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The Vesicular GABA Transporter, VGAT, Localizes to Synaptic Vesicles in Sets of Glycinergic As Well As GABAergic Neurons

Overview
Journal J Neurosci
Specialty Neurology
Date 1998 Nov 21
PMID 9822734
Citations 258
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Abstract

A transporter thought to mediate accumulation of GABA into synaptic vesicles has recently been cloned (McIntire et al., 1997). This vesicular GABA transporter (VGAT), the first vesicular amino acid transporter to be molecularly identified, differs in structure from previously cloned vesicular neurotransmitter transporters and defines a novel gene family. Here we use antibodies specific for N- and C-terminal epitopes of VGAT to localize the protein in the rat CNS. VGAT is highly concentrated in the nerve endings of GABAergic neurons in the brain and spinal cord but also in glycinergic nerve endings. In contrast, hippocampal mossy fiber boutons, which although glutamatergic are known to contain GABA, lack VGAT immunoreactivity. Post-embedding immunogold quantification shows that the protein specifically associates with synaptic vesicles. Triple labeling for VGAT, GABA, and glycine in the lateral oliva superior revealed a higher expression of VGAT in nerve endings rich in GABA, with or without glycine, than in others rich in glycine only. Although the great majority of nerve terminals containing GABA or glycine are immunopositive for VGAT, subpopulations of nerve endings rich in GABA or glycine appear to lack the protein. Additional vesicular transporters or alternative modes of release may therefore contribute to the inhibitory neurotransmission mediated by these two amino acids.

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References
1.
Ornung G, Shupliakov O, Linda H, Ottersen O, Storm-Mathisen J, Ulfhake B . Qualitative and quantitative analysis of glycine- and GABA-immunoreactive nerve terminals on motoneuron cell bodies in the cat spinal cord: a postembedding electron microscopic study. J Comp Neurol. 1996; 365(3):413-26. DOI: 10.1002/(SICI)1096-9861(19960212)365:3<413::AID-CNE6>3.0.CO;2-7. View

2.
Berod A, Hartman B, Pujol J . Importance of fixation in immunohistochemistry: use of formaldehyde solutions at variable pH for the localization of tyrosine hydroxylase. J Histochem Cytochem. 1981; 29(7):844-50. DOI: 10.1177/29.7.6167611. View

3.
Ottersen O, Storm-Mathisen J, Somogyi P . Colocalization of glycine-like and GABA-like immunoreactivities in Golgi cell terminals in the rat cerebellum: a postembedding light and electron microscopic study. Brain Res. 1988; 450(1-2):342-53. DOI: 10.1016/0006-8993(88)91573-9. View

4.
Fykse E, Fonnum F . Amino acid neurotransmission: dynamics of vesicular uptake. Neurochem Res. 1996; 21(9):1053-60. DOI: 10.1007/BF02532415. View

5.
Glendenning K, MASTERTON R, Baker B, Wenthold R . Acoustic chiasm. III: Nature, distribution, and sources of afferents to the lateral superior olive in the cat. J Comp Neurol. 1991; 310(3):377-400. DOI: 10.1002/cne.903100308. View