Structural basis for the channel function of a degraded ABC transporter, CFTR (ABCC7).

Yonghong Bai, Min Li, Tzyh-Chang Hwang
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引用次数: 72

Abstract

Cystic fibrosis transmembrane conductance regulator (CFTR) is a member of the ATP-binding cassette (ABC) transporter superfamily, but little is known about how this ion channel that harbors an uninterrupted ion permeation pathway evolves from a transporter that works by alternately exposing its substrate conduit to the two sides of the membrane. Here, we assessed reactivity of intracellularly applied thiol-specific probes with cysteine residues substituted into the 12th transmembrane segment (TM12) of CFTR. Our experimental data showing high reaction rates of substituted cysteines toward the probes, strong blocker protection of cysteines against reaction, and reaction-induced alterations in channel conductance support the idea that TM12 of CFTR contributes to the lining of the ion permeation pathway. Together with previous work, these findings raise the possibility that pore-lining elements of CFTR involve structural components resembling those that form the substrate translocation pathway of ABC transporters. In addition, comparison of reaction rates in the open and closed states of the CFTR channel leads us to propose that upon channel opening, the wide cytoplasmic vestibule tightens and the pore-lining TM12 rotates along its helical axis. This simple model for gating conformational changes in the inner pore domain of CFTR argues that the gating transition of CFTR and the transport cycle of ABC proteins share analogous conformational changes. Collectively, our data corroborate the popular hypothesis that degradation of the cytoplasmic-side gate turned an ABC transporter into the CFTR channel.

Abstract Image

Abstract Image

Abstract Image

降解ABC转运蛋白CFTR (ABCC7)通道功能的结构基础。
囊性纤维化跨膜传导调节因子(CFTR)是atp结合盒(ABC)转运蛋白超家族的一员,但人们对这种包含不间断离子渗透途径的离子通道如何从转运蛋白演变而来知之甚少,转运蛋白通过交替地将其底物导管暴露于膜的两侧而起作用。在这里,我们评估了半胱氨酸残基取代CFTR第12跨膜段(TM12)的细胞内应用硫醇特异性探针的反应性。我们的实验数据显示取代半胱氨酸对探测器的高反应速率,半胱氨酸对反应的强阻断保护以及反应诱导的通道电导改变支持了CFTR的TM12有助于离子渗透途径内衬的观点。结合先前的工作,这些发现提出了CFTR的孔衬元件涉及类似于形成ABC转运蛋白底物转运途径的结构元件的可能性。此外,通过比较CFTR通道打开和关闭状态下的反应速率,我们提出,当通道打开时,宽的细胞质前庭收紧,孔壁TM12沿着其螺旋轴旋转。这个简单的CFTR内孔结构域的门控构象变化模型表明,CFTR的门控转变和ABC蛋白的转运周期具有类似的构象变化。总的来说,我们的数据证实了细胞质侧门的降解将ABC转运蛋白转化为CFTR通道的流行假设。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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