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Montalant, A.

Publications and source records attributed to Montalant, A..

2 recordsLinked to original sources

Microcircuit failure in STXBP1 encephalopathy leads to hyperexcitability

De novo mutations in Stxbp1 are among the most prevalent causes of neurodevelopmental disorders, and lead to haploinsufficiency, cortical hyperexcitability, epilepsy and other symptoms. Given that Munc18-1, the protein encoded by Stxbp1, is essential for both excitatory and inhibitory synaptic transmission, it is currently not understood why mutations cause hyperexcitability. We discovered that overall inhibition in canonical feedforward microcircuits is defective in a validated mouse model for Stxbp1 haploinsufficiency. However, unexpectedly, we found that inhibitory synapses were largely unaffected. Instead, excitatory synapses failed to recruit inhibitory interneurons. Modelling experiments confirmed that defects in the recruitment of inhibitory neurons in microcircuits cause hyperexcitation. Ampakines, compounds that enhance excitatory synapses, restored interneuron recruitment and prevented hyperexcitability. These findings identify deficits in excitatory synapses in microcircuits as a key underlying mechanism for cortical hyperexcitability in Stxbp1 disorder and identify compounds enhancing excitation as a direction for therapy design. Highlights- Neocortical microcircuits fail in Stxbp1 haploinsufficiency mouse models (Stxbp1hap) - Microcircuit impairments leads to cortical hyperexcitability due to a lack of inhibition. - Inhibitory synapses are not severely affected in Stxbp1hap, instead, excitatory synapses fail to recruit interneurons. - AMPAkines rescue microcircuit failure in Stxbp1hap

neuroscience↗

Brainstem Neurons that Command Left/Right Locomotor Asymmetries

Descending command neurons instruct spinal networks to execute basic locomotor functions, such as which gait and what speed. The command functions for gait and speed are symmetric, implying that a separate unknown system directs asymmetric movements--the ability to move left or right. Here we report the discovery that Chx10-lineage reticulospinal neurons act to control the direction of locomotor movements in mammals. Chx10 neurons exhibit ipsilateral projection, and can decrease spinal limb-based locomotor activity ipsilaterally. This circuit mechanism acts as the basis for left or right locomotor movements in freely moving animals: selective unilateral activation of Chx10 neurons causes ipsilateral movements whereas inhibition causes contralateral movements. Spontaneous forward locomotion is thus transformed into an ipsilateral movement by braking locomotion on the ipsilateral side. We identify sensorimotor brain regions that project onto Chx10 reticulospinal neurons, and demonstrate that their unilateral activation can impart left/right directional commands. Together these data identify the descending motor system which commands left/right locomotor asymmetries in mammals.

neuroscience↗