Pharmacology of sodium-dependent high-affinity L-[3H]glutamate transport in glial cultures. 1995

A B Garlin, and A D Sinor, and J D Sinor, and S H Jee, and J B Grinspan, and M B Robinson
Children's Seashore House, Philadelphia, Pennsylvania, USA.

Pharmacological and molecular biological studies provide evidence for subtypes of sodium-dependent high-affinity glutamate (Glu) transport in the mammalian CNS. At least some of these transporters appear to be selectively expressed in different brain regions or by different cell types. In the present study, the properties of L-[3H]Glu transport were characterized using astrocyte-enriched cultures prepared from cerebellum and cortex. In both brain regions, the kinetic data for sodium-dependent transport were consistent with a single site with Km values of 91 +/- 17 microM in cortical glial cells and 66 +/- 23 microM in cerebellar glial cells. The capacities were 6.1 +/- 1.6 nmol/mg of protein/min in cortical glial cells and 8.4 +/- 0.9 nmol/mg of protein/min in cerebellar glial cells. The potencies of approximately 40 excitatory amino acid analogues for inhibition of sodium-dependent transport into glial cells prepared from cortex and cerebellum were examined, including compounds that are selective inhibitors of transport in synaptosomes prepared from either cerebellum or cortex. Of the analogues tested, 14 inhibited transport activity by > 50% at 1 mM concentrations. Unlike L-[3H]Glu transport in synaptosomes prepared from cerebellum or cortex, there were no large differences between the potencies of compounds for inhibition of transport measured in glial cells prepared from these two brain regions. With the exception of (2S,1'R,2'R)-2-(carboxycyclopropyl)glycine and L-alpha-aminoadipate, all of the compounds examined were approximately 10-200-fold less potent as inhibitors of L-[3H]Glu transport measured in glial cells than as inhibitors of transport measured in synaptosomes prepared from their respective brain regions.(ABSTRACT TRUNCATED AT 250 WORDS)

