等亚基的二聚体酶的模型的支持[orhanoviki S., Pavela-Vrancic M.和fogel - mrsiki M. (1994) Acta.]。Pharm.44, 87 - 95]。观察到的不对称可能归因于Mg2+结合中的负协同性,这一可能性已经得到了检验。采用动力学分析方法研究了金属离子含量对大肠杆菌APase催化性能的影响。一项激活研究表明,Mg2+通过一种涉及亚基之间相互作用的机制增强APase活性。观察到的Michaelis-Menten动力学偏差与Zn2+或Mg2+离子的饱和无关,表明不对称性是二聚体酶的固有特性。根据实验数据,提出了一个描述APase水解底物机理的模型。产物的释放通过产生对底物和产物都具有较低亲和力的亚基的构象变化而增强。在催化循环过程中,亚基的构象在两种状态之间交替,以使底物结合和产物释放。在Mg2+的存在下,APase表现出更高的活性,因为Mg2+的结合增加了构象变化的速度。构象控制和Mg2+辅助的反应产物(Pi)解离可以作为一个动力学开关,防止Pi丢失到环境中。
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