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人源 UDP-α-D-葡萄糖 6-脱氢酶变构调节的构象灵活性。

Conformational flexibility in the allosteric regulation of human UDP-α-D-glucose 6-dehydrogenase.

机构信息

Department of Biochemistry and Molecular Biology, University of Georgia, Athens, Georgia 30602, United States.

出版信息

Biochemistry. 2011 Nov 8;50(44):9651-63. doi: 10.1021/bi201381e. Epub 2011 Oct 13.

DOI:10.1021/bi201381e
PMID:21961565
Abstract

UDP-α-D-xylose (UDX) acts as a feedback inhibitor of human UDP-α-D-glucose 6-dehydrogenase (hUGDH) by activating an unusual allosteric switch, the Thr131 loop. UDX binding induces the Thr131 loop to translate ~5 Å through the protein core, changing packing interactions and rotating a helix (α6(136-144)) to favor the formation of an inactive hexameric complex. But how does to conformational change occur given the steric packing constraints of the protein core? To answer this question, we deleted Val132 from the Thr131 loop to approximate an intermediate state in the allosteric transition. The 2.3 Å resolution crystal structure of the deletion construct (Δ132) reveals an open conformation that relaxes steric constraints and facilitates repacking of the protein core. Sedimentation velocity studies show that the open conformation stabilizes the Δ132 construct as a hexamer with point group symmetry 32, similar to that of the active complex. In contrast, the UDX-inhibited enzyme forms a lower-symmetry, horseshoe-shaped hexameric complex. We show that the Δ132 and UDX-inhibited structures have similar hexamer-building interfaces, suggesting that the hinge-bending motion represents a path for the allosteric transition between the different hexameric states. On the basis of (i) main chain flexibility and (ii) a model of the conformational change, we propose that hinge bending can occur as a concerted motion between adjacent subunits in the high-symmetry hexamer. We combine these results in a structurally detailed model for allosteric feedback inhibition and substrate--product exchange during the catalytic cycle.

摘要

UDP-α-D-木糖 (UDX) 通过激活一个不寻常的变构开关,即 Thr131 环,作为人 UDP-α-D-葡萄糖 6-脱氢酶 (hUGDH) 的反馈抑制剂。UDX 结合诱导 Thr131 环通过蛋白质核心平移约 5 Å,改变包装相互作用并旋转一个螺旋 (α6(136-144)),有利于形成无活性的六聚体复合物。但是,给定蛋白质核心的空间位阻包装限制,构象变化是如何发生的?为了回答这个问题,我们从 Thr131 环中删除了 Val132,以近似变构跃迁中的中间状态。删除构建体 (Δ132) 的 2.3 Å 分辨率晶体结构揭示了一种开放构象,该构象放松了空间位阻并促进了蛋白质核心的重新包装。沉降速度研究表明,开放构象稳定了 Δ132 构建体作为具有点群对称性 32 的六聚体,类似于活性复合物。相比之下,UDX 抑制的酶形成具有较低对称性的马蹄形六聚体复合物。我们表明,Δ132 和 UDX 抑制的结构具有相似的六聚体构建界面,表明铰链弯曲运动代表不同六聚体状态之间的变构转变的途径。基于 (i) 主链灵活性和 (ii) 构象变化的模型,我们提出铰链弯曲可以作为高对称六聚体中相邻亚基之间的协同运动发生。我们将这些结果结合在一个结构详细的模型中,用于催化循环期间的变构反馈抑制和底物-产物交换。

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