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Michaelson, S.

Publications and source records attributed to Michaelson, S..

2 recordsLinked to original sources

Sensorimotor Integration Supporting Perception Requires Syngap1 Expression in Cortex

Perception, a cognitive construct, emerges through sensorimotor integration (SMI). The genetic mechanisms that shape SMI required for perception are unknown. Here, we demonstrate in mice that expression of the autism/intellectual disability gene, Syngap1, in cortical excitatory neurons is required for formation of somatomotor networks that promote SMI-mediated perception. Cortical Syngap1 expression was necessary and sufficient for setting tactile sensitivity, sustaining tactile object exploration, and promoting tactile learning. Mice with deficient Syngap1 expression exhibited impaired neural dynamics induced by exploratory touches within a cortical-thalamic network known to promote attention and perception. Disrupted neuronal dynamics were associated with circuit-specific long-range synaptic connectivity abnormalities. Our data support a model where autonomous Syngap1 expression in cortical excitatory neurons promotes cognitive abilities through assembly of circuits that integrate temporally-overlapping sensory and motor signals, a process that promotes perception and attention. These data provide systems-level insights into the robust association between Syngap1 expression and cognitive ability.

neuroscience↗

Syngap1 Regulates Cortical Circuit Assembly by Controlling Membrane Excitability

Gene expression intersects with neural activity to produce cortical circuits during brain development. However, the cell biological mechanisms linking gene expression to activity-dependent cortical circuit assembly remain unclear. Here, we demonstrate in mice that a newly discovered function of the neurodevelopmental disorder gene, Syngap1, is to cell-autonomously control intrinsic membrane excitability (IME) in developing cortical glutamatergic neurons. Syngap1 regulation of IME was mechanistically linked to wiring of a cortical circuit motif required for sensory processing and behavioral action. Restoring depressed IME in Syngap1 deficient neurons through genetic targeting of hyper-functional potassium currents unleashed deficient dendritic morphogenesis in upper lamina sensory cortex pyramidal neurons. Furthermore, enhancing dendritic morphogenesis was sufficient to stimulate assembly of translaminar feed-forward excitatory circuit motifs. Thus, Syngap1 promotes excitatory circuit assembly during cortical development by maintaining IME in a range that enables trophic neuronal activity to maximize pyramidal cell somatodendritic maturation and subsequent synapse formation. HighlightsO_LISyngap1 cell-autonomously tunes cortical pyramidal neuron IME in vivo C_LIO_LISyngap1-IME is regulated in part by control of neuronal potassium currents C_LIO_LISyngap1 enhancement of IME drives dendritic maturation in pyramidal cells C_LIO_LISyngap1 tuning of IME-regulated dendritic maturation promotes circuit assembly C_LI

neuroscience↗