首页> 美国卫生研究院文献>The Journal of Biological Chemistry >Physicochemical Factors Controlling the Activity and Energy Coupling of an Ionic Strength-gated ATP-binding Cassette (ABC) Transporter
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Physicochemical Factors Controlling the Activity and Energy Coupling of an Ionic Strength-gated ATP-binding Cassette (ABC) Transporter

机译:控制离子强度门控ATP结合盒(ABC)转运蛋白的活性和能量耦合的理化因素。

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摘要

Cells control their volume through the accumulation of compatible solutes. The bacterial ATP-binding cassette transporter OpuA couples compatible solute uptake to ATP hydrolysis. Here, we study the gating mechanism and energy coupling of OpuA reconstituted in lipid nanodiscs. We show that anionic lipids are essential both for the gating and the energy coupling. The tight coupling between substrate binding on extracellular domains and ATP hydrolysis by cytoplasmic nucleotide-binding domains allows the study of transmembrane signaling in nanodiscs. From the tight coupling between processes at opposite sides of the membrane, we infer that the ATPase activity of OpuA in nanodiscs reflects solute translocation. Intriguingly, the substrate-dependent, ionic strength-gated ATPase activity of OpuA in nanodiscs is at least an order of magnitude higher than in lipid vesicles (i.e. with identical membrane lipid composition, ionic strength, and nucleotide and substrate concentrations). Even with the chemical components the same, the lateral pressure (profile) of the nanodiscs will differ from that of the vesicles. We thus propose that membrane tension limits translocation in vesicular systems. Increased macromolecular crowding does not activate OpuA but acts synergistically with ionic strength, presumably by favoring gating interactions of like-charged surfaces via excluded volume effects.
机译:细胞通过相容性溶质的积累来控制其体积。细菌ATP结合盒转运蛋白OpuA将相容的溶质摄取耦合至ATP水解。在这里,我们研究脂质纳米盘中重构的OpuA的门控机制和能量耦合。我们表明,阴离子脂质对于门控和能量耦合都是必不可少的。底物在细胞外结构域上的结合与胞质核苷酸结合结构域的ATP水解之间的紧密结合使得可以研究纳米圆盘中的跨膜信号传导。从膜相对侧的过程之间的紧密耦合,我们可以推断,OpuA在纳米圆盘中的ATPase活性反映了溶质易位。有趣的是,OpuA在纳米圆盘中的底物依赖性离子强度门控ATPase活性至少比脂质小泡中高一个数量级(即具有相同的膜脂质成分,离子强度以及核苷酸和底物浓度)。即使化学成分相同,纳米盘的侧向压力(轮廓)也会与囊泡的侧向压力不同。因此,我们提出膜张力限制了囊泡系统的移位。大分子拥挤的增加不会激活OpuA,但会与离子强度产生协同作用,大概是通过排除体积效应促进电荷相似的表面的门控相互作用。

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