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葡萄糖转运蛋白1(Glut1)的跨膜区段3是一个外部螺旋。

Transmembrane segment 3 of the Glut1 glucose transporter is an outer helix.

作者信息

Mueckler Mike, Roach William, Makepeace Carol

机构信息

Department of Cell Biology and Physiology, Washington University School of Medicine, St. Louis, Missouri 63110, USA.

出版信息

J Biol Chem. 2004 Nov 5;279(45):46876-81. doi: 10.1074/jbc.M408632200. Epub 2004 Aug 10.

Abstract

A model has been proposed for the structure of the Glut1 glucose transporter based on the results of mutagenesis studies and homology modeling in which eight transmembrane segments form an inner helical bundle surrounded by four outer helices. The role of transmembrane segment 3 in this structural model was investigated using cysteine-scanning mutagenesis in conjunction with the membrane-impermeant, sulfhydryl-specific reagent, p-chloromercuribenzenesulfonate (pCMBS). Twenty-one Glut1 mutants were created from a fully functional, cysteine-less, parental Glut1 molecule by successively changing each residue along transmembrane helix 3 to a cysteine. The single cysteine mutants were then expressed in Xenopus oocytes, and their expression levels, transport activities, and sensitivities to pCMBS were determined. Cysteine substitution at methionine 96 abolished transport activity, whereas substitutions at the other positions resulted in either modest reductions or no significant effect on transport activity. In striking contrast to all other helices that have been examined to date, only one of the 21 helix 3 single-cysteine mutants was inhibited by pCMBS, suggesting that only a small portion of this helix is exposed to the external solvent. This result is consistent with predictions based on our current structural model, in which helix 3 is one of four outer helices that surround the inner helical bundle that comprises the aqueous substrate-binding cavity. An updated two-dimensional model for the orientation of the 12 transmembrane helices and the conformation of the exofacial glucose-binding site of Glut1 is presented that is consistent with existing experimental data.

摘要

基于诱变研究和同源建模的结果,已经提出了一种关于Glut1葡萄糖转运蛋白结构的模型,其中八个跨膜片段形成一个内部螺旋束,被四个外部螺旋包围。使用半胱氨酸扫描诱变结合膜不透性的巯基特异性试剂对氯汞苯磺酸盐(pCMBS),研究了跨膜片段3在该结构模型中的作用。从一个功能完全正常、不含半胱氨酸的亲本Glut1分子开始,通过将跨膜螺旋3上的每个残基依次替换为半胱氨酸,创建了21个Glut1突变体。然后将单个半胱氨酸突变体在非洲爪蟾卵母细胞中表达,并测定它们的表达水平、转运活性和对pCMBS的敏感性。将甲硫氨酸96处的半胱氨酸替代消除了转运活性,而在其他位置的替代要么导致转运活性适度降低,要么对转运活性没有显著影响。与迄今为止研究过的所有其他螺旋形成鲜明对比的是,21个螺旋3单半胱氨酸突变体中只有一个被pCMBS抑制,这表明该螺旋只有一小部分暴露于外部溶剂中。这一结果与基于我们当前结构模型的预测一致,在该模型中,螺旋3是围绕包含水性底物结合腔的内部螺旋束的四个外部螺旋之一。本文提出了一个更新的二维模型,用于描述Glut1的12个跨膜螺旋的取向和外表面葡萄糖结合位点的构象,该模型与现有的实验数据一致。

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