• 제목/요약/키워드: Potassium channel opener

검색결과 25건 처리시간 0.025초

A Novel Pathway Underlying the Inhibitory Effects of Melatonin on Isolated Rat Urinary Bladder Contraction

  • Han, June-Hyun;Chang, In-Ho;Myung, Soon-Chul;Lee, Moo-Yeol;Kim, Won-Yong;Lee, Seo-Yeon;Lee, Shin-Young;Lee, Seung-Wook;Kim, Kyung-Do
    • The Korean Journal of Physiology and Pharmacology
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    • 제16권1호
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    • pp.37-42
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    • 2012
  • The aim of the present study was to elucidate the direct effects of melatonin on bladder activity and to determine the mechanisms responsible for the detrusor activity of melatonin in the isolated rat bladder. We evaluated the effects of melatonin on the contractions induced by phenylephrine (PE), acetylcholine (ACh), bethanechol (BCh), KCl, and electrical field stimulation (EFS) in 20 detrusor smooth muscle samples from Sprague-Dawley rats. To determine the mechanisms underlying the inhibitory responses to melatonin, melatonin-pretreated muscle strips were exposed to a calcium channel antagonist (verapamil), three potassium channel blockers [tetraethyl ammonium (TEA), 4-aminopyridine (4-AP), and glibenclamide], a direct voltage-dependent calcium channel opener (Bay K 8644), and a specific calcium/calmodulin-dependent kinase II (CaMKII) inhibitor (KN-93). Melatonin pretreatment ($10^{-8}{\sim}10^{-6}M$) decreased the contractile responses induced by PE ($10^{-9}{\sim}10^{-4}M$) and Ach ($10^{-9}{\sim}10^{-4}M$) in a dose-dependent manner. Melatonin ($10^{-7}M$) also blocked contraction induced by high KCl ($[KCl]_{ECF}$; 35 mM, 70 mM, 105 mM, and 140 mM) and EFS. Melatonin ($10^{-7}M$) potentiated the relaxation response of the strips by verapamil, but other potassium channel blockers did not change melatonin activity. Melatonin pretreatment significantly decreased contractile responses induced by Bay K 8644 ($10^{-11}{\sim}10^{-7}M$). KN-93 enhanced melatonin-induced relaxation. The present results suggest that melatonin can inhibit bladder smooth muscle contraction through a voltage-dependent, calcium-antagonistic mechanism and through the inhibition of the calmodulin/CaMKII system.

Pancreatic Polypeptide Family의 심혈관계 근육 수축성에 대한 약리학적 작용: I. 개의 뇌혈관에서 cyclic nucleotide활성제와 칼륨통로개방제와의 상호작용 (Effect of Pancreatic Polypeptide Family on Cardiovascular Muscle Contractility: 1. Interactions with cyclic nucleotide activators and $K^+$ channel openers in canine cerebral arteries)

