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Ivy and neurogliaform interneurons are a major target of μ-opioid receptor modulation
Esther Krook-Magnuson1, Lillian Luu, Sang-Hun Lee
1Department of Anatomy and Neurobiology, University of California, Irvine, California 92697-1280, USA. ekrookma@uci.edu
Abstract:
μ-Opioid receptors (μORs) are selectively expressed on interneurons in area CA1 of the hippocampus. Fast-spiking, parvalbumin-expressing, basket cells express μORs, but circumstantial evidence suggests that another major, unidentified, GABAergic cell class must also be modulated by μORs. Here we report that the abundant, dendritically targeting, neurogliaform family of cells (Ivy and neurogliaform cells) is a previously unrecognized target of direct modulation by μORs. Ivy and neurogliaform cells are not only numerous but also have unique properties, including promiscuous gap junctions formed with various interneuronal subtypes, volume transmission, and the ability to produce a postsynaptic GABA(B) response after a single presynaptic spike. Using a mouse line expressing green fluorescent protein under the neuropeptide Y promoter, we find that, across all layers of CA1, activation of μORs hyperpolarizes Ivy and neurogliaform cells. Furthermore, paired recordings between synaptically coupled Ivy and pyramidal cells show that Ivy cell terminals are dramatically inhibited by μOR activation. Effects in Ivy and neurogliaform cells are seen at similar concentrations of agonist as those producing inhibition in fast-spiking parvalbumin basket cells. We also report that Ivy cells display the recently described phenomenon of persistent firing, a state of continued firing in the absence of continued input, and that induction of persistent firing is inhibited by μOR activation. Together, these findings identify a major, previously unrecognized, target of μOR modulation. Given the prominence of this cell type in and beyond CA1, as well as its unique role in microcircuitry, opioid modulation of neurogliaform cells has wide implications.
Insights
The study identifies neurogliaform cells as a new target for micro-opioid receptors (microORs) in the hippocampus. MicroOR activation hyperpolarizes these cells and inhibits their synaptic output, impacting brain circuitry.
Area of Science:
- Neuroscience
- Cellular Biology
- Pharmacology
Background:
- Micro-opioid receptors (microORs) are known to modulate interneurons in the hippocampus.
- While fast-spiking parvalbumin basket cells express microORs, another major GABAergic cell class modulated by microORs remained unidentified.
Purpose of the Study:
- To identify the previously unrecognized GABAergic cell class modulated by microORs in hippocampal area CA1.
- To investigate the direct effects of microOR activation on the properties and synaptic function of neurogliaform cells.
Main Methods:
- Utilized a mouse line with green fluorescent protein under the neuropeptide Y promoter for cell identification.
- Performed paired recordings between synaptically coupled Ivy and pyramidal cells.
- Assessed the effects of microOR agonist on Ivy and neurogliaform cell membrane potential and firing properties.
Main Results:
- Neurogliaform family cells (Ivy and neurogliaform cells) were identified as a novel target of direct microOR modulation.
- MicroOR activation led to hyperpolarization of Ivy and neurogliaform cells across all CA1 layers.
- MicroOR activation significantly inhibited Ivy cell synaptic terminals and suppressed the induction of persistent firing in Ivy cells.
Conclusions:
- Neurogliaform cells represent a major, previously unrecognized target of microOR modulation in the hippocampus.
- Opioid modulation of neurogliaform cells has broad implications for hippocampal microcircuitry and function.
- These findings expand our understanding of opioid receptor signaling in the central nervous system.
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