Lin F, Lester H A, Mager S
Division of Biology, California Institute of Technology, Pasadena 91125, USA.
Biophys J. 1996 Dec;71(6):3126-35. doi: 10.1016/S0006-3495(96)79506-1.
Single-channel activities were observed in outside-out patches excised from oocytes expressing a mammalian 5-hydroxytryptamine (5-HT) transporter. Channel conductance was larger for a mutant in which asparagine177 of the third putative transmembrane domain was replaced by glycine, suggesting that this residue lies within or near the permeation pathway. The N177G mutant enables quantitative single-channel measurements; it displays two conducting states. One state, with conductance of approximately 6 pS, is induced by 5-HT and is permeable to Na+. The other state (conductance of approximately 13 pS) is associated with substrate-independent leakage current and is permeable to both Na+ and Li+. Cl- is not a major current carrier. Channel lifetimes under all conditions measured are approximately 2.5 ms. The single-channel phenomena account for previously observed macroscopic electrophysiological phenomena, including 5-HT-induced transport-associated currents and substrate-independent leakage currents. The channel openings occur several orders of magnitude less frequently than would be expected if one such opening occurred for each transport cycle and therefore do not represent an obligatory step in transport. Nevertheless, single-channel events produced by neurotransmitter transporters indicate the functional and structural similarities between transporters and ion channels and provide a new tool, at single-molecule resolution, for detailed structure-function studies of transporters.
在从表达哺乳动物5-羟色胺(5-HT)转运体的卵母细胞上切下的外侧向外膜片中观察到单通道活性。对于第三个假定跨膜结构域的天冬酰胺177被甘氨酸取代的突变体,通道电导更大,这表明该残基位于通透途径内或附近。N177G突变体能够进行定量单通道测量;它表现出两种导通状态。一种状态,电导约为6 pS,由5-HT诱导,对Na+通透。另一种状态(电导约为13 pS)与底物无关的泄漏电流相关,对Na+和Li+均通透。Cl-不是主要的电流载体。在所有测量条件下,通道寿命约为2.5毫秒。单通道现象解释了先前观察到的宏观电生理现象,包括5-HT诱导的与转运相关的电流和底物无关的泄漏电流。通道开放的频率比每个转运循环发生一次这样的开放所预期的频率低几个数量级,因此不代表转运中的一个必经步骤。然而,神经递质转运体产生的单通道事件表明了转运体与离子通道之间的功能和结构相似性,并为转运体的详细结构-功能研究提供了一种单分子分辨率的新工具。