prestin (SLC26A5)与细胞内单价阴离子的相互作用。

D. Oliver, Thorsten Schächinger, B. Fakler
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引用次数: 13

摘要

哺乳动物耳蜗的外毛细胞(ohc)具有一种由膜电位变化驱动的特殊细胞运动形式。这种电动力是由膜蛋白prestin (SLC26A5)产生的基于膜的过程。目前的模型表明,prestin在膜电位变化时经历了一个产生力的构象转变。prestin的电压依赖性需要由蛋白质内的带电粒子介导,这是一个“电压传感器”,它可以穿过膜电场来触发这些构象重排。实际上,电压传感器的移位可以作为电荷转移来测量。在这里,我们回顾并扩展了一些数据,这些数据表明,电荷的运动取决于膜细胞质侧的小单价阴离子(如氯离子和碳酸氢盐)的存在。prestin的电压依赖性随阴离子的浓度和种类而变化,与阴离子通过膜的部分易位一致。因此阴离子可以作为外部电压传感器。这些结论表明电荷运动和随后的构象重排可能与其他SLC26成员的阴离子转移有关。对prestin分子特性的深入了解可能为SLC26蛋白阴离子转运的共同机制提供线索。
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Interaction of prestin (SLC26A5) with monovalent intracellular anions.
Outer hair cells (OHCs) of the mammalian cochlea are equipped with a specific form of cellular motility that is driven by changes of the membrane potential. This electromotility is a membrane-based process generated by the membrane protein prestin (SLC26A5). Current models suggest that prestin undergoes a force-generating conformational transition upon changes of the membrane potential. The voltage dependence of prestin needs to be mediated by a charged particle within the protein, a 'voltage sensor', that can move through the membrane electrical field to trigger these conformational rearrangements. Indeed, voltage sensor translocation can be measured as electrical charge transfer. Here, we review and extend data indicating that charge movement by prestin and consequently electromotility depend on the presence of small monovalent anions such as chloride and bicarbonate at the cytoplasmic side of the membrane. The voltage dependence of prestin varies with concentration and species of the anion present, consistent with a partial translocation of the anion through the membrane. Thus anions may act as extrinsic voltage sensors. These conclusions suggest that charge movement and subsequent conformational rearrangements may relate to anion transport by other SLC26 members. Insights into molecular properties of prestin may provide clues to common mechanisms of anion transport by SLC26 proteins.
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Cardiovascular disease. Normal and neoplastic stem cells. Outer mitochondrial membrane protein degradation by the proteasome. New insights into the role of pendrin (SLC26A4) in inner ear fluid homeostasis. Interaction of prestin (SLC26A5) with monovalent intracellular anions.
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