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Distributions of vesicular glutamate transporters 1 and 2 in the visual system of tree shrews ( Tupaia belangeri )
Author(s) -
Balaram P.,
Isaamullah M.,
Petry H.M.,
Bickford M.E.,
Kaas J.H.
Publication year - 2015
Publication title -
journal of comparative neurology
Language(s) - English
Resource type - Journals
SCImago Journal Rank - 1.855
H-Index - 209
eISSN - 1096-9861
pISSN - 0021-9967
DOI - 10.1002/cne.23727
Subject(s) - superior colliculus , biology , glutamatergic , neuroscience , visual cortex , lateral geniculate nucleus , excitatory postsynaptic potential , visual system , glutamate receptor , inhibitory postsynaptic potential , genetics , receptor
ABSTRACT Vesicular glutamate transporter (VGLUT) proteins regulate the storage and release of glutamate from synapses of excitatory neurons. Two isoforms, VGLUT1 and VGLUT2, are found in most glutamatergic projections across the mammalian visual system, and appear to differentially identify subsets of excitatory projections between visual structures. To expand current knowledge on the distribution of VGLUT isoforms in highly visual mammals, we examined the mRNA and protein expression patterns of VGLUT1 and VGLUT2 in the lateral geniculate nucleus (LGN), superior colliculus, pulvinar complex, and primary visual cortex (V1) in tree shrews ( Tupaia belangeri ), which are closely related to primates but classified as a separate order (Scandentia). We found that VGLUT1 was distributed in intrinsic and corticothalamic connections, whereas VGLUT2 was predominantly distributed in subcortical and thalamocortical connections. VGLUT1 and VGLUT2 were coexpressed in the LGN and in the pulvinar complex, as well as in restricted layers of V1, suggesting a greater heterogeneity in the range of efferent glutamatergic projections from these structures. These findings provide further evidence that VGLUT1 and VGLUT2 identify distinct populations of excitatory neurons in visual brain structures across mammals. Observed variations in individual projections may highlight the evolution of these connections through the mammalian lineage. J. Comp. Neurol. 523:1792–1808, 2015. © 2015 Wiley Periodicals, Inc.

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