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Crystal structure of the plasma membrane proton pump

机译:质膜质子泵的晶体结构

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摘要

A prerequisite for life is the ability to maintain electrochemical imbalances across biomembranes. In all eukaryotes the plasma membrane potential and secondary transport systems are energized by the activity of P-type ATPase membrane proteins: H~+-ATPase (the proton pump) in plants and fungi, and Na~+,K~+-ATPase (the sodium-potassium pump) in animals. The name P-type derives from the fact that these proteins exploit a phosphorylated reaction cycle intermediate of ATP hydrolysis5. The plasma membrane proton pumps belong to the type III P-type ATPase subfamily, whereas Na~+,K~+-ATPase and Ca~(2+)-ATPase are type II. Electron microscopy has revealed the overall shape of proton pumps, however, an atomic structure has been lacking. Here we present the first structure of a P-type proton pump determined by X-ray crystallography. Ten transmembrane helices and three cytoplasmic domains define the functional unit of ATP-coupled proton transport across the plasma membrane, and the structure is locked in a functional state not previously observed in P-type ATPases. The transmembrane domain reveals a large cavity, which is likely to be filled with water, located near the middle of the membrane plane where it is lined by conserved hydrophilic and charged residues. Proton transport against a high membrane potential is readily explained by this structural arrangement.
机译:生命的先决条件是能够维持跨生物膜的电化学失衡的能力。在所有的真核生物中,质膜电位和二次转运系统都受P型ATPase膜蛋白的活性:植物和真菌中的H〜+ -ATPase(质子泵)和Na〜+,K〜+ -ATPase(钠钾泵)。 P型的名称源于以下事实:这些蛋白质利用了ATP水解的磷酸化反应循环中间产物5。质膜质子泵属于III型P型ATP酶亚家族,而Na〜+,K〜+ -ATPase和Ca〜(2 +)-ATPase属于II型。电子显微镜已经揭示了质子泵的整体形状,但是,缺乏原子结构。在这里,我们介绍由X射线晶体学确定的P型质子泵的第一结构。十个跨膜螺旋和三个胞质域定义了跨质膜的ATP耦合质子运输的功能单元,并且该结构被锁定在以前在P型ATPase中未观察到的功能状态。跨膜结构域揭示了一个大的空腔,该空腔很可能充满水,位于膜平面的中间,在那里被保守的亲水性和带电残基所衬。通过这种结构布置容易地解释了针对高膜电势的质子传输。

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