  • 김원준;이광윤;하정희;권오철
    • 대한약리학회지
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    • 제28권2호
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    • pp.147-162
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    • 1992
  • Pancreatic polypeptide family펩타이드들의 뇌혈관 평활근 수축성에 미치는 효과를 관찰하고, cyclic nucleotide 활성제 및 칼륨통로개방제와의 상호작용을 관찰하기 위하여 다음과 같은 실험을 하였다. 체중 $20{\sim}30\;g$의 개를 사혈 희생시켜 두개골을 절개한 후 뇌저동맥과 중뇌동맥을 적출하였다. 적출된 동맥편은 $4^{\circ}C$의 생리적식염수 내에서 나선형 절편으로 만들어 0.3%의 CHAPS 용액에 침잠시킴으로써 내피세포층을 제거한 후 95% $O_2$와 5% $CO_2$의 혼합기체로 포화된 $37^{\circ}C$의 Krebs-Henseleit 용액을 포함한 적출근편실험조에서 등척성 장력을 측정하였다. 1. PP, PYY 및 NPY는 뇌동맥 나선형절편을 농도의존적으로 수축시켰으며, 그 효력과 효능은 PYY가 가장 강하였고, 그 다음이 NPY, 그리고 PP의 순이었다. 이들의 효력은 노르아드레날린보다 20내지 200배 강하였으며, 그 중 PYY는 5-HT 보다도 강한 효력을 보였다. 2. Cyclic AMP 활성제인 forskolin과 cyclic GMP 활성제인 sodium nitroprusside는 뇌동맥절편의 기본장력을 감소시켰으며, PP, PYY 및 NPY 유발수축 역시 농도의존적으로 억제하였다. 이 때 forskolin의 기본장력억제작용이 sodium nitroprusside보다 강한 효력을 나타내었다. 3. 칼륨통로 개방제인 RP 49356, P 1060 및 BRL 38227은 기본장력에 대해서는 공히 농도의존적으로 억제하였으나, PP, PYY 및 NPY 유발수축에 대해서는 P 1060만이 농도의존적으로 억제하였고, RP 49356 및 BRL 38227은 약간 억제하는 경향만을 보였는데, 특기할 것은 저농도의$(0.1\;{\mu}M)$ BRL 38227이 이들 펩타이드 유발수축을 오히려 증가 시켰다는 것이다. 4. 기본장력에 대해서, 칼륨통로개방제들은 forskolin의 이완작용에 유의한 영향을 미치지 못하였으나, 그중 P 1060과 BRL 38227은 sodium nitroprusside의 이완작용을 상승적으로 강화하였다. PYY$(0.1\;{\mu}M)$유발 수축작용에 대해서, 칼륨통로 개방제들은 forskolin의 수축억제작용에 대해서는 약간 길항하는 경향만을 보였고, sodium nitroprusside의 수축억제작용은 유의하게 길항하였다. 이상의 결과들을 종합하면, 개의 뇌혈관에서는 NPY 뿐만 아니라 PYY도 혈관수축기전에 중요한 역할을 한다고 볼 수 있으며, 그 수축작용의 기전에는 세포내 cAMP 및 cGMP 활성도의 변화가 포함된다고 사료된다. 또 칼륨통로개방제들은 pancreatic polypeptide family의 뇌혈관수축작용에 대하여 제제 및 농도에 따라 다양한 영향을 미치므로 이에 대한 향후의 더욱 세밀한 연구가 요구된다.

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개의 적출방광 평활근에서 Imipramine과 $K^+$ 통로 봉쇄제와의 상호작용 (Interaction of Imipramine and $K^+$ Channel Blockers on Detrusor Muscle Strips Isolated from Canine Urinary Bladder)

  • 허준영;최은미;최형철;하정희;이광윤;김원준
    • 대한약리학회지
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    • 제31권2호
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    • pp.195-206
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    • 1995
  • The study was undertaken to examine the possibility of the involvement of $K^+$ channels in the mechanism of relaxant-action of imipramine on the isolated canine detrusor muscle strips. Canine urinary bladder were isolated, and smooth muscle strips of 15 mm long and 2 mm wide from the mid-portion of anterior wall were made in the Tyrode solution of $0{\sim}4^{\circ}C$. The strips were prepared for isometric myography in Biancani's isolated muscle chamber containing 1 ml of Tyrode solution, which was maintained with pH 7.4 by aeration with $95%\;O_2/5%CO_2\;at\;37^{\circ}C$. RP 52891, a non-specific $K^+$ channel opener, concentration-dependently suppressed the spontaneous phasic contractions of the detrusor strips. Imipramine, a tricyclic antidepressant, also reduced the spontaneous contractions in a concentration-dependent manner. RP 52891 was more potent than imipramine(p<0.05), and Imipramine was more efficient than RP 52891(p<0.05).Procaine, a voltage-dependent $K^+$ channel blocker, glibenclamide, an ATP-dependent $K^+$ channel blocker, and apamin, a calcium-dependent $K^+$ channel blocker antagonized the relaxant effect of RP 52891, but not of imipramine. Imipramine reduced the electric field stimulation (EFS) -induced contractions concentration-dependently. None of the $K^+$ channel blockers employed for this study, procaine, glibenclamide or apamin antagonized the inhibitory action of imipramine on the EFS-induced contraction. These results suggest that in canine detrusor, the $K^+$ channels of the characteristics of voltage-dependent, ATP-dependent and/or calcium-dependent are exist, and the inhibitory action of imipramine on the contractility of the detrusor is independent from the $K^+$ channels.

