首页> 美国卫生研究院文献>Protein Science : A Publication of the Protein Society >The structure of a glycogen phosphorylase glucopyranose spirohydantoin complex at 1.8 A resolution and 100 K: the role of the water structure and its contribution to binding.
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The structure of a glycogen phosphorylase glucopyranose spirohydantoin complex at 1.8 A resolution and 100 K: the role of the water structure and its contribution to binding.

机译:糖原磷酸化酶葡萄糖吡喃糖螺乙内酰脲复合物在1.8 A分辨率和100 K下的结构:水结构的作用及其对结合的贡献。

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摘要

A glucopyranose spirohydantoin (a pyranose analogue of the potent herbicide, hydantocidin) has been identified as the highest affinity glucose analogue inhibitor of glycogen phosphorylase b (GPb). In order to elucidate the structural features that contribute to the binding, the structures of GPb in the native T state conformation and in complex with glucopyranose spirohydantoin have been determined at 100 K to 2.0 A and 1.8 A resolution, respectively, and refined to crystallographic R values of 0.197 (R[free] 0.248) and 0.182 (R[free] 0.229), respectively. The low temperature structure of GPb is almost identical to that of the previously determined room temperature structure, apart from a decrease in overall atomic temperature factors ((B) room temperature GPb = 34.9 A2; (B) 100 K GPb = 23.4 A2). The glucopyranose spirohydantoin inhibitor (Ki = 3.0 microM) binds at the catalytic site and induces small changes in two key regions of the protein: the 280s loop (residues 281-286) that results in a decrease in mobility of this region, and the 380s loop (residues 377-385) that undergoes more significant shifts in order to optimize contact to the ligand. The hydantoin group, that is responsible for increasing the affinity of the glucose compound by a factor of 10(3), makes only one hydrogen bond to the protein, from one of its NH groups to the main chain oxygen of His377. The other polar groups of the hydantoin group form hydrogen bonds to five water molecules. These waters are involved in extensive networks of hydrogen bonds and appear to be an integral part of the protein structure. Analysis of the water structure at the catalytic site of the native enzyme, shows that five waters are displaced by ligand binding and that there is a significant decrease in mobility of the remaining waters on formation of the GPb-hydantoin complex. The ability of the inhibitor to exploit existing waters, to displace waters and to recruit new waters appears to be important for the high affinity of the inhibitor.
机译:葡萄糖吡喃糖螺乙内酰脲(强效除草剂的吡喃糖类似物,hydantocidin)已被确定为糖原磷酸化酶b(GPb)的最高亲和力葡萄糖类似物抑制剂。为了阐明有助于结合的结构特征,已分别在100 K至2.0 A和1.8 A的分辨率下确定了天然T状态构型以及与吡喃葡萄糖螺乙内酰脲复合的GPb结构,并精炼至结晶R值分别为0.197(R [游离] 0.248)和0.182(R [游离] 0.229)。 GPb的低温结构几乎与先前确定的室温结构相同,除了总体原子温度因子有所降低((B)室温GPb = 34.9 A2;(B)100 K GPb = 23.4 A2)。吡喃葡萄糖螺旋体乙内酰脲抑制剂(Ki = 3.0 microM)在催化位点结合并诱导蛋白质的两个关键区域发生小变化:280s环(残基281-286)导致该区域的活动性降低,而380s环(残基377-385)经历更显着的变化,以优化与配体的接触。乙内酰脲基团负责使葡萄糖化合物的亲和力增加10(3)倍,从蛋白质的一个NH基团到His377的主链氧,仅与蛋白质形成一个氢键。乙内酰脲基团的其他极性基团与五个水分子形成氢键。这些水涉及广泛的氢键网络,并且似乎是蛋白质结构的组成部分。对天然酶催化位点的水结构的分析表明,五种水由于配体结合而被置换,并且在形成GPb-乙内酰脲复合物时,其余水的迁移率显着降低。抑制剂对现有水的开采,置换水和吸收新水的能力似乎对抑制剂的高亲和力很重要。

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