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首页> 外文期刊>The Journal of biological chemistry >Structural Analysis of Saccharomyces cerevisiae α-Galactosidase and Its Complexes with Natural Substrates Reveals New Insights into Substrate Specificity of GH27 Glycosidases
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Structural Analysis of Saccharomyces cerevisiae α-Galactosidase and Its Complexes with Natural Substrates Reveals New Insights into Substrate Specificity of GH27 Glycosidases

机译:酿酒酵母α-半乳糖苷酶的结构分析及其与天然底物的复合物揭示了GH27糖苷酶的底物特异性的新见解

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摘要

α-Galactosidases catalyze the hydrolysis of terminal α-1,6-galactosyl units from galacto-oligosaccharides and polymeric galactomannans. The crystal structures of tetrameric Saccharomyces cerevisiae α-galactosidase and its complexes with the substrates melibiose and raffinose have been determined to 1.95, 2.40, and 2.70 ? resolution. The monomer folds into a catalytic (α/β)8 barrel and a C-terminal β-sandwich domain with unassigned function. This pattern is conserved with other family 27 glycosidases, but this enzyme presents a unique 45-residue insertion in the β-sandwich domain that folds over the barrel protecting it from the solvent and likely explaining its high stability. The structure of the complexes and the mutational analysis show that oligomerization is a key factor in substrate binding, as the substrates are located in a deep cavity making direct interactions with the adjacent subunit. Furthermore, docking analysis suggests that the supplementary domain could be involved in binding sugar units distal from the scissile bond, therefore ascribing a role in fine-tuning substrate specificity to this domain. It may also have a role in promoting association with the polymeric substrate because of the ordered arrangement that the four domains present in one face of the tetramer. Our analysis extends to other family 27 glycosidases, where some traits regarding specificity and oligomerization can be formulated on the basis of their sequence and the structures available. These results improve our knowledge on the activity of this important family of enzymes and give a deeper insight into the structural features that rule modularity and protein-carbohydrate interactions.
机译:α-半乳糖苷酶催化吡酰寡糖和聚合物半乳甘露聚糖的末端α-1,6-半乳糖基单元的水解。四聚酿酒酵母α-半乳糖苷酶的晶体结构及其与底物混合物和棉糖的复合物已被确定为1.95,2.40和2.70?解析度。单体折叠成具有未分配的功能的催化(α/β)8桶和C末端β-夹层结构域。该模式与其他家庭27种糖苷酶保守,但是该酶在β-夹心结构域中呈现出独特的45-残基插入,其折叠在保护其免受溶剂中保护其的镜筒,并且可能解释其高稳定性。复合物的结构和突变分析表明,寡聚化是衬底结合的关键因素,因为基板位于深腔中,使得与相邻亚基的直接相互作用。此外,对接分析表明,补充结构域可以参与远离剪发键的结合糖单位,因此在细调基质特异性的作用中的作用。由于有序布置,它在促进与聚合物基底的关系中的作用也可能具有在四聚体的一面中存在的四个结构域。我们的分析延伸到其他家庭27种糖苷酶,其中可以根据其序列和可用的结构配制有关特异性和低聚的一些特征。这些结果改善了我们对这一重要酶家族的活动的了解,并深入了解规则模块化和蛋白质 - 碳水化合物相互作用的结构特征。

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