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V2b neurons act via multiple targets in spinal motor networks
Inhibition Underlies Fast Undulatory Locomotion in Caenorhabditis elegans | eNeuro
Developmental switch in the function of inhibitory commissural V0d interneurons in zebrafish - ScienceDirect
Inhibition Underlies Fast Undulatory Locomotion in Caenorhabditis elegans | eNeuro
The rhythm section: An update on spinal interneurons setting the beat for mammalian locomotion. - Abstract - Europe PMC
V2b neurons act via multiple targets in spinal motor networks
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Developmental switch in the function of inhibitory commissural V0d interneurons in zebrafish - ScienceDirect
Neuron-specific inactivation of Wt1 alters locomotion in mice and changes interneuron composition in the spinal cord | Life Science Alliance
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Developmental switch in the function of inhibitory commissural V0d interneurons in zebrafish - ScienceDirect
Coherence analysis of the calcium activity of putative astrocytic and neuronal cells on the L5 ventral horn and neural output in activated lumbar CPG networks - ScienceDirect
Self-Assembly of Recombinant Silk as a Strategy for Chemical-Free Formation of Bioactive Coatings: A Real-Time Study | Biomacromolecules
Developmental Disruption of Recurrent Inhibitory Feedback Results in Compensatory Adaptation in the Renshaw Cell–Motor Neuron Circuit | Journal of Neuroscience
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V2b neurons act via multiple targets in spinal motor networks
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Compounds and methods for the production of suckerin and uses thereof Patent Grant Guerette , et al. January 26, 2 [Agency for Science, Technology and Research]
Inhibition underlies fast undulatory locomotion in C. elegans | bioRxiv
V2b neurons act via multiple targets in spinal motor networks
V2b neurons act via multiple targets in spinal motor networks
Coherence analysis of the calcium activity of putative astrocytic and neuronal cells on the L5 ventral horn and neural output in activated lumbar CPG networks - ScienceDirect
Sensors | Free Full-Text | Early Diagnosis of Breast Cancer
Developmental Disruption of Recurrent Inhibitory Feedback Results in Compensatory Adaptation in the Renshaw Cell–Motor Neuron Circuit | Journal of Neuroscience