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基于分配能量和螺旋堆积计算的乙酰胆碱受体通道结构模型。

A structural model of the acetylcholine receptor channel based on partition energy and helix packing calculations.

作者信息

Guy H R

出版信息

Biophys J. 1984 Jan;45(1):249-61. doi: 10.1016/S0006-3495(84)84152-1.

Abstract

A structural model of the transmembrane portion of the acetylcholine receptor was developed from sequences of all its subunits by using transfer energy calculations to locate transmembrane alpha-helices and to calculate which helical side chains should be in contact with water inside the channel, with portions of other transmembrane helices, or with lipid hydrocarbon chains. "Knobs-into-holes" side chain packing calculations were used with other factors to stack the transmembrane alpha-helices together. In the model each subunit has the following structures in order along the sequence from the NH2 terminus: a large extracellular domain of undetermined structure, a short apolar alpha-helix that lies on the extracellular lipid surface of the membrane; three apolar transmembrane alpha-helices (I, II, and III), a cytoplasmic domain of undetermined structure, an amphipathic transmembrane alpha-helix (L) that forms the channel lining, a short extracellular alpha-helix, another apolar transmembrane alpha-helix (IV), and a small cytoplasmic domain formed by the COOH-terminal end of the chain. Three concentric layers form the pore. A bundle of five amphipathic L helices forms the channel lining. This bundle is surrounded by a bundle of 10 alternating II and III helices. Helices I and IV cover portions of the outer surface of the bundle formed by helices II and III. Positions of disulfide bridges are predicted and a mechanism for opening and closing conformational changes is proposed that requires tilting transmembrane helices and possibly a thiol-disulfide interchange reaction.

摘要

通过使用转移能量计算来定位跨膜α螺旋,并计算哪些螺旋侧链应与通道内的水、其他跨膜螺旋的部分或脂质烃链接触,从乙酰胆碱受体所有亚基的序列中构建了其跨膜部分的结构模型。“旋钮入孔”侧链堆积计算与其他因素一起用于将跨膜α螺旋堆叠在一起。在该模型中,每个亚基沿从NH2末端开始按顺序具有以下结构:一个结构未确定的大细胞外结构域、一个位于膜细胞外脂质表面的短非极性α螺旋;三个非极性跨膜α螺旋(I、II和III)、一个结构未确定的细胞质结构域、一个形成通道内衬的两亲性跨膜α螺旋(L)、一个短细胞外α螺旋、另一个非极性跨膜α螺旋(IV)以及由链的COOH末端形成的小细胞质结构域。三个同心层形成孔。一束五个两亲性L螺旋形成通道内衬。这束螺旋被一束由10个交替的II和III螺旋组成的束包围。螺旋I和IV覆盖由螺旋II和III形成的束的外表面部分。预测了二硫键的位置,并提出了一种打开和关闭构象变化的机制,该机制需要跨膜螺旋倾斜并可能发生硫醇-二硫键交换反应。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/0615/1435233/1b6ad79e8a0f/biophysj00210-0255-a.jpg

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