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Molecular Architecture of Strictosidine Glucosidase: The Gateway to the Biosynthesis of the Monoterpenoid Indole Alkaloid Family

机译:Strictosidine葡萄糖苷酶的分子体系结构:单萜吲哚生物碱家族生物合成的途径。

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摘要

Strictosidine β-d-glucosidase (SG) follows strictosidine synthase (STR1) in the production of the reactive intermediate required for the formation of the large family of monoterpenoid indole alkaloids in plants. This family is composed of ∼2000 structurally diverse compounds. SG plays an important role in the plant cell by activating the glucoside strictosidine and allowing it to enter the multiple indole alkaloid pathways. Here, we report detailed three-dimensional information describing both native SG and the complex of its inactive mutant Glu207Gln with the substrate strictosidine, thus providing a structural characterization of substrate binding and identifying the amino acids that occupy the active site surface of the enzyme. Structural analysis and site-directed mutagenesis experiments demonstrate the essential role of Glu-207, Glu-416, His-161, and Trp-388 in catalysis. Comparison of the catalytic pocket of SG with that of other plant glucosidases demonstrates the structural importance of Trp-388. Compared with all other glucosidases of plant, bacterial, and archaeal origin, SG's residue Trp-388 is present in a unique structural conformation that is specific to the SG enzyme. In addition to STR1 and vinorine synthase, SG represents the third structural example of enzymes participating in the biosynthetic pathway of the Rauvolfia alkaloid ajmaline. The data presented here will contribute to deciphering the structure and reaction mechanism of other higher plant glucosidases.
机译:在生产植物中形成大单萜类吲哚生物碱所需的反应性中间体的生产过程中,严格的Strictosidineβ-d-葡萄糖苷酶(SG)遵循严格的糖苷合成酶(STR1)。该家族由〜2000种结构多样的化合物组成。 SG通过激活葡糖苷严格糖苷并使其进入多种吲哚生物碱途径,在植物细胞中起重要作用。在这里,我们报告详细的三维信息,描述了天然SG及其无活性突变体Glu207Gln与底物严格糖苷的复合物,从而提供了底物结合的结构特征,并鉴定了占据酶活性位点表面的氨基酸。结构分析和定点诱变实验证明了Glu-207,Glu-416,His-161和Trp-388在催化中的重要作用。 SG与其他植物葡糖苷酶的催化口袋的比较证明了Trp-388的结构重要性。与植物,细菌和古细菌来源的所有其他葡萄糖苷酶相比,SG的残基Trp-388以独特的结构构象存在,该构象对SG酶具有特异性。除STR1和长春碱合酶外,SG代表参与Rauvolfia生物碱ajmaline生物合成途径的酶的第三个结构实例。此处提供的数据将有助于破译其他高级植物葡糖苷酶的结构和反应机理。

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