Thalamic T-Type Calcium Channels as Targets for Hypnotics and General Anesthetics

Int J Mol Sci. 2022 Feb 21;23(4):2349. doi: 10.3390/ijms23042349.

Abstract

General anesthetics mainly act by modulating synaptic inhibition on the one hand (the potentiation of GABA transmission) or synaptic excitation on the other (the inhibition of NMDA receptors), but they can also have effects on numerous other proteins, receptors, and channels. The effects of general anesthetics on ion channels have been the subject of research since the publication of reports of direct actions of these drugs on ion channel proteins. In particular, there is considerable interest in T-type voltage-gated calcium channels that are abundantly expressed in the thalamus, where they control patterns of cellular excitability and thalamocortical oscillations during awake and sleep states. Here, we summarized and discussed our recent studies focused on the CaV3.1 isoform of T-channels in the nonspecific thalamus (intralaminar and midline nuclei), which acts as a key hub through which natural sleep and general anesthesia are initiated. We used mouse genetics and in vivo and ex vivo electrophysiology to study the role of thalamic T-channels in hypnosis induced by a standard general anesthetic, isoflurane, as well as novel neuroactive steroids. From the results of this study, we conclude that CaV3.1 channels contribute to thalamocortical oscillations during anesthetic-induced hypnosis, particularly the slow-frequency range of δ oscillations (0.5-4 Hz), by generating "window current" that contributes to the resting membrane potential. We posit that the role of the thalamic CaV3.1 isoform of T-channels in the effects of various classes of general anesthetics warrants consideration.

Keywords: EEG recording; LFP recording; general anesthesia; hypnosis; nonspecific thalamus; t-type calcium channels.

Publication types

  • Review

MeSH terms

  • Anesthetics, General / pharmacology*
  • Animals
  • Calcium Channels, T-Type / drug effects*
  • Humans
  • Hypnotics and Sedatives / pharmacology*
  • Membrane Potentials
  • Mice
  • Neurons / drug effects
  • Neurons / metabolism*
  • Neurons / physiology

Substances

  • Anesthetics, General
  • Calcium Channels, T-Type
  • Hypnotics and Sedatives