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大肠杆菌葡萄糖磷酸转移酶系统中信号转导蛋白IIAGlucose与葡萄糖转运蛋白IICBGlucose胞质结构域之间磷酰转移复合物的溶液结构

Solution structure of the phosphoryl transfer complex between the signal-transducing protein IIAGlucose and the cytoplasmic domain of the glucose transporter IICBGlucose of the Escherichia coli glucose phosphotransferase system.

作者信息

Cai Mengli, Williams David C, Wang Guangshun, Lee Byeong Ryong, Peterkofsky Alan, Clore G Marius

机构信息

Laboratory of Chemical Physics, NIDDK, National Institutes of Health, Bethesda, Maryland 20892, USA.

出版信息

J Biol Chem. 2003 Jul 4;278(27):25191-206. doi: 10.1074/jbc.M302677200. Epub 2003 Apr 25.

Abstract

The solution structure of the final phosphoryl transfer complex in the glucose-specific arm of the Escherichia coli phosphotransferase system, between enzyme IIAGlucose (IIAGlc) and the cytoplasmic B domain (IIBGlc) of the glucose transporter IICBGlc, has been solved by NMR. The interface (approximately 1200-A2 buried surface) is formed by the interaction of a concave depression on IIAGlc with a convex protrusion on IIBGlc. The phosphoryl donor and acceptor residues, His-90 of IIAGlc and Cys-35 of IIBGlc (residues of IIBGlc are denoted in italics) are in close proximity and buried at the center of the interface. Cys-35 is primed for nucleophilic attack on the phosphorus atom by stabilization of the thiolate anion (pKa approximately 6.5) through intramolecular hydrogen bonding interactions with several adjacent backbone amide groups. Hydrophobic intermolecular contacts are supplemented by peripheral electrostatic interactions involving an alternating distribution of positively and negatively charged residues on the interaction surfaces of both proteins. Salt bridges between the Asp-38/Asp-94 pair of IIAGlc and the Arg-38/Arg-40 pair of IIBGlc neutralize the accumulation of negative charge in the vicinity of both the Sgamma atom of Cys-35 and the phosphoryl group in the complex. A pentacoordinate phosphoryl transition state is readily accommodated without any change in backbone conformation, and the structure of the complex accounts for the preferred directionality of phosphoryl transfer between IIAGlc and IIBGlc. The structures of IIAGlc.IIBGlc and the two upstream complexes of the glucose phosphotransferase system (EI.HPr and IIAGlc.HPr) reveal a cascade in which highly overlapping binding sites on HPr and IIAGlc recognize structurally diverse proteins.

摘要

通过核磁共振已解析出大肠杆菌磷酸转移酶系统葡萄糖特异性臂中最终磷酸转移复合物的溶液结构,该复合物存在于葡萄糖特异性酶II(IIAGlucose,简称IIAGlc)与葡萄糖转运蛋白IICBGlc的胞质B结构域(IIBGlc)之间。该界面(掩埋表面约为1200 Ų)由IIAGlc上的凹形凹陷与IIBGlc上的凸形突起相互作用形成。磷酸供体和受体残基,即IIAGlc的His-90和IIBGlc的Cys-35(IIBGlc的残基用斜体表示)彼此靠近,并掩埋在界面中心。通过与几个相邻主链酰胺基团的分子内氢键相互作用,硫醇盐阴离子(pKa约为6.5)得以稳定,从而使Cys-35具备对磷原子进行亲核攻击的条件。疏水分子间接触由外周静电相互作用补充,这涉及两种蛋白质相互作用表面上带正电和负电残基的交替分布。IIAGlc的Asp-38/Asp-94对与IIBGlc的Arg-38/Arg-40对之间的盐桥中和了Cys-35的Sγ原子和复合物中磷酸基团附近负电荷的积累。五配位磷酸过渡态能够轻松容纳,且主链构象无任何变化,该复合物的结构解释了IIAGlc和IIBGlc之间磷酸转移的优先方向性。IIAGlc.IIBGlc以及葡萄糖磷酸转移酶系统的两个上游复合物(EI.HPr和IIAGlc.HPr)的结构揭示了一种级联关系,其中HPr和IIAGlc上高度重叠的结合位点识别结构多样的蛋白质。

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