4.7 Article

Vasoactive Intestinal Polypeptide-Immunoreactive Interneurons within Circuits of the Mouse Basolateral Amygdala

Journal

JOURNAL OF NEUROSCIENCE
Volume 38, Issue 31, Pages 6983-7003

Publisher

SOC NEUROSCIENCE
DOI: 10.1523/JNEUROSCI.2063-17.2018

Keywords

basolateral amygdala; connectivity; disinhibition; GABA; interneurons; synapse

Categories

Funding

  1. Austrian Science Fund (Fonds zur Forderung der Wissenschaftlichen Forschung) [W12060]
  2. bilateral cooperation and mobility program [HU 03/2012]
  3. Hungarian Academy of Sciences [LP2012-23]
  4. National Research, Development and Innovation Office [K_119742]
  5. [Sonderforschungsbereich F44-17-B23]
  6. Austrian Science Fund (FWF) [W1206] Funding Source: Austrian Science Fund (FWF)

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In cortical structures, principal cell activity is tightly regulated by different GABAergic interneurons (INs). Among these INs are vasoactive intestinal polypeptide-expressing (VIP+) INs, which innervate preferentially other INs, providing a structural basis for temporal disinhibition of principal cells. However, relatively little is known about VIP+ INs in the amygdaloid basolateral complex (BLA). In this study, we report that VIP+ INs have a variable density in the distinct subdivisions of the mouse BLA. Based on different anatomical, neurochemical, and electrophysiological criteria, VIP+ INs could be identified as IN-selective INs (IS-INs) and basket cells expressing CB1 cannabinoid receptors. Whole-cell recordings of VIP+ IS-INs revealed three different spiking patterns, none of which was associated with the expression of calretinin. Genetic targeting combined with optogenetics and in vitro recordings enabled us to identify several types of BLA INs innervated by VIP+ INs, including other IS-INs, basket and neurogliaform cells. Moreover, light stimulation of VIP+ basket cell axon terminals, characterized by CB1 sensitivity, evoked IPSPs in similar to 20% of principal neurons. Finally, we show that VIP+ INs receive a dense innervation from both GABAergic inputs (although only 10% from other VIP+ INs) and distinct glutamatergic inputs, identified by their expression of different vesicular glutamate transporters. In conclusion, our study provides a wide-range analysis of single-cell properties of VIP+ INs in the mouse BLA and of their intrinsic and extrinsic connectivity. Our results reinforce the evidence that VIP+ INs are structurally and functionally heterogeneous and that this heterogeneity could mediate different roles in amygdala-dependent functions.

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