The intercalated nuclear complex of the primate amygdala
Basilis Zikopoulos1, Yohan J John2, Miguel Ángel García-Cabezas2
1Human Systems Neuroscience Laboratory, Department of Health Sciences, Boston University, Boston, MA, United States; Graduate Program for Neuroscience, Boston University and School of Medicine, Boston, MA, United States.
Insights
Inhibitory intercalated cell masses in primate amygdala form a widespread neuronal net, not discrete clusters. This net exhibits distinct structural and neurochemical neuron types, crucial for emotional processing.
Area of Science:
- Neuroscience
- Primate Brain Anatomy
Background:
- The organization of inhibitory intercalated cell masses (IM) in the primate amygdala is poorly understood.
- IM neurons play a critical role in emotional processing.
Purpose of the Study:
- To investigate the structural, topographic, neurochemical, and intrinsic connectional features of IM neurons in the rhesus monkey amygdala.
- To elucidate the organization of the primate amygdala's inhibitory network.
Main Methods:
- Microscopic analysis of rhesus monkey amygdala tissue.
- Identification and characterization of intercalated neuron morphology and neurochemical markers.
Main Results:
- Intercalated neurons form a continuous neuronal net, not discrete clusters, extending throughout the amygdala.
- Two morphologic types (spiny and aspiny) and three distinct neurochemical populations (DARPP-32+, calbindin+, NOS+) of IM neurons were identified.
- The primate IM net spans the antero-posterior axis, differing from rodent distribution.
Conclusions:
- The primate amygdala's inhibitory network is organized as a complex neuronal net with diverse neuron subtypes.
- These distinct IM neuron populations likely possess unique physiological properties and functions.
- The intricate organization suggests specific roles in fear conditioning and anxiety pathways.
Abstract:
The organization of the inhibitory intercalated cell masses (IM) of the primate amygdala is largely unknown despite their key role in emotional processes. We studied the structural, topographic, neurochemical and intrinsic connectional features of IM neurons in the rhesus monkey brain. We found that the intercalated neurons are not confined to discrete cell clusters, but form a neuronal net that is interposed between the basal nuclei and extends to the dorsally located anterior, central, and medial nuclei of the amygdala. Unlike the IM in rodents, which are prominent in the anterior half of the amygdala, the primate inhibitory net stretched throughout the antero-posterior axis of the amygdala, and was most prominent in the central and posterior extent of the amygdala. There were two morphologic types of intercalated neurons: spiny and aspiny. Spiny neurons were the most abundant; their somata were small or medium size, round or elongated, and their dendritic trees were round or bipolar, depending on location. The aspiny neurons were on average slightly larger and had varicose dendrites with no spines. There were three non-overlapping neurochemical populations of IM neurons, in descending order of abundance: (1) Spiny neurons that were positive for the striatal associated dopamine- and cAMP-regulated phosphoprotein (DARPP-32+); (2) Aspiny neurons that expressed the calcium-binding protein calbindin (CB+); and (3) Aspiny neurons that expressed nitric oxide synthase (NOS+). The unique combinations of structural and neurochemical features of the three classes of IM neurons suggest different physiological properties and function. The three types of IM neurons were intermingled and likely interconnected in distinct ways, and were innervated by intrinsic neurons within the amygdala, or by external sources, in pathways that underlie fear conditioning and anxiety.
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