Smooth muscle membrane potential and tension in rat isolated small mesenteric arteries (inner diameter 100-200 microm) were measured simultaneously to investigate whether the intensity of smooth muscle stimulation and the endothelium influence responses to exogenous K+. Variable smooth muscle depolarization and contraction were stimulated by titration with 0.1-10 microM phenylephrine. Raising external K+ to 10.8 mM evoked correlated, sustained hyperpolarization and relaxation, both of which were inhibited as the smooth muscle depolarized and contracted to around -38 mV and 10 mN, respectively. At these higher levels of stimulation, raising the K+ concentration to 13.8 mM still hyperpolarized and relaxed the smooth muscle. Relaxation to endo...
The relation between smooth muscle membrane potential and contractile force was investigated in the ...
Aim: To investigate the involvement of Cl− channels in endothelium-derived hyperpolarizing factor (E...
The nature of NO- and COX-independent endothelial hyperpolarization (EDH) is not fully understood bu...
Activation of both small-conductance (SKCa) and intermediate-conductance (IKCa) Ca2+-activated K+ ch...
Activation of both small-conductance (SKCa) and intermediate-conductance (IKCa) Ca2+-activated K+ ch...
The present study examined the hypothesis that potassium ions act as an endothelium-derived hyperpol...
In intact mesenteric arteries, increasing [K +] o by 5 mM hyperpolarized both endothelial and smooth...
Aim: To investigate the involvement of Cl channels in endothelium-derived hyperpolarizing factor (ED...
1. In rat small mesenteric arteries contracted with phenylephrine, 1-ethyl-2-benzimidazolinone (1-EB...
Both ACh and levcromakalim evoke smooth muscle cell hyperpolarization and associated relaxation in r...
Aim: To investigate the involvement of Cl channels in endothelium-derived hyperpolarizing factor (ED...
1. Mechanisms underlying K +-induced hyperpolarizations in the presence and absence of phenylephrine...
Arterial hyperpolarization to acetylcholine (ACh) reflects coactivation of K(Ca)3.1 (IK(Ca)) channel...
Arterial hyperpolarization to acetylcholine (ACh) reflects coactivation of K(Ca)3.1 (IK(Ca)) channel...
Authentic nitric oxide (NO; 0.1 - 10 micromoles) caused transient, dose-dependent relaxation of phen...
The relation between smooth muscle membrane potential and contractile force was investigated in the ...
Aim: To investigate the involvement of Cl− channels in endothelium-derived hyperpolarizing factor (E...
The nature of NO- and COX-independent endothelial hyperpolarization (EDH) is not fully understood bu...
Activation of both small-conductance (SKCa) and intermediate-conductance (IKCa) Ca2+-activated K+ ch...
Activation of both small-conductance (SKCa) and intermediate-conductance (IKCa) Ca2+-activated K+ ch...
The present study examined the hypothesis that potassium ions act as an endothelium-derived hyperpol...
In intact mesenteric arteries, increasing [K +] o by 5 mM hyperpolarized both endothelial and smooth...
Aim: To investigate the involvement of Cl channels in endothelium-derived hyperpolarizing factor (ED...
1. In rat small mesenteric arteries contracted with phenylephrine, 1-ethyl-2-benzimidazolinone (1-EB...
Both ACh and levcromakalim evoke smooth muscle cell hyperpolarization and associated relaxation in r...
Aim: To investigate the involvement of Cl channels in endothelium-derived hyperpolarizing factor (ED...
1. Mechanisms underlying K +-induced hyperpolarizations in the presence and absence of phenylephrine...
Arterial hyperpolarization to acetylcholine (ACh) reflects coactivation of K(Ca)3.1 (IK(Ca)) channel...
Arterial hyperpolarization to acetylcholine (ACh) reflects coactivation of K(Ca)3.1 (IK(Ca)) channel...
Authentic nitric oxide (NO; 0.1 - 10 micromoles) caused transient, dose-dependent relaxation of phen...
The relation between smooth muscle membrane potential and contractile force was investigated in the ...
Aim: To investigate the involvement of Cl− channels in endothelium-derived hyperpolarizing factor (E...
The nature of NO- and COX-independent endothelial hyperpolarization (EDH) is not fully understood bu...