Magnusson Ulrika, Chaudhuri Barnali Neel, Ko Junsang, Park Chankyu, Jones T Alwyn, Mowbray Sherry L
Department of Cell and Molecular Biology, Uppsala University, BMC, Box 596, Uppsala SE 751 24, Sweden.
J Biol Chem. 2002 Apr 19;277(16):14077-84. doi: 10.1074/jbc.M200514200. Epub 2002 Feb 1.
Conformational changes of periplasmic binding proteins are essential for their function in chemotaxis and transport. The allose-binding protein from Escherichia coli is, like other receptors in its family, composed of two alpha/beta domains joined by a three-stranded hinge. In the previously determined structure of the closed, ligand-bound form (Chaudhuri, B. N., Ko, J., Park, C., Jones, T. A., and Mowbray, S. L. (1999) J. Mol. Biol. 286, 1519-1531), the ligand-binding site is buried between the two domains. We report here the structures of three distinct open, ligand-free forms of this receptor, one solved at 3.1-A resolution and two others at 1.7-A resolution. Together, these allow a description of the conformational changes associated with ligand binding. A few large, coupled torsional changes in the hinge strands are sufficient to generate the overall bending motion, with only minor disruption of the individual domains. Integral water molecules appear to act as structural "ball bearings" in this process. The conformational changes of the related ribose-binding protein follow a distinct pattern. The observed differences between the two proteins can be interpreted in the context of changes in sequence and in crystal packing and provide new insights into the nature of hinge bending motion in this class of periplasmic binding proteins.
周质结合蛋白的构象变化对其在趋化作用和转运中的功能至关重要。来自大肠杆菌的阿洛糖结合蛋白与该家族中的其他受体一样,由两个α/β结构域通过一个三链铰链连接而成。在先前确定的封闭的、结合配体形式的结构中(Chaudhuri, B. N., Ko, J., Park, C., Jones, T. A., and Mowbray, S. L. (1999) J. Mol. Biol. 286, 1519 - 1531),配体结合位点埋藏在两个结构域之间。我们在此报告该受体三种不同的开放的、无配体形式的结构,一种以3.1埃分辨率解析,另外两种以1.7埃分辨率解析。这些结构共同使得能够描述与配体结合相关的构象变化。铰链链中少数几个大的、耦合的扭转变化足以产生整体弯曲运动,而各个结构域仅有轻微破坏。在这个过程中,整合水分子似乎起到了结构“滚珠轴承”的作用。相关核糖结合蛋白的构象变化遵循不同的模式。观察到的这两种蛋白质之间的差异可以在序列和晶体堆积变化的背景下进行解释,并为这类周质结合蛋白中铰链弯曲运动的本质提供新的见解。