首页> 美国卫生研究院文献>The Journal of Biological Chemistry >Crystal Structure of Barley Limit Dextrinase-Limit Dextrinase Inhibitor (LD-LDI) Complex Reveals Insights into Mechanism and Diversity of Cereal Type Inhibitors
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Crystal Structure of Barley Limit Dextrinase-Limit Dextrinase Inhibitor (LD-LDI) Complex Reveals Insights into Mechanism and Diversity of Cereal Type Inhibitors

机译:大麦极限糊精酶限量糊精酶抑制剂(LD-LDI)复合物的晶体结构揭示了对谷物类型抑制剂的机理和多样性的见解。

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摘要

Molecular details underlying regulation of starch mobilization in cereal seed endosperm remain unknown despite the paramount role of this process in plant growth. The structure of the complex between the starch debranching enzyme barley limit dextrinase (LD), hydrolyzing α-1,6-glucosidic linkages, and its endogenous inhibitor (LDI) was solved at 2.7 Å. The structure reveals an entirely new and unexpected binding mode of LDI as compared with previously solved complex structures of related cereal type family inhibitors (CTIs) bound to glycoside hydrolases but is structurally analogous to binding of dual specificity CTIs to proteases. Site-directed mutagenesis establishes that a hydrophobic cluster flanked by ionic interactions in the protein-protein interface is vital for the picomolar affinity of LDI to LD as assessed by analysis of binding by using surface plasmon resonance and also supported by LDI inhibition of the enzyme activity. A phylogenetic analysis identified four LDI-like proteins in cereals among the 45 sequences from monocot databases that could be classified as unique CTI sequences. The unprecedented binding mechanism shown here for LDI has likely evolved in cereals from a need for effective inhibition of debranching enzymes having characteristic open active site architecture. The findings give a mechanistic rationale for the potency of LD activity regulation and provide a molecular understanding of the debranching events associated with optimal starch mobilization and utilization during germination. This study unveils a hitherto not recognized structural basis for the features endowing diversity to CTIs.
机译:尽管该过程在植物生长中具有最重要的作用,但尚不清楚谷物种子胚乳中淀粉动员调控的分子细节。淀粉解支酶大麦极限糊精酶(LD),水解α-1,6-糖苷键与其内源抑制剂(LDI)之间的复合物结构在2.7Å下得到解析。与先前解决的与糖苷水解酶结合的相关谷类家族抑制剂(CTI)的复杂结构相比,该结构揭示了一种全新的,出乎意料的LDI结合模式,但在结构上类似于双重特异性CTI与蛋白酶的结合。定点诱变建立了一个侧翼于蛋白质-蛋白质界面的离子相互作用的疏水簇对于LDI与LD的皮摩尔亲和力至关重要,这是通过使用表面等离振子共振进行结合分析来评估的,并且还受到LDI抑制酶活性的支持。系统发育分析确定了谷物中来自单子叶植物数据库的45个序列中的四种LDI样蛋白,这些蛋白可以归类为独特的CTI序列。由于对有效抑制具有特征性开放活性位点结构的脱支酶的需求,在谷物中显示出了对LDI前所未有的结合机制。这些发现为LD活性调节的效力提供了机械原理,并提供了与发芽过程中最佳淀粉动员和利用相关的脱支事件的分子理解。这项研究揭示了迄今为止尚未认识到的赋予CTI多样性的特征的结构基础。

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