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Lys169 of Human Glucokinase Is a Determinant for Glucose Phosphorylation: Implication for the Atomic Mechanism of Glucokinase Catalysis

机译:人葡萄糖激酶的Lys169是葡萄糖磷酸化的决定因素:葡萄糖激酶催化的原子机理的含义。

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摘要

Glucokinase (GK), a glucose sensor, maintains plasma glucose homeostasis via phosphorylation of glucose and is a potential therapeutic target for treating maturity-onset diabetes of the young (MODY) and persistent hyperinsulinemic hypoglycemia of infancy (PHHI). To characterize the catalytic mechanism of glucose phosphorylation by GK, we combined molecular modeling, molecular dynamics (MD) simulations, quantum mechanics/molecular mechanics (QM/MM) calculations, experimental mutagenesis and enzymatic kinetic analysis on both wild-type and mutated GK. Our three-dimensional (3D) model of the GK-Mg2+-ATP-glucose (GMAG) complex, is in agreement with a large number of mutagenesis data, and elucidates atomic information of the catalytic site in GK for glucose phosphorylation. A 10-ns MD simulation of the GMAG complex revealed that Lys169 plays a dominant role in glucose phosphorylation. This prediction was verified by experimental mutagenesis of GK (K169A) and enzymatic kinetic analyses of glucose phosphorylation. QM/MM calculations were further used to study the role of Lys169 in the catalytic mechanism of the glucose phosphorylation and we found that Lys169 enhances the binding of GK with both ATP and glucose by serving as a bridge between ATP and glucose. More importantly, Lys169 directly participates in the glucose phosphorylation as a general acid catalyst. Our findings provide mechanistic details of glucose phorphorylation catalyzed by GK, and are important for understanding the pathogenic mechanism of MODY.
机译:葡萄糖传感器葡萄糖激酶(GK)通过葡萄糖的磷酸化维持血浆葡萄糖的体内稳态,是潜在的治疗目标,可用于治疗年轻的糖尿病(MODY)和持续性高胰岛素血症性婴儿低血糖症(PHHI)。为了表征GK葡萄糖磷酸化的催化机理,我们结合了分子模型,分子动力学(MD)模拟,量子力学/分子力学(QM / MM)计算,野生型和突变GK的实验诱变和酶动力学分析。我们的GK-Mg2 + -ATP-葡萄糖(GMAG)复合物的三维(3D)模型与大量诱变数据相符,阐明了GK中用于葡萄糖磷酸化的催化位点的原子信息。 GMAG复合物的10 ns MD模拟显示Lys169在葡萄糖磷酸化中起主要作用。 GK(K169A)的实验诱变和葡萄糖磷酸化的酶动力学分析证实了这一预测。 QM / MM计算进一步用于研究Lys169在葡萄糖磷酸化催化机制中的作用,我们发现Lys169通过充当ATP和葡萄糖之间的桥梁来增强GK与ATP和葡萄糖的结合。更重要的是,Lys169作为一般的酸催化剂直接参与葡萄糖的磷酸化。我们的发现提供了由GK催化的葡萄糖磷酸化的机理细节,对于理解MODY的致病机理具有重要意义。

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