首页> 外文期刊>Journal of chemical theory and computation: JCTC >Mechanism of Fully Reversible, pH-Sensitive Inhibition of Human Glutamine Synthetase by Tyrosine Nitration
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Mechanism of Fully Reversible, pH-Sensitive Inhibition of Human Glutamine Synthetase by Tyrosine Nitration

机译:酪氨酸硝化的全逆转,pH敏感酶完全可逆,pH敏感抑制

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摘要

Glutamine synthetase (GS) catalyzes an ATP-dependent condensation of glutamate and ammonia to form glutamine. This reaction—and therefore GS—are indispensable for the hepatic nitrogen metabolism. Nitration of tyrosine 336 (Y336) inhibits human GS activity. GS nitration and the consequent loss of GS function are associated with a broad range of neurological diseases. The mechanism by which Y336 nitration inhibits GS, however, is not understood. Here, we show by means of unbiased MD simulations, binding, and configurational free energy computations that Y336 nitration hampers ATP binding but only in the deprotonated and negatively charged state of residue 336. By contrast, for the protonated and neutral state, our computations indicate an increased binding affinity for ATP. pK _(a) computations of nitrated Y336 within GS predict a pK _(a) of ~5.3. Thus, at physiological pH, nitrated Y336 exists almost exclusively in the deprotonated and negatively charged state. In vitro experiments confirm these predictions, in that, the catalytic activity of nitrated GS is decreased at pH 7 and 6 but not at pH 4. These results indicate a novel, fully reversible, pH-sensitive mechanism for the regulation of GS activity by tyrosine nitration.
机译:谷氨酰胺合成酶(GS)催化谷氨酸和氨的ATP依赖性缩合,形成谷氨酰胺。该反应 - 因此GS-对于肝脏氮代谢是必不可少的。酪氨酸336(Y336)的硝化抑制人GS活性。 GS硝化和随后的GS功能丧失与广泛的神经疾病相关。然而,不了解Y336硝化Gs的机制。这里,我们通过无偏的MD模拟,绑定和配置自由能量计算来展示Y336硝化妨碍ATP结合,而是仅在去质子化和带负电的残留物336中。相反,对于质子化和中立状态,我们的计算表明增加对ATP的结合亲和力。 P K _(a)GS内的硝化Y336的计算预测〜5.3的P K(a)。因此,在生理pH下,硝化Y336几乎完全存在于质子化和带负电的状态。在体外实验中,确认这些预测,从而,在pH7和6处降低硝化Gs的催化活性,但不在pH 4时降低。这些结果表明了用于调节GS的新颖,完全可逆的pH敏感机制酪氨酸硝化的活动。

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    Institute for Pharmaceutical and Medicinal Chemistry Heinrich Heine University Düsseldorf;

    Clinic for Gastroenterology Hepatology and Infectious Diseases Heinrich Heine University Düsseldorf;

    Clinic for Gastroenterology Hepatology and Infectious Diseases Heinrich Heine University Düsseldorf;

    Department of Biochemistry and Molecular Biology New York Medical College;

    Institute for Pharmaceutical and Medicinal Chemistry Heinrich Heine University Düsseldorf;

    Clinic for Gastroenterology Hepatology and Infectious Diseases Heinrich Heine University Düsseldorf;

    Institute for Pharmaceutical and Medicinal Chemistry Heinrich Heine University Düsseldorf;

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  • 正文语种 eng
  • 中图分类 化学键的量子力学理论;化学;
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