Mechanism of Transport and Storage of Neurotransmitter
- 1 January 1987
- journal article
- review article
- Published by Taylor & Francis in Critical Reviews in Biochemistry
- Vol. 22 (1) , 1-38
- https://doi.org/10.3109/10409238709082546
Abstract
This review will focus on the bioenergetics, mechanism, and molecular basis of neurotransmitter transport. As indicated in the next section, these processes play an important role in the overall process of synaptic transmission. During the last few years, direct evidence has been obtained that these processes are coupled chemiosmotically, i.e., the accumulation of neurotransmitters is driven by ion gradients. Two types of neurotransmitter transport systems have been identified: sodium-coupled systems located in the synaptic plasma membrane of nerves (and sometimes in the plasma membrane of glial cells) and proton-coupled systems which are part of the membrane of intracellular storage organelles. From a bioenergetic point of view, the sodium-coupled systems are especially interesting, since it has recently been discovered that many systems require other ions in addition to sodium. It has now been demonstrated in several cases that, besides sodium ions, these additional ions, such as chloride and potassium, serve as additional coupling ions. These systems will be reviewed here in considerable detail with emphasis on the role of the additional ions. In the second part of the review we shall focus on neurotransmitter transport into storage organelles. Although both sodium and proton coupled systems have been reviewed in the past, there has been a shift from a kinetic and thermodynamic to a biochemical approach. In fact, a few transporters have been identified and functionally reconstituted. These developments have of course been incorporated in this review.Keywords
This publication has 100 references indexed in Scilit:
- Efflux and exchange of glycine by synaptic plasma membrane vesicles derived from rat brainBiochimica et Biophysica Acta (BBA) - Biomembranes, 1986
- Functional membrane vesicles from the nervous system of insectsBiochimica et Biophysica Acta (BBA) - Biomembranes, 1982
- Bicarbonate and magnesium ion-ATP dependent stimulation of acetylcholine uptake by Torpedo electric organ synaptic vesiclesBiochemical and Biophysical Research Communications, 1980
- Specificity of association of a Ca2+Mg2+ ATPase with cholinergic synaptic vesicles from Torpedo electric organBiochemical and Biophysical Research Communications, 1979
- A major role for chloride in (3H)- noradrenaline transport by rat heart adrenergic nervesLife Sciences, 1977
- Influence of membrane potential on the sodium-dependent uptake of gamma-aminobutyric acid by presynaptic nerve terminals: Experimental observations and theoretical considerationsThe Journal of Membrane Biology, 1976
- Neurochemical correlates of synaptically active amino acidsLife Sciences, 1974
- Neurotransmitter uptake: A tool in identifying neurotransmitter-specific pathwaysLife Sciences, 1973
- Glutamate uptake by brain slices and its relation to the depolarization of neurones by acidic amino acidsJournal of Neurobiology, 1972
- Differential uptake of biogenic amines by isolated 5-hydroxytryptamine organelles of blood plateletsLife Sciences, 1969