Daily rhythm in cortical chloride homeostasis underpins functional changes in visual cortex excitability.
basic_science · Level V
Where this comes from
- Record sourced from PubMed, PMID 37925453.
- Also identified by DOI 10.1038/s41467-023-42711-7 and PMC identifier 10625537.
- 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
Cortical activity patterns are strongly modulated by fast synaptic inhibition mediated through ionotropic, chloride-conducting receptors. Consequently, chloride homeostasis is ideally placed to regulate activity. We therefore investigated the stability of baseline [Cl<sup>-</sup>]<sub>i</sub> in adult mouse neocortex, using in vivo two-photon imaging. We found a two-fold increase in baseline [Cl<sup>-</sup>]<sub>i</sub> in layer 2/3 pyramidal neurons, from day to night, with marked effects upon both physiological cortical processing and seizure susceptibility. Importantly, the night-time activity can be converted to the day-time pattern by local inhibition of NKCC1, while inhibition of KCC2 converts day-time [Cl<sup>-</sup>]<sub>i</sub> towards night-time levels. Changes in the surface expression and phosphorylation of the cation-chloride cotransporters, NKCC1 and KCC2, matched these pharmacological effects. When we extended the dark period by 4 h, mice remained active, but [Cl<sup>-</sup>]<sub>i</sub> was modulated as for animals in normal light cycles. Our data thus demonstrate a daily [Cl<sup>-</sup>]<sub>i</sub> modulation with complex effects on cortical excitability.
Medical subject headings
- Symporters
- Visual Cortex