Polarized synaptic interactions between intercalated neurons of the amygdala

S Royer1, M Martina, D Paré

  • 1Laboratoire de Neurophysiologie, Département de Physiologie, Faculté de Médecine, Université Laval, Québec G1K 7P4, Canada.

Insights

Intercalated (ITC) cell connections in the amygdala show directional bias. Morphological asymmetry of ITC cells explains this lateromedial connectivity, impacting information flow to the central nucleus.

Area of Science:

  • Neuroscience
  • Cellular Neuroscience
  • Synaptic Plasticity

Background:

  • Intercalated (ITC) cell masses are GABAergic clusters in the amygdala.
  • ITC cells modulate information flow between the basolateral (BL) complex and central (CE) nucleus.
  • Previous studies suggested lateromedial inhibitory interactions among ITC cells are crucial for gating information.

Purpose of the Study:

  • To characterize the connectivity among ITC cells.
  • To investigate the role of lateromedial interactions in ITC cell function.
  • To understand how ITC cell connectivity influences information transfer in the amygdala.

Main Methods:

  • Whole-cell recordings from guinea pig amygdala slices.
  • Electrical stimulation of the BL complex and ITC cell clusters.
  • Local glutamate injections to assess inhibitory effects.
  • Intracellular Neurobiotin injection to analyze ITC cell morphology.

Main Results:

  • Stimulation at the same or medial levels of BL complex elicited excitatory responses in ITC cells.
  • Stimulation moved laterally resulted in inhibitory responses, blocked by receptor antagonists.
  • Lateral ITC clusters were more effective in inhibiting recorded ITC cells than medial clusters.
  • ITC cells exhibit asymmetric dendritic and axonal morphology along the lateromedial axis.

Conclusions:

  • Inter-ITC connections exhibit a lateromedial directionality.
  • Morphological asymmetry of ITC cells underlies this directional polarization.
  • This directional connectivity is critical for gating information transfer from the BL complex to the CE nucleus.

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