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Influence of Nicorandil on Catecholamine Release in the Perfused Rat Adrenal Medulla

  • Koh, Young-Youp;Lee, Eun-Sook;No, Hae-Jeong;Woo, Seong-Chang;Chung, Joong-Wha;Seoh, Yoo-Seung;Lim, Dong-Yoon
    • The Korean Journal of Physiology and Pharmacology
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    • 제11권3호
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    • pp.97-106
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    • 2007
  • The present study was attempted to investigate the effect of nicorandil, which is an ATP-sensitive potassium ($K_{ATP}$) channel opener, on secretion of catecholamines (CA) evoked by cholinergic stimulation and membrane depolarization from the isolated perfused rat adrenal glands. The perfusion of nicorandil ($0.3{\sim}3.0mM$) into an adrenal vein for 90 min produced relatively dose-and time-dependent inhibition in CA secretion evoked by ACh (5.32 mM), high $k^+$ (a direct membrane depolarizer, 56 mM), DMPP (a selective neuronal nicotinic receptor agonist, $100{\mu}M$ for 2 min), McN-A-343 (a selective muscarinic $M_1$ receptor agonist, $100{\mu}M$ for 4 min), Bay-K-8644 (an activator of L-type dihydropyridine $Ca^{2+}$ channels, $10{\mu}M$ for 4 min) and cyclopiazonic acid (an activator of cytoplasmic $Ca^{2+}$-ATPase, $10{\mu}M$ for 4 min). In adrenal glands simultaneously preloaded with nicorandil (1.0 mM) and glibenclamide (a nonspecific $K_{ATP}$-channel blocker, 1.0 mM), the CA secretory responses evoked by ACh, high potassium, DMPP, McN-A-343, Bay-K-8644 and cyclopiazonic acid were recovered to the considerable extent of the control release in comparison with that of nicorandil-treatment only. Taken together, the present study demonstrates that nicorandil inhibits the adrenal CA secretion in response to stimulation of cholinergic (both nicotinic and muscarinic) receptors as well as by membrane depolarization from the isolated perfused rat adrenal glands. It seems that this inhibitory effect of nicorandil may be mediated by inhibiting both $Ca^{2+}$ influx and the $Ca^{2+}$ release from intracellular store through activation of $K_{ATP}$ channels in the rat adrenomedullary chromaffin cells. These results suggest that nicorandil-sensitive $K_{ATP}$ channels may play an inhibitory role in the regulation of the rat adrenomedullary CA secretion.

BMS-191095, a Cardioselective Mitochondrial $K_{ATP}$ Opener, Inhibits Human Platelet Aggregation by Opening Mitochondrial $K_{ATP}$ Channels

  • Cho Mi-Ra;Park Jung-Wook;Jung In-Sang;Yi Kyu-Yang;Yoo Sung-Eun;Chung Hun-Jong;Yun Yeo-Pyo;Kwon Suk-Hyung;Shin Hwa-Sup
    • Archives of Pharmacal Research
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    • 제28권1호
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    • pp.61-67
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    • 2005
  • We evaluated the antiplatelet effects of two classes of ATP-sensitive potassium channel openers $(K_{ATP}\;openers)$ on washed human platelets, and the study's emphasis was on the role of mitochondrial $K_{ATP}$ in platelet aggregation. Collagen-induced platelet aggregation was inhibited in a dose dependent manner by lemakalim and SKP-450, which are potent cardio-nonselective $K_{ATP}$ openers, and also by cardioselective BMS-180448 and BMS-191095 $(IC_{50}\;:\;1,130,\;>\;1,500,\;305.3\;and\;63.9\;{\mu}M,\;respectively)$, but a significantly greater potency was noted for the cardioselective $K_{ATP}$ openers. The latter two $K_{ATP}$ openers also inhibited platelet aggregation induced by thrombin, another important blood-borne platelet activator, with similar rank order of potency $(IC_{50}\;:\;498.0\;and\;104.8{\mu}M\; for\;BMS-180448\;and\;BMS-191095,\;respectively)$. The inhibitory effects of BMS-191095 on collagen-induced platelet aggregation were significantly blocked by a 30-min pretreatment of platelets with glyburide $(1{\mu}M)$ or sodium 5-hydroxyde­canoate$(5-HD,\;100{\mu}M)$, a nonselective and selective mitochondrial $K_{ATP}$ antagonist, respectively, at similar magnitudes; this indicates the role of mitochondrial $K_{ATP}$ in the antiplatelet activity of BMS-191095. However, glyburide and 5-HD had no effect when they were added to the platelet cuvette immediately prior to the addition of BMS-191095. These findings indicate that cardioselective mitochondrial $K_{ATP}$ openers like BMS-191095 are able to exert cardioprotective effects in cardiac ischemia/reperfusion injury via dual mechanisms directed at the inhibition of platelet aggregation and the protection of cardiomyocytes, and both these mechanisms are mediated by mitochondrial$K_{ATP}$.