Two opposite voltage-dependent currents control the unusual early development pattern of embryonic Renshaw cell electrical activity.
basic_science · Level V
Where this comes from
- Record sourced from PubMed, PMID 33899737.
- Also identified by DOI 10.7554/eLife.62639 and PMC identifier 8139835.
- Licence recorded as CC BY.
- The licence permits redistribution, so the abstract is shown in full and the full text is available from the publisher.
Abstract
Renshaw cells (V1<sup>R</sup>) are excitable as soon as they reach their final location next to the spinal motoneurons and are functionally heterogeneous. Using multiple experimental approaches, in combination with biophysical modeling and dynamical systems theory, we analyzed, for the first time, the mechanisms underlying the electrophysiological properties of V1<sup>R</sup> during early embryonic development of the mouse spinal cord locomotor networks (E11.5-E16.5). We found that these interneurons are subdivided into several functional clusters from E11.5 and then display an unexpected transitory involution process during which they lose their ability to sustain tonic firing. We demonstrated that the essential factor controlling the diversity of the discharge pattern of embryonic V1<sup>R</sup> is the ratio of a persistent sodium conductance to a delayed rectifier potassium conductance. Taken together, our results reveal how a simple mechanism, based on the synergy of two voltage-dependent conductances that are ubiquitous in neurons, can produce functional diversity in embryonic V1<sup>R</sup> and control their early developmental trajectory.
Medical subject headings
- Action Potentials
- Delayed Rectifier Potassium Channels
- Potassium
- Renshaw Cells
- Sodium
- Sodium Channels
- Spinal Cord