Müller Axel, Severi Emmanuele, Mulligan Christopher, Watts Andrew G, Kelly David J, Wilson Keith S, Wilkinson Anthony J, Thomas Gavin H
Structural Biology Laboratory, Department of Chemistry, University of York, York YO10 5YW, United Kingdom.
Department of Biology, University of York, York YO10 5YW, United Kingdom.
J Biol Chem. 2006 Aug 4;281(31):22212-22222. doi: 10.1074/jbc.M603463200. Epub 2006 May 15.
Extracytoplasmic solute receptors (ESRs) are important components of solute uptake systems in bacteria, having been studied extensively as parts of ATP binding cassette transporters. Herein we report the first crystal structure of an ESR protein from a functionally characterized electrochemical ion gradient dependent secondary transporter. This protein, SiaP, forms part of a tripartite ATP-independent periplasmic transporter specific for sialic acid in Haemophilus influenzae. Surprisingly, the structure reveals an overall topology similar to ATP binding cassette ESR proteins, which is not apparent from the sequence, demonstrating that primary and secondary transporters can share a common structural component. The structure of SiaP in the presence of the sialic acid analogue 2,3-didehydro-2-deoxy-N-acetylneuraminic acid reveals the ligand bound in a deep cavity with its carboxylate group forming a salt bridge with a highly conserved Arg residue. Sialic acid binding, which obeys simple bimolecular association kinetics as determined by stopped-flow fluorescence spectroscopy, is accompanied by domain closure about a hinge region and the kinking of an alpha-helix hinge component. The structure provides insight into the evolution, mechanism, and substrate specificity of ESR-dependent secondary transporters that are widespread in prokaryotes.
胞外溶质受体(ESR)是细菌溶质摄取系统的重要组成部分,作为ATP结合盒转运蛋白的一部分已被广泛研究。在此,我们报道了来自功能表征的电化学离子梯度依赖性次级转运蛋白的ESR蛋白的首个晶体结构。该蛋白SiaP是流感嗜血杆菌中对唾液酸具有特异性的三方非ATP依赖性周质转运蛋白的一部分。令人惊讶的是,该结构揭示了一种与ATP结合盒ESR蛋白相似的整体拓扑结构,这从序列中并不明显,表明初级和次级转运蛋白可以共享一个共同的结构成分。在唾液酸类似物2,3 - 二脱氢 - 2 - 脱氧 - N - 乙酰神经氨酸存在下SiaP的结构揭示了配体结合在一个深腔内,其羧基与一个高度保守的精氨酸残基形成盐桥。如通过停流荧光光谱法所确定的,唾液酸结合遵循简单的双分子缔合动力学,同时伴随着围绕一个铰链区域的结构域闭合以及一个α - 螺旋铰链成分的扭结。该结构为深入了解在原核生物中广泛存在的依赖ESR的次级转运蛋白的进化、机制和底物特异性提供了依据。