Using computational models to predict in vivo synaptic inputs to interneuron specific 3 (IS3) cells of CA1 hippocampus that also allow their recruitment during rhythmic states
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Summary
It is found that asynchronous, in vivo-like states that are sensitive to additional theta-timed inputs exist when excitatory and inhibitory synaptic conductances are approximately equally balanced and with low numbers of activated synapses receiving correlated inputs.
- Type
- article
- Published
- 2019-01-08
- Cited by
- 12
- References
- 92
- Access
- Open access
- OpenAlex
- https://openalex.org/W30620732
- Semantic Scholar
- https://api.semanticscholar.org/CorpusID:58024959
Keywords
Bioconversion, Fermentation, Biomass (ecology), Ethanol fuel, Yeast
References
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- Frequency-invariant temporal ordering of interneuronal discharges during hippocampal oscillations in awake mice
- Intracellular dynamics of hippocampal place cells during virtual navigation
- Cortical interneurons that specialize in disinhibitory control
- Electrical and calcium signaling in dendrites of hippocampal pyramidal neurons.
- Expression pattern of voltage-dependent calcium channel subunits in hippocampal inhibitory neurons in mice.
- How Inhibition Shapes Cortical Activity
- Neuronal Diversity and Temporal Dynamics: The Unity of Hippocampal Circuit Operations
- Chaos in Neuronal Networks with Balanced Excitatory and Inhibitory Activity
- Long-Range and Local Circuits for Top-Down Modulation of Visual Cortical Processing
- Dendritic Inhibition Provided by Interneuron-Specific Cells Controls the Firing Rate and Timing of the Hippocampal Feedback Inhibitory Circuitry
- Interneurons of the neocortical inhibitory system
- The high-conductance state of neocortical neurons in vivo
Cited by
- Synaptic properties and network state-dependent recruitment of VIP-expressing interneuron-specific interneurons in the CA1 hippocampus
- Somatodendritic HCN channels in hippocampal OLM cells revealed by a convergence of computational models and experiments
- 28th Annual Computational Neuroscience Meeting: CNS*2019
- Synaptic Mechanisms Underlying the Network State-Dependent Recruitment of VIP-Expressing Interneurons in the CA1 Hippocampus.
- Computationally going where experiments cannot: a dynamical assessment of dendritic ion channel currents during in vivo-like states
- Deciphering how specialized interneuron-specific cell types contribute to circuit function
- Integration of Within-Cell Experimental Data With Multi-Compartmental Modeling Predicts H-Channel Densities and Distributions in Hippocampal OLM Cells
- Reduced inhibition in depression impairs stimulus processing in human cortical microcircuits
- In-silico testing of new pharmacology for restoring inhibition and human cortical function in depression
- Deriving connectivity from spiking activity in detailed models of large-scale cortical microcircuits
- Linking Age Changes in Human Cortical Microcircuits to Impaired Brain Function and EEG Biomarkers
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