Ronjat M, Lacapere J J, Dufour J P, Dupont Y
J Biol Chem. 1987 Mar 5;262(7):3146-53.
The plasma membrane of yeasts contains an H+-ATPase similar to the other cation transport ATPases of eukaryotic organisms. This enzyme has been purified and shows H+ transport in reconstituted vesicles. In the presence of Mg2+, formycin triphosphate (FTP) is hydrolyzed by the H+-ATPase and supports H+ transport. When combined with terbium ion, FTP (Tb-FTP) and ATP (Tb-ATP) are no longer hydrolyzed. Competition between Mg-ATP and Tb-FTP for ATP hydrolysis indicates that terbium-associated nucleotides bind to the catalytic site of the H+-ATPase. The fluorescent properties of the Tb-FTP complex were used to study the active site of the H+-ATPase. Fluorescence of Tb-FTP is greatly enhanced upon binding into the nucleotide site of H+-ATPase with a dissociation constant of 1 microM. Tb-ATP, Tb-ADP, and Tb-ITP are competitive inhibitors of Tb-FTP binding with Ki = 4.5, 5.0, and 6.0 microM, respectively. Binding of Tb-FTP is observed only in the presence of an excess of Tb3+ with an activation constant Ka = 25 microM for Tb3+. Analysis of the data reveals that the sites for Tb-FTP and Tb3+ binding are independent entities. In standard conditions these sites would be occupied by Mg-ATP and Mg2+, respectively. These findings suggest an important regulatory role of divalent cations on the activity of H+-ATPase. Replacement of H2O by D2O in the medium suggests the existence of two types of nucleotide binding sites differing by the hydration state of the Tb3+ ion in the bound Tb-FTP complex.
酵母的质膜含有一种与真核生物的其他阳离子转运ATP酶类似的H⁺-ATP酶。这种酶已被纯化,并在重构囊泡中显示出H⁺转运活性。在Mg²⁺存在的情况下,三磷酸间型霉素(FTP)可被H⁺-ATP酶水解,并支持H⁺转运。当与铽离子结合时,FTP(Tb-FTP)和ATP(Tb-ATP)不再被水解。Mg-ATP和Tb-FTP在ATP水解方面的竞争表明,与铽结合的核苷酸结合到了H⁺-ATP酶的催化位点。利用Tb-FTP复合物的荧光特性来研究H⁺-ATP酶的活性位点。当Tb-FTP结合到H⁺-ATP酶的核苷酸位点时,其荧光会大大增强,解离常数为1微摩尔。Tb-ATP、Tb-ADP和Tb-ITP是Tb-FTP结合的竞争性抑制剂,其抑制常数Ki分别为4.5、5.0和6.0微摩尔。仅在存在过量Tb³⁺的情况下观察到Tb-FTP的结合,Tb³⁺的活化常数Ka = 25微摩尔。对数据的分析表明,Tb-FTP和Tb³⁺结合位点是独立的实体。在标准条件下,这些位点将分别被Mg-ATP和Mg²⁺占据。这些发现表明二价阳离子对H⁺-ATP酶的活性具有重要的调节作用。介质中用D₂O替代H₂O表明,在结合的Tb-FTP复合物中,存在两种因Tb³⁺离子水合状态不同而不同的核苷酸结合位点。