Multiscale model of primary motor cortex circuits predicts in vivo cell-type-specific, behavioral state-dependent dynamics
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Author
Dura-Bernal, SalvadorNeymotin, Samuel A.
Suter, Benjamin A.
Dacre, Joshua
Moreira, Joao V.S.
Urdapilleta, Eugenio
Schiemann, Julia
Duguid, Ian
Shepherd, Gordon M.G.
Lytton, William W.
Keyword
General Biochemistry, Genetics and Molecular BiologyCP
Neuroscience
Cell type-specific
computational model
cortical circuits
local field potentials
motor cortex
motor thalamus
multiscale
neural dynamics
neural manifolds
Journal title
Cell ReportsDate Published
2023-06Publication Volume
42Publication Issue
6Publication Begin page
112574
Metadata
Show full item recordAbstract
Understanding cortical function requires studying multiple scales: molecular, cellular, circuit, and behavioral. We develop a multiscale, biophysically detailed model of mouse primary motor cortex (M1) with over 10,000 neurons and 30 million synapses. Neuron types, densities, spatial distributions, morphologies, biophysics, connectivity, and dendritic synapse locations are constrained by experimental data. The model includes long-range inputs from seven thalamic and cortical regions and noradrenergic inputs. Connectivity depends on cell class and cortical depth at sublaminar resolution. The model accurately predicts in vivo layer- and cell-type-specific responses (firing rates and LFP) associated with behavioral states (quiet wakefulness and movement) and experimental manipulations (noradrenaline receptor blockade and thalamus inactivation). We generate mechanistic hypotheses underlying the observed activity and analyzed low-dimensional population latent dynamics. This quantitative theoretical framework can be used to integrate and interpret M1 experimental data and sheds light on the cell-type-specific multiscale dynamics associated with several experimental conditions and behaviors.Citation
Dura-Bernal S, Neymotin SA, Suter BA, Dacre J, Moreira JVS, Urdapilleta E, Schiemann J, Duguid I, Shepherd GMG, Lytton WW. Multiscale model of primary motor cortex circuits predicts in vivo cell-type-specific, behavioral state-dependent dynamics. Cell Rep. 2023 Jun 27;42(6):112574. doi: 10.1016/j.celrep.2023.112574. Epub 2023 Jun 9. PMID: 37300831; PMCID: PMC10592234.DOI
10.1016/j.celrep.2023.112574ae974a485f413a2113503eed53cd6c53
10.1016/j.celrep.2023.112574
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- Creative Commons
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