Postsynaptic targets of somatostatin‐containing interneurons in the rat basolateral amygdala
- 22 November 2006
- journal article
- research article
- Published by Wiley in Journal of Comparative Neurology
- Vol. 500 (3) , 513-529
- https://doi.org/10.1002/cne.21185
Abstract
The basolateral amygdala contains several subpopulations of inhibitory interneurons that can be distinguished on the basis of their content of calcium‐binding proteins or peptides. Although previous studies have shown that interneuronal subpopulations containing parvalbumin (PV) or vasoactive intestinal peptide (VIP) innervate distinct postsynaptic domains of pyramidal cells as well as other interneurons, very little is known about the synaptic outputs of the interneuronal subpopulation that expresses somatostatin (SOM). The present study utilized dual‐labeling immunocytochemical techniques at the light and electron microscopic levels to analyze the innervation of pyramidal cells, PV+ interneurons, and VIP+ interneurons in the anterior basolateral amygdalar nucleus (BLa) by SOM+ axon terminals. Pyramidal cell somata and dendrites were selectively labeled with antibodies to calcium/calmodulin‐dependent protein kinase II (CaMK); previous studies have shown that the vast majority of dendritic spines, whether CAMK+ or not, arise from pyramidal cells. Almost all SOM+ axon terminals formed symmetrical synapses. The main postsynaptic targets of SOM+ terminals were small‐caliber CaMK+ dendrites and dendritic spines, some of which were CaMK+. These SOM+ synapses with dendrites were often in close proximity to asymmetrical (excitatory) synapses to these same structures formed by unlabeled terminals. Few SOM+ terminals formed synapses with CaMK+ pyramidal cell somata or large‐caliber (proximal) dendrites. Likewise, only 15% of SOM+ terminals formed synapses with PV+, VIP+, or SOM+ interneurons. These findings suggest that inhibitory inputs from SOM+ interneurons may interact with excitatory inputs to pyramidal cell distal dendrites in the BLa. These interactions might affect synaptic plasticity related to emotional learning. J. Comp. Neurol. 500:513–529, 2007.Keywords
This publication has 98 references indexed in Scilit:
- Somatostatin inhibits glutamate release from mouse cerebrocortical nerve endings through presynaptic sst2 receptors linked to the adenylyl cyclase–protein kinase A pathwayNeuropharmacology, 2003
- Amygdala oscillations and the consolidation of emotional memoriesTrends in Cognitive Sciences, 2002
- Cell surface domain specific postsynaptic currents evoked by identified GABAergic neurones in rat hippocampus in vitroThe Journal of Physiology, 2000
- Facilitating pyramid to horizontal oriens‐alveus interneurone inputs: dual intracellular recordings in slices of rat hippocampusThe Journal of Physiology, 1998
- Status Epilepticus Causes Selective Regional Damage and Loss of GABAergic Neurons in the Rat Amygdaloid ComplexEuropean Journal of Neuroscience, 1996
- Neurons in the ventral subiculum, amygdala and entorhinal cortex which project to the nucleus accumbens: Their input from somatostatin-immunoreactive boutonsJournal of Chemical Neuroanatomy, 1993
- Actions of vasoactive intestinal polypeptide (VIP) on neocortical neurons of the rat in vitroNeuroscience Letters, 1992
- Projections from the lateral nucleus to the basal nucleus of the amygdala: A light and electron microscopic PHA‐L study in the ratJournal of Comparative Neurology, 1992
- Effects of somatostatin and anti-somatostatin serum on picrotoxin-kindled seizuresNeuropharmacology, 1992
- Ultrastructural analysis of somatostatin‐immunoreactive neurons and synapses in the temporal and occipital cortex of the macaque monkeyJournal of Comparative Neurology, 1989