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咖啡因对单个兔耳动脉细胞中通过电压依赖性钙通道的内向钡电流的作用。

The action of caffeine on inward barium current through voltage-dependent calcium channels in single rabbit ear artery cells.

作者信息

Hughes A D, Hering S, Bolton T B

机构信息

Department of Pharmacology and Clinical Pharmacology, St. George's Hospital Medical School, London, UK.

出版信息

Pflugers Arch. 1990 Jun;416(4):462-6. doi: 10.1007/BF00370755.

Abstract

The effect of caffeine on inward current carried by barium ions through voltage-dependent calcium channels has been investigated in single rabbit ear artery cells using whole-cell voltage-clamp techniques. Caffeine (1-30 mM) caused a rapid and reversible concentration-dependent blockade of barium current and a related compound, 3-isobutyl-1-methylxanthine (IBMX), was a more potent inhibitor of barium current. Caffeine-induced inhibition of barium current showed no voltage- or use-dependence and caffeine did not alter the steady-state inactivation of barium current. The effect of caffeine was not blocked by extracellular or by intracellular ryanodine or inclusion of both 5 mM 1,2-bis(2-aminophenoxy)-ethane N,N,N',N',-tetraacetic acid (BAPTA) and 2 mM ethylene glycol-bis(beta-amino ethyl ether) N,N,N',N',-tetraacetic acid (EGTA) in the intracellular solution. Rolipram and M&B 22984, non-xanthine inhibitors of phosphodiesterase, did not diminish inward barium current. The data indicate that caffeine and IBMX block voltage-operated calcium channels and it is suggested that this is due to a direct interaction of methylxanthines with the calcium channel.

摘要

运用全细胞膜片钳技术,在单个兔耳动脉细胞中研究了咖啡因对钡离子通过电压依赖性钙通道所携带内向电流的影响。咖啡因(1 - 30 mM)可迅速且可逆地引起钡电流的浓度依赖性阻断,相关化合物3 - 异丁基 - 1 - 甲基黄嘌呤(IBMX)对钡电流的抑制作用更强。咖啡因诱导的钡电流抑制无电压依赖性或使用依赖性,且咖啡因不改变钡电流的稳态失活。细胞外或细胞内的ryanodine,以及细胞内溶液中加入5 mM 1,2 - 双(2 - 氨基苯氧基)乙烷 - N,N,N',N' - 四乙酸(BAPTA)和2 mM乙二醇 - 双(β - 氨基乙醚) - N,N,N',N' - 四乙酸(EGTA)均不能阻断咖啡因的作用。磷酸二酯酶的非黄嘌呤抑制剂咯利普兰和M&B 22984不会减小内向钡电流。数据表明,咖啡因和IBMX可阻断电压门控性钙通道,提示这是由于甲基黄嘌呤与钙通道的直接相互作用所致。

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