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Transport domain unlocking sets the uptake rate of an aspartate transporter

机译:运输域解锁设定了天冬氨酸转运蛋白的吸收率

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摘要

Glutamate transporters terminate neurotransmission by clearing synaptically released glutamate from the extracellular space, allowing repeated rounds of signaling and preventing glutamate-mediated excitotoxicity. Crystallographic studies on an archaeal homologue, GltPh, showed that distinct transport domains translocate substrates into the cytoplasm by moving across the membrane within a central trimerization scaffold. Here, we report direct observations of these 'elevator-like' transport domain motions in the context of reconstituted proteoliposomes and physiological ion gradients using single-molecule fluorescence resonance energy transfer (smFRET) imaging. We show that GltPh bearing two “humanizing” mutations exhibits markedly increased transport domain dynamics, which parallels an increased rate of substrate transport, thereby establishing a direct temporal relationship between transport domain motions and substrate uptake. Crystallographic and computational investigations reveal that these mutations favor structurally “unlocked” states with increased solvent occupancy at the interface between the transport domain and the trimeric scaffold.
机译:谷氨酸转运蛋白通过从细胞外间隙清除突触释放的谷氨酸,终止神经传递,从而允许重复发信号,并防止谷氨酸介导的兴奋性毒性。对古细菌同系物GltPh的晶体学研究表明,不同的转运结构域通过在中央三聚支架中跨膜移动而将底物转运到细胞质中。在这里,我们报告使用单分子荧光共振能量转移(smFRET)成像在重组蛋白脂质体和生理离子梯度的背景下直接观察这些“电梯样”转运域运动。我们表明,带有两个“人源化”突变的GltPh表现出显着增加的运输域动态,这与底物运输的速率平行,从而在运输域运动与底物摄取之间建立了直接的时间关系。晶体学和计算研究表明,这些突变有利于结构“解锁”状态,并在转运结构域和三聚体支架之间的界面上增加了溶剂的占有率。

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