Selective, State-Dependent Activation of Somatostatin-Expressing Inhibitory Interneurons in Mouse Neocortex
- 1 November 2008
- journal article
- research article
- Published by American Physiological Society in Journal of Neurophysiology
- Vol. 100 (5) , 2640-2652
- https://doi.org/10.1152/jn.90691.2008
Abstract
The specific functions of subtypes of cortical inhibitory neurons are not well understood. This is due in part to a dearth of information about the behaviors of interneurons under conditions when the surrounding circuit is in an active state. We investigated the firing behavior of a subset of inhibitory interneurons, identified using mice that express green fluorescent protein (GFP) in a subset of somatostatin-expressing inhibitory cells (“GFP-expressing inhibitory neuron” [GIN] cells). The somata of the GIN cells were in layer 2/3 of somatosensory cortex and had dense, layer 1–projecting axons that are characteristic of Martinotti neurons. Interestingly, GIN cells fired similarly during a variety of diverse activating conditions: when bathed in fluids with low-divalent cation concentrations, when stimulated with brief trains of local synaptic inputs, when exposed to group I metabotropic glutamate receptor agonists, or when exposed to muscarinic cholinergic receptor agonists. During these manipulations, GIN cells fired rhythmically and persistently in the theta-frequency range (3–10 Hz). Synchronous firing was often observed and its strength was directly proportional to the magnitude of electrical coupling between GIN cells. These effects were cell type specific: the four manipulations that persistently activated GIN cells rarely caused spiking of regular-spiking (RS) pyramidal cells or fast-spiking (FS) inhibitory interneurons. Our results suggest that supragranular GIN interneurons form an electrically coupled network that exerts a coherent 3- to 10-Hz inhibitory influence on its targets. Because GIN cells are more readily activated than RS and FS cells, it is possible that they act as “first responders” when cortical excitatory activity increases.Keywords
This publication has 51 references indexed in Scilit:
- Synaptic basis for intense thalamocortical activation of feedforward inhibitory cells in neocortexNature Neuroscience, 2007
- Synchronization of Electrically Coupled Pairs of Inhibitory Interneurons in NeocortexJournal of Neuroscience, 2007
- High Gamma Power Is Phase-Locked to Theta Oscillations in Human NeocortexScience, 2006
- Distinct Subtypes of Somatostatin-Containing Neocortical Interneurons Revealed in Transgenic MiceJournal of Neuroscience, 2006
- Synaptic computationNature, 2004
- A network of electrically coupled interneurons drives synchronized inhibition in neocortexNature Neuroscience, 2000
- Cortical cholinergic inputs mediating arousal, attentional processing and dreaming: differential afferent regulation of the basal forebrain by telencephalic and brainstem afferentsNeuroscience, 1999
- Synchronized oscillations in interneuron networks driven by metabotropic glutamate receptor activationNature, 1995
- Intrinsic Oscillations of Neocortex Generated by Layer 5 Pyramidal NeuronsScience, 1991
- Mechanisms of action of acetylcholine in the guinea‐pig cerebral cortex in vitro.The Journal of Physiology, 1986