Ionic current correlations are ubiquitous across phyla
Document Type
Article
Publication Date
12-1-2019
Abstract
Ionic currents, whether measured as conductance amplitude or as ion channel transcript numbers, can vary many-fold within a population of identified neurons. In invertebrate neuronal types multiple currents can be seen to vary while at the same time their magnitudes are correlated. These conductance amplitude correlations are thought to reflect a tight homeostasis of cellular excitability that enhances the robustness and stability of neuronal activity over long stretches of time. Although such ionic conductance correlations are well documented in invertebrates, they have not been reported in vertebrates. Here we demonstrate with two examples, identified mouse hippocampal granule cells (GCs) and cholinergic basal forebrain neurons, that the correlation of ionic conductance amplitudes between different ionic currents also exists in vertebrates, and we argue that it is a ubiquitous phenomenon expressed by many species across phyla. We further demonstrate that in dentate gyrus GCs these conductance correlations are likely regulated in a circadian manner. This is reminiscent of the known conductance regulation by neuromodulators in crustaceans. However, in GCs we observe a more nuanced regulation, where for some conductance pairs the correlations are completely eliminated while for others the correlation is quantitatively modified but not obliterated.
Identifier
85061272000 (Scopus)
Publication Title
Scientific Reports
External Full Text Location
https://doi.org/10.1038/s41598-018-38405-6
e-ISSN
20452322
PubMed ID
30737430
Issue
1
Volume
9
Grant
DMS-1715808
Fund Ref
National Science Foundation
Recommended Citation
Tran, Trinh; Unal, Cagri T.; Severin, Daniel; Zaborszky, Laszlo; Rotstein, Horacio G.; Kirkwood, Alfredo; and Golowasch, Jorge, "Ionic current correlations are ubiquitous across phyla" (2019). Faculty Publications. 7178.
https://digitalcommons.njit.edu/fac_pubs/7178