Journal of Neuroscience · 2012 · 93 citations · 24 references
We report a novel coupled system of sodium-activated potassium currents (I(KNa)) and persistent sodium currents (I(NaP)), the components of which are widely distributed throughout the brain. Its existence and importance has not been previously recognized. Although I(KNa) was known to exist in many cell types, the source of Na(+) which activates I(KNa) remained a mystery. We now show in single membrane patches generated from the somas of rat neurons that sodium influx through I(NaP) is sufficient for activation of K(Na) channels, without substantial contribution from the transient sodium current or bulk [Na(+)](i). I(NaP) was found to be active at cell membrane resting potentials, a finding that may explain why I(KNa) can be evoked from negative holding potentials. These results show an unanticipated role for I(NaP) in activating a negative feedback system countering the excitable effects I(NaP); the interrelatedness of I(NaP) and I(KNa) suggests new ways neurons can tune their excitability.
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Hua Hu, Koen Vervaeke, Johan F. Storm · The Journal of Physiology · 2002 · 428 citations · Full text
Clear Resonance, Synaptic Transmission, Neurotransmission +18
Intracellular Na+ activates a K+ channel in mammalian cardiac cells
Masaki Kameyama, Masafumi Kakei, Ryoichi Sato et al. · Nature · 1984 · 359 citations
The Sodium-Activated Potassium Channel Is Encoded by a Member of the Slo Gene Family
Alex Yuan, Celia M. Santi, Aguan Wei et al. · Neuron · 2003 · 287 citations · Full text
Molecular Neuroscience, Molecular Physiology, Signal Transduction +14
Persistent Sodium Current and Its Role in Epilepsy
Carl E. Stafstrom · Epiliepsy currents/Epilepsy currents · 2007 · 248 citations · Full text