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Tsintsadze, T.

Publications and source records attributed to Tsintsadze, T..

3 recordsLinked to original sources

Anandamide reduces excitability by preferentially targeting somatic VGSCs via CB1

Endogenous cannabinoid signaling is vital for important brain functions and can be modified pharmacologically to treat pain, epilepsy, and posttraumatic stress disorder. Endocannabinoid mediated changes to excitability are predominantly attributed to 2-arachidonoylglycerol at synapses. Here we identify a pathway in the neocortex by which anandamide, the other major endocannabinoid, powerfully inhibits sodium conductances in the soma resulting in a loss of neuronal excitability. This pathway is mediated by the cannabinoid receptor, and its activation results in a decrease of recurrent action potential generation. The synthetic cannabinoid, WIN 55,212-2, also inhibits VGSC currents indicating this pathway is positioned to mediate the actions of exogenous cannabinoids. HighlightsAnandamide (AEA), a major endocannabinoid, indirectly inhibits VGSC currents in neocortical neurons. This prevalent signaling pathway involves AEA activation of CB1 and other G-protein-coupled receptors localized to the intracellular compartment of neurons. CB1 activation by AEA reduces VGSC availability at the soma but not at the axonal compartment suggesting tighter functional coupling between VGSCs and CB1 at the cell body. Cannabinoid action on somatic CB1 inhibits VGSCs with high efficacy, providing a parallel pathway outside of nerve terminals, by which these ligands reduce neuronal excitability in the neocortex.

neuroscience↗

CaSR modulates sodium channel-mediated Ca 2+ -dependent excitability

Increasing extracellular [Ca2+] ([Ca2+]o) strongly decreases intrinsic excitability in neurons but the mechanism is unclear. By one hypothesis, [Ca2+]o screens surface charge reducing voltage-dependent sodium channel (VGSC) activation and by another [Ca2+]o activates Calcium-sensing receptor (CaSR) closing the sodium-leak channel (NALCN). Here we report that action potential (AP) firing rates increased in wild-type (WT), but not CaSR null mutant (Casr-/-) neocortical neurons, following the switch from physiological to reduced Ca2+-containing Tyrode. However, after membrane potential correction, AP firing increased similarly in both genotypes inconsistent with CaSR regulation of NALCN. Activation of VGSCs was the dominant contributor to the increase in excitability after the [Ca2+]o change. VGSC conductance-voltage relationships were hyperpolarized by decreasing [Ca2+]o for Casr-/- neurons indicating CaSR contributes to [Ca2+]o-dependent excitability via VGSCs. Regulation of VGSC gating by [Ca2+]o is the key mechanism mediating [Ca2+]o-dependent changes in neocortical neuron excitability and CaSR influences neuronal excitability by its effects on VGSC gating.

neuroscience↗

Large, stable spikes exhibit differential broadening in excitatory and inhibitory neocortical boutons

Presynaptic action potential spikes control neurotransmitter release and thus interneuronal communication. However, the properties and the dynamics of presynaptic spikes in the neocortex remain enigmatic because boutons in the neocortex are small and direct patch-clamp recordings have not been performed. Here we report direct recordings from boutons of neocortical pyramidal neurons and interneurons. Our data reveal rapid and large presynaptic action potentials in layer 5 neurons and fast-spiking interneurons reliably propagating into axon collaterals. For in-depth analyses we validate boutons of mature cultured neurons as models for excitatory neocortical boutons, demonstrating that the presynaptic spike amplitude was unaffected by potassium channels, homeostatic long-term plasticity, and high-frequency firing. In contrast to the stable amplitude, presynaptic spikes profoundly broadened for example during high-frequency firing in layer 5 pyramidal neurons but not in fast-spiking interneurons. Thus, our data demonstrate large presynaptic spikes and fundamental differences between excitatory and inhibitory boutons in the neocortex.

neuroscience↗