Glial Glutamine Homeostasis in Health and Disease

被引:0
作者
Jens V. Andersen
Arne Schousboe
机构
[1] University of Copenhagen,Department of Drug Design and Pharmacology
来源
Neurochemical Research | 2023年 / 48卷
关键词
Glutamate-glutamine cycle; GABA-glutamine cycle; Neurodegenerative diseases; Glutamine transporters; Astrocytes; Oligodendrocytes; Brain energy and neurotransmitter metabolism;
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学科分类号
摘要
Glutamine is an essential cerebral metabolite. Several critical brain processes are directly linked to glutamine, including ammonia homeostasis, energy metabolism and neurotransmitter recycling. Astrocytes synthesize and release large quantities of glutamine, which is taken up by neurons to replenish the glutamate and GABA neurotransmitter pools. Astrocyte glutamine hereby sustains the glutamate/GABA-glutamine cycle, synaptic transmission and general brain function. Cerebral glutamine homeostasis is linked to the metabolic coupling of neurons and astrocytes, and relies on multiple cellular processes, including TCA cycle function, synaptic transmission and neurotransmitter uptake. Dysregulations of processes related to glutamine homeostasis are associated with several neurological diseases and may mediate excitotoxicity and neurodegeneration. In particular, diminished astrocyte glutamine synthesis is a common neuropathological component, depriving neurons of an essential metabolic substrate and precursor for neurotransmitter synthesis, hereby leading to synaptic dysfunction. While astrocyte glutamine synthesis is quantitatively dominant in the brain, oligodendrocyte-derived glutamine may serve important functions in white matter structures. In this review, the crucial roles of glial glutamine homeostasis in the healthy and diseased brain are discussed. First, we provide an overview of cellular recycling, transport, synthesis and metabolism of glutamine in the brain. These cellular aspects are subsequently discussed in relation to pathological glutamine homeostasis of hepatic encephalopathy, epilepsy, Alzheimer’s disease, Huntington’s disease and amyotrophic lateral sclerosis. Further studies on the multifaceted roles of cerebral glutamine will not only increase our understanding of the metabolic collaboration between brain cells, but may also aid to reveal much needed therapeutic targets of several neurological pathologies.
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页码:1100 / 1128
页数:28
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  • [51] Hertz L(2016)Succinic semialdehyde dehydrogenase deficiency (SSADHD): Pathophysiological complexity and multifactorial trait associations in a rare monogenic disorder of GABA metabolism Neurochem Int 99 72-406
  • [52] Dringen R(2019)Brain Glucose Metabolism: Integration of Energetics with Function Physiol Rev 99 949-1145
  • [53] Schousboe A(2007)The glutamate-glutamine cycle is not stoichiometric: fates of glutamate in brain J Neurosci Res 85 3347-1353
  • [54] Robinson SR(2014)Glutamate synthesis has to be matched by its degradation - where do all the carbons go? J Neurochem 131 399-321
  • [55] Cammer W(2001)An energy budget for signaling in the grey matter of the brain J Cereb Blood Flow Metab 21 1133-5593
  • [56] Ben Haim L(2018)Evaluating the gray and white matter energy budgets of human brain function J Cereb Blood Flow Metab 38 1339-1519
  • [57] Schirmer L(1998)Stoichiometric coupling of brain glucose metabolism and glutamatergic neuronal activity Proc Natl Acad Sci U S A 95 316-3699
  • [58] Zulji A(2005)The contribution of GABA to glutamate/glutamine cycling and energy metabolism in the rat cortex in vivo Proc Natl Acad Sci U S A 102 5588-780
  • [59] Sabeur K(1987)Numbers and proportions of GABA-immunoreactive neurons in different areas of monkey cerebral cortex J Neurosci 7 1503-257
  • [60] Tiret B(1963)DISTINCT MEDIATING SYSTEMS FOR THE TRANSPORT OF NEUTRAL AMINO ACIDS BY THE EHRLICH CELL J Biol Chem 238 3686-795