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首页> 外文期刊>Neurochemistry International: The International Journal for the Rapid Publication of Critical Reviews, Preliminary and Original Research Communications in Neurochemistry >Glutamate dehydrogenase in brain mitochondria: do lipid modifications and transient metabolon formation influence enzyme activity?
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Glutamate dehydrogenase in brain mitochondria: do lipid modifications and transient metabolon formation influence enzyme activity?

机译:脑线粒体中的谷氨酸脱氢酶:脂质修饰和瞬时代谢产物形成会影响酶的活性吗?

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摘要

Metabolism of glutamate, the primary excitatory neurotransmitter in brain, is complex and of paramount importance to overall brain function. Thus, understanding the regulation of enzymes involved in formation and disposal of glutamate and related metabolites is crucial to understanding glutamate metabolism. Glutamate dehydrogenase (GDH) is a pivotal enzyme that links amino acid metabolism and TCA cycle activity in brain and other tissues. The allosteric regulation of GDH has been extensively studied and characterized. Less is known about the influence of lipid modifications on GDH activity, and the participation of GDH in transient heteroenzyme complexes (metabolons) that can greatly influence metabolism by altering kinetic parameters and lead to channeling of metabolites. This review summarizes evidence for palmitoylation and acylation of GDH, information on protein binding, and information regarding the participation of GDH in transient heteroenzyme complexes. Recent studies suggest that a number of other proteins can bind to GDH altering activity and overall metabolism. It is likely that these modifications and interactions contribute additional levels of regulation of GDH activity and glutamate metabolism.
机译:谷氨酸(大脑中主要的兴奋性神经递质)的代谢非常复杂,对整体脑功能至关重要。因此,了解与谷氨酸和相关代谢产物的形成和处置有关的酶的调节对于理解谷氨酸代谢至关重要。谷氨酸脱氢酶(GDH)是一种关键酶,可将氨基酸代谢和大脑及其他组织中的TCA循环活性联系起来。 GDH的变构调节已被广泛研究和表征。关于脂质修饰对GDH活性的影响以及GDH参与瞬时杂酶复合物(代谢物)的影响知之甚少,后者可通过改变动力学参数极大地影响代谢并导致代谢产物的通道化。这篇综述总结了GDH的棕榈酰化和酰化的证据,有关蛋白质结合的信息以及有关GDH参与瞬时异酶复合物的信息。最近的研究表明,许多其他蛋白质可以结合GDH改变活性和整体代谢。这些修饰和相互作用很可能有助于调节GDH活性和谷氨酸代谢的额外水平。

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