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首页> 外文期刊>Biochemistry >Dramatic differences in the binding of UDP-galactose and UDP-glucose to UDP-galactose 4-epimerase from Escherichia coli
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Dramatic differences in the binding of UDP-galactose and UDP-glucose to UDP-galactose 4-epimerase from Escherichia coli

机译:UDP-半乳糖和UDP-葡萄糖与大肠杆菌的UDP-半乳糖4-表异构酶结合的显着差异

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摘要

UDP-galactose 4-epimerase catalyzes the interconversion of UDP-galactose and UDP-glucose during normal galactose metabolism. Within recent years the enzyme from Escherichia coli has been studied extensively by both biochemical and X-ray crystallographic techniques. One of several key features in the catalytic mechanism of the enzyme involves the putative rotation of a 4'-ketopyranose intermediate within the active site region. The mode of binding of UDP-glucose to epimerase is well understood on the basis of previous high-resolution :X-ray crystallographic investigations from this laboratory with an enzyme/NADH/UDP-glucose abortive complex. Attempts to prepare an enzyme/NADH/UDP-galactose abortive complex always failed, however, in that UDP-glucose rather than UDP-galactose was observed binding in the active site. In an effort to prepare an abortive complex with UDP-galactose, a site-directed mutant protein was constructed in which Ser 124 and Tyr 149, known to play critical roles in catalysis, were substituted with alanine and phenylalanine residues, respectively. With this double mutant it was possible to crystallize and solve the three-dimensional structures of reduced epimerase in the presence of UDP-glucose or UDP-galactose to high resolution. This study represents the first direct observation of UDP-galactose binding to epimerase and lends strong structural support for a catalytic mechanism in which there is free rotation of a 4'-ketopyranose intermediate within the active site cleft of the enzyme. [References: 29]
机译:UDP-半乳糖4-差向异构酶催化正常半乳糖代谢过程中UDP-半乳糖和UDP-葡萄糖的相互转化。近年来,通过生化和X射线晶体学技术对来自大肠杆菌的酶进行了广泛的研究。酶催化机理中的几个关键特征之一涉及活性位点区域内4'-酮基吡喃糖中间体的假定旋转。 UDP-葡萄糖与差向异构酶的结合方式是基于该实验室先前对酶/ NADH / UDP-葡萄糖流产复合物进行的高分辨率X射线晶体学研究而众所周知的。制备酶/ NADH / UDP-半乳糖流产复合物的尝试总是失败,但是,由于观察到UDP-葡萄糖而不是UDP-半乳糖在活性位点结合。为了制备具有UDP-半乳糖的流产复合物,构建了定点突变蛋白,其中已知在催化中起关键作用的Ser 124和Tyr 149分别被丙氨酸和苯丙氨酸残基取代。使用该双突变体,可以在高分辨率存在的UDP-葡萄糖或UDP-半乳糖存在的情况下结晶并解析还原差向异构酶的三维结构。这项研究代表了UDP-半乳糖与差向异构酶的结合的首次直接观察,并为催化机制提供了强大的结构支持,在该机制中,酶的活性位点裂缝内的4'-酮基吡喃糖中间体自由旋转。 [参考:29]

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