Morales-Rios Edgar, Watt Ian N, Zhang Qifeng, Ding Shujing, Fearnley Ian M, Montgomery Martin G, Wakelam Michael J O, Walker John E
The Medical Research Council Mitochondrial Biology Unit, Cambridge Biomedical Campus, Hills Road, Cambridge CB2 0XY, UK.
The Babraham Institute, Cambridge CB22 3AT, UK.
Open Biol. 2015 Sep;5(9):150119. doi: 10.1098/rsob.150119.
The structures of F-ATPases have been determined predominantly with mitochondrial enzymes, but hitherto no F-ATPase has been crystallized intact. A high-resolution model of the bovine enzyme built up from separate sub-structures determined by X-ray crystallography contains about 85% of the entire complex, but it lacks a crucial region that provides a transmembrane proton pathway involved in the generation of the rotary mechanism that drives the synthesis of ATP. Here the isolation, characterization and crystallization of an integral F-ATPase complex from the α-proteobacterium Paracoccus denitrificans are described. Unlike many eubacterial F-ATPases, which can both synthesize and hydrolyse ATP, the P. denitrificans enzyme can only carry out the synthetic reaction. The mechanism of inhibition of its ATP hydrolytic activity involves a ζ inhibitor protein, which binds to the catalytic F₁-domain of the enzyme. The complex that has been crystallized, and the crystals themselves, contain the nine core proteins of the complete F-ATPase complex plus the ζ inhibitor protein. The formation of crystals depends upon the presence of bound bacterial cardiolipin and phospholipid molecules; when they were removed, the complex failed to crystallize. The experiments open the way to an atomic structure of an F-ATPase complex.
F-ATP合酶的结构主要是通过线粒体酶来确定的,但迄今为止,还没有完整的F-ATP合酶被结晶出来。一个由X射线晶体学确定的各个子结构构建而成的牛F-ATP合酶高分辨率模型包含了整个复合物约85%的部分,但它缺少一个关键区域,该区域提供了参与驱动ATP合成的旋转机制产生的跨膜质子通道。本文描述了从反硝化副球菌这种α-变形菌中分离、表征和结晶完整的F-ATP合酶复合物的过程。与许多既能合成又能水解ATP的真细菌F-ATP合酶不同,反硝化副球菌的这种酶只能进行合成反应。其ATP水解活性的抑制机制涉及一种ζ抑制蛋白,它与该酶的催化F₁结构域结合。已结晶的复合物以及晶体本身包含完整F-ATP合酶复合物的九种核心蛋白加上ζ抑制蛋白。晶体的形成取决于结合的细菌心磷脂和磷脂分子的存在;当它们被去除时,复合物无法结晶。这些实验为F-ATP合酶复合物的原子结构研究开辟了道路。