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PMID: 11369436 Published · ppublish English Journal Article Research Support, Non-U.S. Gov't Review

Glutamate uptake.

Progress in neurobiology ·Vol. 65 ·No. 1 ·2001-09-00 ·Pages 1-105

Danbolt NC

Abstract

Brain tissue has a remarkable ability to accumulate glutamate. This ability is due to glutamate transporter proteins present in the plasma membranes of both glial cells and neurons. The transporter proteins represent the only (significant) mechanism for removal of glutamate from the extracellular fluid and their importance for the long-term maintenance of low and non-toxic concentrations of glutamate is now well documented. In addition to this simple, but essential glutamate removal role, the glutamate transporters appear to have more sophisticated functions in the modulation of neurotransmission. They may modify the time course of synaptic events, the extent and pattern of activation and desensitization of receptors outside the synaptic cleft and at neighboring synapses (intersynaptic cross-talk). Further, the glutamate transporters provide glutamate for synthesis of e.g. GABA, glutathione and protein, and for energy production. They also play roles in peripheral organs and tissues (e.g. bone, heart, intestine, kidneys, pancreas and placenta). Glutamate uptake appears to be modulated on virtually all possible levels, i.e. DNA transcription, mRNA splicing and degradation, protein synthesis and targeting, and actual amino acid transport activity and associated ion channel activities. A variety of soluble compounds (e.g. glutamate, cytokines and growth factors) influence glutamate transporter expression and activities. Neither the normal functioning of glutamatergic synapses nor the pathogenesis of major neurological diseases (e.g. cerebral ischemia, hypoglycemia, amyotrophic lateral sclerosis, Alzheimer's disease, traumatic brain injury, epilepsy and schizophrenia) as well as non-neurological diseases (e.g. osteoporosis) can be properly understood unless more is learned about these transporter proteins. Like glutamate itself, glutamate transporters are somehow involved in almost all aspects of normal and abnormal brain activity.

MeSH Terms
ATP-Binding Cassette Transporters/chemistry,isolation & purification,metabolism Amino Acid Transport System X-AG Anesthetics/pharmacology Animals Bone and Bones/metabolism Brain/embryology,growth & development,metabolism Carrier Proteins/metabolism Ethanol/pharmacology Extracellular Space/metabolism Female Gene Expression Regulation Glutamic Acid/metabolism Glutamine/metabolism HIV Infections/metabolism Hepatic Encephalopathy/metabolism Humans Intracellular Fluid/metabolism Ion Channel Gating Ion Channels/metabolism Ion Transport Ischemia/metabolism Male Mammals/metabolism Mercury Poisoning/metabolism Monocarboxylic Acid Transporters Nerve Tissue Proteins/chemistry,isolation & purification,metabolism Nervous System Diseases/metabolism Neuroglia/metabolism Neurons/drug effects,metabolism Neurotransmitter Agents/metabolism Organ Specificity Placenta/metabolism Potassium/metabolism Pregnancy Protein Conformation Rats Receptors, Glutamate/chemistry,classification,drug effects,metabolism Sodium/metabolism Synapses/physiology Synaptic Transmission/drug effects,physiology Viscera/metabolism
Chemicals
ATP-Binding Cassette Transporters Amino Acid Transport System X-AG Anesthetics Carrier Proteins Ion Channels Monocarboxylic Acid Transporters Nerve Tissue Proteins Neurotransmitter Agents Receptors, Glutamate Glutamine Ethanol Glutamic Acid Sodium Potassium
Authors & Affiliations
1 authors, click to expand affiliations / ORCID
Danbolt N C
Department of Anatomy, Institute of Basic Medical Sciences, University of Oslo, P.O. Box 1105, Blindern, N-0317, Oslo, Norway.
Article Info
Journal
Progress in neurobiology
Abbr.
Prog Neurobiol
ISSN
0301-0082
Published
2001-09-00
Pages
1-105
Language
English
Region
England
NLM ID
0370121
Subset
IM
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