Blanquet P R
Biochem J. 1983 Aug 1;213(2):479-84. doi: 10.1042/bj2130479.
This paper shows for the first time that effects of lipid ordering on the activity of surface-membrane enzymes can be interpreted in terms of the two-state allosteric transition theory. In this mathematical modelling, the conversion of an active molecule into a catalytically inactivated one of a given enzyme can be directly triggered by a change in the order parameter of lipids. Depending on the lipid order, the tendency for this conversion is either independent of the state of other enzyme molecules or co-operatively aided through intermolecular interactions that in turn depend on lipid ordering. The theory so developed is then applied to (Na+ + K+)-dependent adenosine triphosphatase (EC 3.6.1.3). On comparison of the relevant theoretical expression and published measurements, the fit to experimental results is shown to support the model. Furthermore, the model accounts for much of the data in the literature of the behaviour of this enzyme.
本文首次表明,脂质有序性对表面膜酶活性的影响可以用双态别构转变理论来解释。在这个数学模型中,脂质序参量的变化可以直接触发给定酶的活性分子向催化失活分子的转变。根据脂质有序性,这种转变的倾向要么与其他酶分子的状态无关,要么通过分子间相互作用协同促进,而分子间相互作用又取决于脂质有序性。然后将如此发展的理论应用于(Na⁺ + K⁺)依赖性三磷酸腺苷酶(EC 3.6.1.3)。通过比较相关的理论表达式和已发表的测量结果,发现与实验结果的拟合支持该模型。此外,该模型解释了该酶行为文献中的许多数据。