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April 15, 1996The Journal of Physiology332 citationsOpen Access

Extracellular K(+)‐induced hyperpolarizations and dilatations of rat coronary and cerebral arteries involve inward rectifier K(+) channels.

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HKH J KnotPZPaul ZimmermannMNMark T. Nelson

Structured PICO

Does elevated extracellular K+ induce vasodilatation in rat coronary and cerebral arteries via inward rectifier K+ channels?

P
Population
Pressurized small coronary and cerebral arteries (100-200 microm diameter) from rats
I
Intervention
Elevation of extracellular K+ ([K+]o) from 6 to 16 mM, with or without extracellular Ba2+ or other K+ channel blockers
C
Comparator
Baseline [K+]o (6 mM) or absence of blockers
O
Outcome
Membrane potential hyperpolarization and arterial dilatationsurrogate

Elevated extracellular potassium dilates small rat coronary and cerebral arteries through the activation of inward rectifier potassium channels, suggesting a role in metabolic regulation of blood flow.

Abstract

The hypothesis that inward rectifier K(+) channels are involved in the vasodilatation of small coronary and cerebral arteries (100-200 microm diameter) in response to elevated K+o was tested. The diameters and membrane potentials of pressurized arteries from rat were measured using a video-imaging system and conventional microelectrodes, respectively. 2. Elevation of K+o from 6 to 16 mM caused the membrane potential of pressurized (60 mmHg) arteries to hyperpolarize by 12-14 mV. Extracellular Ba(2+) (Ba2+(o)) blocked K(+)-induced membrane potential hyperpolarizations at concentrations (IC(50), 6 microM) that block inward rectifier K(+) currents in smooth muscle cells isolated from these arteries. 3. Elevation of K+o from 6 to 16 mM caused sustained dilatations of pressurized coronary and cerebral arteries with diameters increasing from 125 to 192 microm and 110 to 180 microm in coronary and cerebral arteries, respectively. Ba2+(o) blocked K(+)-induced dilatations of pressurized coronary and cerebral arteries (IC50, 3-8 microM). 4. Elevated K+o-induced vasodilatation was not prevented by blockers of other types of K(+) channels (1 mM 4-aminopyridine, 1 mM TEA+, and 10 mu M glibenclamide), and blockers of Na(+)-K(+)-ATPase. Elevated K+o-induced vasodilatation was unaffected by removal of the endothelium. 5. These findings suggest that K+(o) dilates small rat coronary and cerebral arteries through activation of inward rectifier K(+) channels. Furthermore, these results support the hypothesis that inward rectifier K(+) channels may be involved in metabolic regulation of coronary and cerebral blood flow in response to changes in K+o.

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Cite This Study

Knot et al. (1996) studied this question.

synapsesocial.com/papers/6a2304eec650520b07cb27efhttps://doi.org/10.1113/jphysiol.1996.sp021318
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Also Consider

Synapse has enriched 5 closely related papers on similar clinical questions. Consider them for comparative context:

  1. 1Sympathetic stimulation and norepinephrine infusion modulate extracellular potassium concentration during acute myocardial ischemia.1992 · 10 citations
  2. 2Conductance properties of single inwardly rectifying potassium channels in ventricular cells from guinea‐pig heart.1984 · 551 citations
  3. 3Dihydropyridine inhibition of single calcium channels and contraction in rabbit mesenteric artery depends on voltage.1989 · 88 citations
  4. 4Inward rectifier K+ currents in smooth muscle cells from rat resistance-sized cerebral arteries1993 · 258 citations
  5. 5Potassium channel block by cytoplasmic polyamines as the mechanism of intrinsic rectification1994 · 858 citations