Cortical interneurons that specialize in disinhibitory control
Hyun Jae Pi,Balázs Hangya,Balázs Hangya,Duda Kvitsiani,Joshua I. Sanders,Z. Josh Huang,Adam Kepecs +6 more
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TL;DR: A class of interneurons that express vasoactive intestinal polypeptide (VIP) mediates disinhibitory control in multiple areas of neocortex and is recruited by reinforcement signals, revealing a specific cell type and microcircuit underlying disinhibited control in cortex and demonstrating that it is activated under specific behavioural conditions.
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Abstract: In the mammalian cerebral cortex the diversity of interneuronal subtypes underlies a division of labour subserving distinct modes of inhibitory control. A unique mode of inhibitory control may be provided by inhibitory neurons that specifically suppress the firing of other inhibitory neurons. Such disinhibition could lead to the selective amplification of local processing and serve the important computational functions of gating and gain modulation. Although several interneuron populations are known to target other interneurons to varying degrees, little is known about interneurons specializing in disinhibition and their in vivo function. Here we show that a class of interneurons that express vasoactive intestinal polypeptide (VIP) mediates disinhibitory control in multiple areas of neocortex and is recruited by reinforcement signals. By combining optogenetic activation with single-cell recordings, we examined the functional role of VIP interneurons in awake mice, and investigated the underlying circuit mechanisms in vitro in auditory and medial prefrontal cortices. We identified a basic disinhibitory circuit module in which activation of VIP interneurons transiently suppresses primarily somatostatin- and a fraction of parvalbumin-expressing inhibitory interneurons that specialize in the control of the input and output of principal cells, respectively. During the performance of an auditory discrimination task, reinforcement signals (reward and punishment) strongly and uniformly activated VIP neurons in auditory cortex, and in turn VIP recruitment increased the gain of a functional subpopulation of principal neurons. These results reveal a specific cell type and microcircuit underlying disinhibitory control in cortex and demonstrate that it is activated under specific behavioural conditions.
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Citations
Parvalbumin- and vasoactive intestinal polypeptide-expressing neocortical interneurons impose differential inhibition on Martinotti cells.
F. Walker,Martin Möck,Michael Feyerabend,Julien Guy,Robin J. Wagener,Dirk Schubert,Jochen F. Staiger,Mirko Witte +7 more
TL;DR: Paired recordings revealed stronger synaptic input onto MC from PV cells than from VIP cells, which enables disinhibition with distinct temporal features.
Nicotine excites VIP interneurons to disinhibit pyramidal neurons in auditory cortex
TL;DR: It is suggested that nicotine drives VIP cell firing to disinhibit Pyr cell somata, potentially making Pyr cells more responsive to auditory stimuli, and chemogenetic inhibition of VIP neurons prevents nicotine's effects on Pyr neurons.
Plasticity of Persistent Activity and Its Constraints
TL;DR: Plastic changes in the strength of intrinsic network connections can be revealed by the analysis of synchronous spiking between neurons, essential for understanding how the prefrontal cortex mediates working memory and intelligent behavior.
Cortical VIP+ /ChAT+ interneurons: From genetics to function.
TL;DR: A thorough and updated picture of the properties of the VIP+ /ChAT+ interneurons is provided, including their genetic profile, their physiological and structural properties, and their input-output mapping in sensory cortices and the medial prefrontal cortex.
N-Type Calcium Channels Control GABAergic Transmission in Brain Areas related to Fear and Anxiety
Maxwell Blazon,Brianna LaCarubba,Alexandra Bunda,Natalie Czepiel,Shayna Mallat,Laura Londrigan,Arturo Andrade +6 more
- 12 Jan 2021
TL;DR: In this paper, N-type (CaV2.2) channels are shown to be key for action potential-evoked transmitter release in the peripheral and central nervous system.
References
Estimating the Dimension of a Model
TL;DR: In this paper, the problem of selecting one of a number of models of different dimensions is treated by finding its Bayes solution, and evaluating the leading terms of its asymptotic expansion.
Estimating the dimension of a model
Gideon Schwarz
- 01 Jan 2005
TL;DR: In this paper, the problem of selecting one of a number of models of different dimensions is treated by finding its Bayes solution, and evaluating the leading terms of its asymptotic expansion.
40.6K
Driving fast-spiking cells induces gamma rhythm and controls sensory responses
Jessica A. Cardin,Marie Carlén,Marie Carlén,Konstantinos Meletis,Konstantinos Meletis,Ulf Knoblich,Feng Zhang,Karl Deisseroth,Li-Huei Tsai,Li-Huei Tsai,Li-Huei Tsai,Christopher I. Moore +11 more
TL;DR: The timing of a sensory input relative to a gamma cycle determined the amplitude and precision of evoked responses and provided the first causal evidence that distinct network activity states can be induced in vivo by cell-type-specific activation.
Parvalbumin neurons and gamma rhythms enhance cortical circuit performance
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2.7K
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TL;DR: Using genetic engineering in mice, approximately 20 Cre and inducible CreER knockin driver lines that reliably target major classes and lineages of GABAergic neurons are generated, thereby enabling a systematic and comprehensive analysis from cell fate specification, migration, and connectivity, to their functions in network dynamics and behavior.
1.9K