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[细胞信号传导机制的分子药理学最新进展]

[Recent advances in molecular pharmacology of cellular signalling mechanism].

作者信息

Nomura Y

机构信息

Department of Pharmacology, Faculty of Pharmaceutical Sciences, Hokkaido University, Sapporo, Japan.

出版信息

Nihon Yakurigaku Zasshi. 1989 Jun;93(6):321-31. doi: 10.1254/fpj.93.321.

Abstract

Important findings on the molecular and regulatory properties of neurotransmitter receptors, GTP-proteins, ion channels and protein kinases were briefly reviewed. On the basis of recent advances in the theme mentioned above, we investigated the transmembrane signalling mechanism of serotonin (5-HT)-evoked inward current responses under the voltage clamp condition (holding at -60mV) in Xenopus oocytes injected with rat brain poly (A)+ mRNA, suggesting that 5-HT evokes a Cl- current via such a mechanism as follows: 1) activation of 5-HT1c subtype of receptors, 2) activation of pertussis toxin-sensitive Gi/G0, 3) phospholipase C activation, 4) inositol 1,4,5-trisphosphate (IP3) formation, 5) an increase of [Ca2+]i liberated by IP3, and 6) gating of Cl channels stimulated perhaps by Ca2+-calmodulin. On the other hand, protein kinase C (C-kinase) activation by diacylglycerol and Ca2+ seems to cause a feedback inhibition to the 5-HT responses by phosphorylation of certain proteins. Voltage-operated Ca channels of the N-type reconstituted in oocytes injected with brain mRNA seem to be modulated by C-kinase as well as by cAMP-dependent protein kinase. Significances of oocytes using as a model system to analyze the molecular mechanism of neuronal signalling in the brain were stressed and reviewed.

摘要

简要回顾了神经递质受体、GTP蛋白、离子通道和蛋白激酶的分子及调节特性方面的重要发现。基于上述主题的最新进展,我们在电压钳制条件下(钳制电压为-60mV),研究了注射大鼠脑多聚腺苷酸加尾信使核糖核酸(poly(A)+ mRNA)的非洲爪蟾卵母细胞中5-羟色胺(5-HT)诱发内向电流反应的跨膜信号传导机制,结果表明5-HT通过如下机制诱发氯离子电流:1)5-HT1c亚型受体的激活;2)百日咳毒素敏感的Gi/G0的激活;3)磷脂酶C的激活;4)肌醇1,4,5-三磷酸(IP3)的形成;5)由IP3释放的细胞内钙离子浓度([Ca2+]i)升高;6)可能由钙离子-钙调蛋白刺激的氯离子通道开启。另一方面,二酰基甘油和钙离子激活蛋白激酶C(C激酶)似乎通过某些蛋白质的磷酸化对5-HT反应产生反馈抑制。注射脑信使核糖核酸的卵母细胞中重组的N型电压门控性钙通道似乎受C激酶以及环磷酸腺苷(cAMP)依赖性蛋白激酶的调节。强调并回顾了将卵母细胞用作分析脑中神经元信号传导分子机制的模型系统的重要性。

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