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September 1, 2000Journal of Biological Chemistry139 citationsOpen Access

Induction of Persistent Sodium Current by Exogenous and Endogenous Nitric Oxide

GAGerard P. AhernSHShyue‐Fang HsuVKVitaly A. Klyachko

Structured PICO

Does nitric oxide regulate persistent sodium current in nerve terminals and ventricular myocytes?

P
Population
Nerve terminals and ventricular myocytes
I
Intervention
Exogenous and endogenous nitric oxide (NO)
C
Comparator
Control conditions (absence of NO or presence of NOS inhibitors)
O
Outcome
Induction and regulation of persistent Na(+) currentsurrogate

Nitric oxide acts directly on voltage-gated sodium channels or associated proteins to induce persistent sodium current, highlighting its potential role as an endogenous regulator of cellular excitability.

Abstract

Most voltage-gated Na(+) channels inactivate almost completely at depolarized membrane potentials, but in some cells a residual Na(+) current is seen that is resistant to inactivation. This persistent Na(+) current can have a profound impact on the electrical behavior of excitable cells, and the regulation of this property could have important biological consequences. However, the biological signaling mechanisms that regulate the persistence of Na(+) channels are not well understood. This study showed that in nerve terminals and ventricular myocytes nitric oxide (NO) reduced the inactivation of Na(+) current. This effect was independent of cGMP, was blocked by N-ethylmaleimide, and could be elicited in cell-free outside-out patches. Thus, a reactive nitrogen species acts directly on the channel or closely associated protein. Persistent Na(+) current could also be induced by endogenous NO generated enzymatically by NO synthase (NOS). Application of ionomycin to raise the intracellular Ca(2+) concentration in myocytes activated NOS. The NO produced in response to ionomycin was detected with an NO-sensitive fluorescent dye. Persistent Na(+) current was enhanced by the same treatment, and NOS inhibitors abolished both the elevation of NO and the induction of persistent Na(+) current. These experiments show that NO is a potential endogenous regulator of persistent Na(+) current under physiological and pathophysiological conditions.

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Cite This Study

Ahern et al. (2000) studied this question.

synapsesocial.com/papers/69fd1ae98e1e5e8b192704a4https://doi.org/10.1074/jbc.m003090200
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