UI MeSH Term Description Entries
D009457 Neuroglia The non-neuronal cells of the nervous system. They not only provide physical support, but also respond to injury, regulate the ionic and chemical composition of the extracellular milieu, participate in the BLOOD-BRAIN BARRIER and BLOOD-RETINAL BARRIER, form the myelin insulation of nervous pathways, guide neuronal migration during development, and exchange metabolites with neurons. Neuroglia have high-affinity transmitter uptake systems, voltage-dependent and transmitter-gated ion channels, and can release transmitters, but their role in signaling (as in many other functions) is unclear. Bergmann Glia,Bergmann Glia Cells,Bergmann Glial Cells,Glia,Glia Cells,Satellite Glia,Satellite Glia Cells,Satellite Glial Cells,Glial Cells,Neuroglial Cells,Bergmann Glia Cell,Bergmann Glial Cell,Cell, Bergmann Glia,Cell, Bergmann Glial,Cell, Glia,Cell, Glial,Cell, Neuroglial,Cell, Satellite Glia,Cell, Satellite Glial,Glia Cell,Glia Cell, Bergmann,Glia Cell, Satellite,Glia, Bergmann,Glia, Satellite,Glial Cell,Glial Cell, Bergmann,Glial Cell, Satellite,Glias,Neuroglial Cell,Neuroglias,Satellite Glia Cell,Satellite Glial Cell,Satellite Glias
D002478 Cells, Cultured Cells propagated in vitro in special media conducive to their growth. Cultured cells are used to study developmental, morphologic, metabolic, physiologic, and genetic processes, among others. Cultured Cells,Cell, Cultured,Cultured Cell
D002531 Cerebellum The part of brain that lies behind the BRAIN STEM in the posterior base of skull (CRANIAL FOSSA, POSTERIOR). It is also known as the "little brain" with convolutions similar to those of CEREBRAL CORTEX, inner white matter, and deep cerebellar nuclei. Its function is to coordinate voluntary movements, maintain balance, and learn motor skills. Cerebella,Corpus Cerebelli,Parencephalon,Cerebellums,Parencephalons
D002540 Cerebral Cortex The thin layer of GRAY MATTER on the surface of the CEREBRAL HEMISPHERES that develops from the TELENCEPHALON and folds into gyri and sulci. It reaches its highest development in humans and is responsible for intellectual faculties and higher mental functions. Allocortex,Archipallium,Cortex Cerebri,Cortical Plate,Paleocortex,Periallocortex,Allocortices,Archipalliums,Cerebral Cortices,Cortex Cerebrus,Cortex, Cerebral,Cortical Plates,Paleocortices,Periallocortices,Plate, Cortical
D000818 Animals Unicellular or multicellular, heterotrophic organisms, that have sensation and the power of voluntary movement. Under the older five kingdom paradigm, Animalia was one of the kingdoms. Under the modern three domain model, Animalia represents one of the many groups in the domain EUKARYOTA. Animal,Metazoa,Animalia
D001667 Binding, Competitive The interaction of two or more substrates or ligands with the same binding site. The displacement of one by the other is used in quantitative and selective affinity measurements. Competitive Binding
D001692 Biological Transport The movement of materials (including biochemical substances and drugs) through a biological system at the cellular level. The transport can be across cell membranes and epithelial layers. It also can occur within intracellular compartments and extracellular compartments. Transport, Biological,Biologic Transport,Transport, Biologic
D012964 Sodium A member of the alkali group of metals. It has the atomic symbol Na, atomic number 11, and atomic weight 23. Sodium Ion Level,Sodium-23,Ion Level, Sodium,Level, Sodium Ion,Sodium 23
D013574 Synaptosomes Pinched-off nerve endings and their contents of vesicles and cytoplasm together with the attached subsynaptic area of the membrane of the post-synaptic cell. They are largely artificial structures produced by fractionation after selective centrifugation of nervous tissue homogenates. Synaptosome
D017207 Rats, Sprague-Dawley A strain of albino rat used widely for experimental purposes because of its calmness and ease of handling. It was developed by the Sprague-Dawley Animal Company. Holtzman Rat,Rats, Holtzman,Sprague-Dawley Rat,Rats, Sprague Dawley,Holtzman Rats,Rat, Holtzman,Rat, Sprague-Dawley,Sprague Dawley Rat,Sprague Dawley Rats,Sprague-Dawley Rats

Related Publications

A B Garlin, and A D Sinor, and J D Sinor, and S H Jee, and J B Grinspan, and M B Robinson
January 1993, Journal of neurochemistry,
A B Garlin, and A D Sinor, and J D Sinor, and S H Jee, and J B Grinspan, and M B Robinson
March 1991, Brain research,
A B Garlin, and A D Sinor, and J D Sinor, and S H Jee, and J B Grinspan, and M B Robinson
May 2000, Journal of immunology (Baltimore, Md. : 1950),
A B Garlin, and A D Sinor, and J D Sinor, and S H Jee, and J B Grinspan, and M B Robinson
May 1983, Journal of neurochemistry,
A B Garlin, and A D Sinor, and J D Sinor, and S H Jee, and J B Grinspan, and M B Robinson
January 1977, Journal of neurochemistry,
A B Garlin, and A D Sinor, and J D Sinor, and S H Jee, and J B Grinspan, and M B Robinson
June 1999, Brain research,
A B Garlin, and A D Sinor, and J D Sinor, and S H Jee, and J B Grinspan, and M B Robinson
April 1997, Neuroscience,
A B Garlin, and A D Sinor, and J D Sinor, and S H Jee, and J B Grinspan, and M B Robinson
October 1991, Journal of neurochemistry,
A B Garlin, and A D Sinor, and J D Sinor, and S H Jee, and J B Grinspan, and M B Robinson
April 1992, FEBS letters,
A B Garlin, and A D Sinor, and J D Sinor, and S H Jee, and J B Grinspan, and M B Robinson
January 1998, Neurochemical research,
Copied contents to your clipboard!