Differential chloride homeostasis in the spinal dorsal horn locally shapes synaptic metaplasticity and modality-specific sensitization.
basic_science · Level V
Where this comes from
- Record sourced from PubMed, PMID 32769979.
- Also identified by DOI 10.1038/s41467-020-17824-y and PMC identifier 7414850.
- 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
GABA<sub>A</sub>/glycine-mediated neuronal inhibition critically depends on intracellular chloride (Cl<sup>-</sup>) concentration which is mainly regulated by the K<sup>+</sup>-Cl<sup>-</sup> co-transporter 2 (KCC2) in the adult central nervous system (CNS). KCC2 heterogeneity thus affects information processing across CNS areas. Here, we uncover a gradient in Cl<sup>-</sup> extrusion capacity across the superficial dorsal horn (SDH) of the spinal cord (laminae I-II: LI-LII), which remains concealed under low Cl<sup>-</sup> load. Under high Cl<sup>-</sup> load or heightened synaptic drive, lower Cl<sup>-</sup> extrusion is unveiled in LI, as expected from the gradient in KCC2 expression found across the SDH. Blocking TrkB receptors increases KCC2 in LI, pointing to differential constitutive TrkB activation across laminae. Higher Cl<sup>-</sup> lability in LI results in rapidly collapsing inhibition, and a form of activity-dependent synaptic plasticity expressed as a continuous facilitation of excitatory responses. The higher metaplasticity in LI as compared to LII differentially affects sensitization to thermal and mechanical input. Thus, inconspicuous heterogeneity of Cl<sup>-</sup> extrusion across laminae critically shapes plasticity for selective nociceptive modalities.
Medical subject headings
- Central Nervous System Sensitization
- Chlorides
- Neuronal Plasticity
- Nociception
- Posterior Horn Cells