Spooner P J, O'Reilly W J, Homans S W, Rutherford N G, Henderson P J, Watts A
Biomembrane Structure Unit, Department of Biochemistry, University of Oxford, Oxford OX1 3QU, United Kingdom.
Biophys J. 1998 Dec;75(6):2794-800. doi: 10.1016/S0006-3495(98)77722-7.
The weak binding of sugar substrates fails to induce any quantifiable physical changes in the L-fucose-H+ symport protein, FucP, from Escherichia coli, and this protein lacks any strongly binding ligands for competitive binding assays. Access to substrate binding behavior is however possible using NMR methods which rely on substrate immobiliza-tion for detection. Cross-polarization from proton to carbon spins could detect the portion of 13C-labeled substrate associated with 0.2 micromol of the functional transport system overexpressed in the native membranes. The detected substrate was shown to be in the FucP binding site because its signal was diminished by the unlabeled substrates L-fucose and L-galactose but was unaffected by a three- to fivefold molar excess of the non-transportable stereoisomer D-fucose. FucP appeared to bind both anomers of its substrates equally well. An NMR method, designed to measure the rate of substrate exchange, could show that substrate exchanged slowly with the carrier center (>10(-1) s), although its dynamics are not necessarily coupled strongly to this site within the protein. Relaxation measurements support this view that fluctuations in the interaction with substrate would be confined to the binding site in this transport system.
糖底物的弱结合未能在来自大肠杆菌的L-岩藻糖-H⁺同向转运蛋白FucP中诱导任何可量化的物理变化,并且该蛋白缺乏用于竞争性结合测定的任何强结合配体。然而,使用依赖于底物固定化进行检测的NMR方法可以了解底物结合行为。从质子到碳自旋的交叉极化可以检测到与天然膜中过表达的0.2微摩尔功能性转运系统相关的¹³C标记底物的部分。检测到的底物显示在FucP结合位点,因为其信号被未标记的底物L-岩藻糖和L-半乳糖减弱,但不受三到五倍摩尔过量的不可转运立体异构体D-岩藻糖的影响。FucP似乎对其底物的两种异头物结合得同样好。一种设计用于测量底物交换速率的NMR方法可以表明底物与载体中心的交换缓慢(>10⁻¹ s),尽管其动力学不一定与蛋白质内的该位点强烈耦合。弛豫测量支持这样的观点,即与底物相互作用的波动将局限于该转运系统的结合位点。