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Complementary Tuning of Na+ and K+ Channel Gating Underlies Fast and Energy-Efficient Action Potentials in GABAergic Interneuron Axons.
Hu, Hua; Roth, Fabian C; Vandael, David; Jonas, Peter.
Afiliação
  • Hu H; Division of Physiology, Department of Molecular Medicine, Institute of Basic Medical Sciences, University of Oslo, 0317 Oslo, Norway; IST Austria (Institute of Science and Technology Austria), Am Campus 1, A-3400 Klosterneuburg, Austria. Electronic address: huah@medisin.uio.no.
  • Roth FC; Division of Physiology, Department of Molecular Medicine, Institute of Basic Medical Sciences, University of Oslo, 0317 Oslo, Norway.
  • Vandael D; IST Austria (Institute of Science and Technology Austria), Am Campus 1, A-3400 Klosterneuburg, Austria.
  • Jonas P; IST Austria (Institute of Science and Technology Austria), Am Campus 1, A-3400 Klosterneuburg, Austria. Electronic address: peter.jonas@ist.ac.at.
Neuron ; 98(1): 156-165.e6, 2018 04 04.
Article em En | MEDLINE | ID: mdl-29621485
Fast-spiking, parvalbumin-expressing GABAergic interneurons (PV+-BCs) express a complex machinery of rapid signaling mechanisms, including specialized voltage-gated ion channels to generate brief action potentials (APs). However, short APs are associated with overlapping Na+ and K+ fluxes and are therefore energetically expensive. How the potentially vicious combination of high AP frequency and inefficient spike generation can be reconciled with limited energy supply is presently unclear. To address this question, we performed direct recordings from the PV+-BC axon, the subcellular structure where active conductances for AP initiation and propagation are located. Surprisingly, the energy required for the AP was, on average, only ∼1.6 times the theoretical minimum. High energy efficiency emerged from the combination of fast inactivation of Na+ channels and delayed activation of Kv3-type K+ channels, which minimized ion flux overlap during APs. Thus, the complementary tuning of axonal Na+ and K+ channel gating optimizes both fast signaling properties and metabolic efficiency.
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Texto completo: 1 Base de dados: MEDLINE Assunto principal: Axônios / Potenciais de Ação / Canais de Sódio / Canais de Potássio Shaw / Neurônios GABAérgicos / Interneurônios Idioma: En Revista: Neuron Ano de publicação: 2018 Tipo de documento: Article

Texto completo: 1 Base de dados: MEDLINE Assunto principal: Axônios / Potenciais de Ação / Canais de Sódio / Canais de Potássio Shaw / Neurônios GABAérgicos / Interneurônios Idioma: En Revista: Neuron Ano de publicação: 2018 Tipo de documento: Article