van Montfort Bart A, Schuurman-Wolters Gea K, Wind Joyce, Broos Jaap, Robillard George T, Poolman Bert
Department of Biochemistry, Groningen Biomolecular Sciences and Biotechnology Institute, University of Groningen, Nijenborgh 4, 9747 AG Groningen, The Netherlands.
J Biol Chem. 2002 Apr 26;277(17):14717-23. doi: 10.1074/jbc.M201533200. Epub 2002 Feb 19.
A cysteine cross-linking approach was used to identify residues at the dimer interface of the Escherichia coli mannitol permease. This transport protein comprises two cytoplasmic domains and one membrane-embedded C domain per monomer, of which the latter provides the dimer contacts. A series of single-cysteine His-tagged C domains present in the native membrane were subjected to Cu(II)-(1,10-phenanthroline)(3)-catalyzed disulfide formation or cysteine cross-linking with dimaleimides of different length. The engineered cysteines were at the borders of the predicted membrane-spanning alpha-helices. Two residues were found to be located in close proximity of each other and capable of forming a disulfide, while four other locations formed cross-links with the longer dimaleimides. Solubilization of the membranes did only influence the cross-linking behavior at one position (Cys(73)). Mannitol binding only effected the cross-linking of a cysteine at the border of the third transmembrane helix (Cys(134)), indicating that substrate binding does not lead to large rearrangements in the helix packing or to dissociation of the dimer. Upon mannitol binding, the Cys(134) becomes more exposed but the residue is no longer capable of forming a stable disulfide in the dimeric IIC domain. In combination with the recently obtained projection structure of the IIC domain in two-dimensional crystals, a first proposal is made for alpha-helix packing in the mannitol permease.
采用半胱氨酸交联方法来鉴定大肠杆菌甘露醇通透酶二聚体界面处的残基。这种转运蛋白每个单体包含两个胞质结构域和一个嵌入膜中的C结构域,其中后者提供二聚体接触位点。对天然膜中存在的一系列带有His标签的单半胱氨酸C结构域进行Cu(II)-(1,10-菲咯啉)(3)催化的二硫键形成反应,或与不同长度的双马来酰亚胺进行半胱氨酸交联反应。工程化的半胱氨酸位于预测的跨膜α-螺旋的边界处。发现两个残基彼此靠近且能够形成二硫键,而其他四个位置则与较长的双马来酰亚胺形成交联。膜的溶解仅影响一个位置(Cys(73))的交联行为。甘露醇结合仅影响第三个跨膜螺旋边界处的一个半胱氨酸(Cys(134))的交联,这表明底物结合不会导致螺旋堆积的大幅重排或二聚体的解离。在甘露醇结合后,Cys(134)变得更加暴露,但该残基在二聚体IIC结构域中不再能够形成稳定的二硫键。结合最近获得的二维晶体中IIC结构域的投影结构,首次对甘露醇通透酶中的α-螺旋堆积提出了建议。