首页> 外文期刊>Neurotoxicity research >Detoxification of ammonia in mouse cortical GABAergic cell cultures increases neuronal oxidative metabolism and reveals an emerging role for release of glucose-derived alanine.
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Detoxification of ammonia in mouse cortical GABAergic cell cultures increases neuronal oxidative metabolism and reveals an emerging role for release of glucose-derived alanine.

机译:小鼠皮质GABA能细胞培养物中氨的解毒作用增加了神经元的氧化代谢,并揭示了释放葡萄糖衍生的丙氨酸的新兴作用。

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Cerebral hyperammonemia is believed to play a pivotal role in the development of hepatic encephalopathy (HE), a debilitating condition arising due to acute or chronic liver disease. In the brain, ammonia is thought to be detoxified via the activity of glutamine synthetase, an astrocytic enzyme. Moreover, it has been suggested that cerebral tricarboxylic acid (TCA) cycle metabolism is inhibited and glycolysis enhanced during hyperammonemia. The aim of this study was to characterize the ammonia-detoxifying mechanisms as well as the effects of ammonia on energy-generating metabolic pathways in a mouse neuronal-astrocytic co-culture model of the GABAergic system. We found that 5 mM ammonium chloride affected energy metabolism by increasing the neuronal TCA cycle activity and switching the astrocytic TCA cycle toward synthesis of substrate for glutamine synthesis. Furthermore, ammonia exposure enhanced the synthesis and release of alanine. Collectively, our results demonstrate that (1) formation of glutamine is seminal for detoxification of ammonia; (2) neuronal oxidative metabolism is increased in the presence of ammonia; and (3) synthesis and release of alanine is likely to be important for ammonia detoxification as a supplement to formation of glutamine.
机译:人们认为脑高氨血症在肝性脑病(HE)的发展中起关键作用,肝性脑病是由于急性或慢性肝病引起的虚弱性疾病。在大脑中,氨被认为是通过谷氨酰胺合成酶(一种星形细胞酶)的活性而被解毒的。而且,已经提出在高氨血症期间脑三羧酸(TCA)循环代谢被抑制并且糖酵解增强。这项研究的目的是表征GABA能系统的小鼠神经元-星形细胞共培养模型中氨的解毒机理以及氨对能量代谢途径的影响。我们发现5 mM氯化铵通过增加神经元TCA循环活性和将星形细胞TCA循环切换为谷氨酰胺合成底物的合成来影响能量代谢。此外,氨暴露增强了丙氨酸的合成和释放。总的来说,我们的结果表明:(1)谷氨酰胺的形成对于氨的解毒是开创性的; (2)在氨的存在下神经元的氧化代谢增加; (3)丙氨酸的合成和释放对于氨解毒作为谷氨酰胺形成的补充可能很重要。

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