首页> 外文期刊>Biochimica et Biophysica Acta. Protein Structure and Molecular Enzymology >Characterization of yeast homoserine dehydrogenase, an antifungal target: the invariant histidine 309 is important for enzyme integrity
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Characterization of yeast homoserine dehydrogenase, an antifungal target: the invariant histidine 309 is important for enzyme integrity

机译:酵母高丝氨酸脱氢酶(一种抗真菌靶标)的特性:不变的组氨酸309对酶的完整性很重要

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Fungal homoserine dehydrogenase (HSD) is required for the biosynthesis of threonine, isoleucine and methionine from aspartic acid, and is a target for antifungal agents. HSD from the yeast Saccharomyces cerevisiae was overproduced in Escherichia coli and 25 mg of soluble dimeric enzyme was purified per liter of cell culture in two steps. HSD efficiently reduces aspartate semialdehyde to homoserine (Hse) using either NADH or NADPH with k_(cat)/K_m in the order of 10~(6-7) M~(-1) s~(-1) at pH 7.5. The rate constant of the reverse direction (Hse oxidation) was also significant at pH 9.0 (k_(cat)/K_m ≈ 10~(4-5) M~(-1) s~(-1)) but was minimal at pH 7.5. Chemical modification of HSD with diethyl pyrocarbonate (DEPC) resulted in a loss of activity that could be obviated by the presence of substrates. UV difference spectra revealed an increase in absorbance at 240 nm for DEPC-modified HSD consistent with the modification of two histidines (His) per subunit. Amino acid sequence alignment of HSD illustrated the conservation of two His residues among HSDs. These residues, His79 and His309, were substituted to alanine (Ala) using site directed mutagenesis. HSD H79A had similar steady state kinetics to wild type, while k_(cat)/K_m for HSD H309A decreased by almost two orders of magnitude. The recent determination of the X-ray structure of HSD revealed that His309 is located at the dimer interface [B. DeLaBarre, P.R. Thompson, G.D. Wright, A.M. Berghuis, Nat. Struct. Biol. 7 (2000) 238-244]. The His309Ala mutant enzyme was found in very high molecular weight complexes rather than the expected dimer by analytical gel filtration chromatography analysis. Thus the invariant His309 plays a structural rather than catalytic role in these enzymes.
机译:真菌高丝氨酸脱氢酶(HSD)是从天冬氨酸生物合成苏氨酸,异亮氨酸和蛋氨酸所必需的,并且是抗真菌剂的目标。在两个大肠杆菌中,每升细胞培养物中都纯化出了来自啤酒酵母的HSD,并且每升细胞培养物中纯化了25 mg可溶性二聚酶。在pH 7.5下,使用k_(cat)/ K_m约为10〜(6-7)M〜(-1)s〜(-1)的NADH或NADPH,HSD可以有效地将天冬氨酸半醛还原为高丝氨酸(Hse)。反向速率常数(Hse氧化)在pH 9.0时也很显着(k_(cat)/ K_m≈10〜(4-5)M〜(-1)s〜(-1)),但在pH时极小7.5。用焦碳酸二乙酯(DEPC)对HSD进行化学修饰导致活性降低,可以通过底物的存在来避免。紫外线差异光谱显示DEPC修饰的HSD在240 nm处的吸光度增加,与每个亚基两个组氨酸(His)的修饰一致。 HSD的氨基酸序列比对说明了HSD中两个His残基的保守性。使用定点诱变将这些残基His79和His309取代为丙氨酸(Ala)。 HSD H79A具有与野生型相似的稳态动力学,而HSD H309A的k_(cat)/ K_m降低了近两个数量级。对HSD X射线结构的最新测定表明,His309位于二聚体界面[B。 DeLaBarre,P.R. Thompson,G.D. Wright,A.M. Nat.Berghuis结构。生物学7(2000)238-244]。通过分析凝胶过滤色谱分析发现,His309Ala突变酶存在于非常高的分子量复合物中,而不是预期的二聚体。因此,不变的His309在这些酶中起结构而非催化作用。

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