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麦角生物碱对3H-氟硝西泮与小鼠脑γ-氨基丁酸A受体结合的影响。

Effect of ergot alkaloids on 3H-flunitrazepam binding to mouse brain GABAA receptors.

作者信息

Tvrdeić Ante, Pericić Danka

机构信息

Department of Pharmacology, School of Medicine, University of J.J. Strossmayer Osijek, Osijek, Croatia.

出版信息

Coll Antropol. 2003;27 Suppl 1:175-82.

Abstract

In vitro effects of dihydroergotoxine, dihydroergosine, dihydroergotamine, alpha-dihydroergocriptine (ergot alkaloids), diazepam, methyl-beta-Carboline-3-carboxilate (beta-CCM), flumazenil (benzodiazepines), gamma-amino butyric acid (GABA) and thiopental (barbiturate) were studied on mouse brain (cerebrum minus cerebral cortex) benzodiazepine binding sites labeled with 3H-flunitrazepam. Specific, high affinity (affinity constant, Kd = 57.7 8.6 nM) binding sites for 3H-flunitrazepam on mouse brain membranes were identified. All benzodiazepine drugs inhibited 3H-flunitrazepam binding with nanomolar potencies. In contrast to benzodiazepines, all ergot drugs, GABA and thiopental produced an enhancement of 3H-flunitrazepam binding to its binding site at the GABAA receptor of the mouse brain. The rank order of potency was: neurotransmitter (GABA) > dihydroergotoxine > thiopental > alpha-dihydroergocriptine > dihydroergosine > dihydroergotamine. The results suggest that dihydrogenated ergot derivatives do not bind to the brain benzodiazepine binding sites labeled with 3H-flunitrazepam. However, an enhancement of 3H-flunitrazepam binding by all ergot drugs tested, clearly identifies an allosteric interaction with the benzodiazepine binding sites of GABAA receptors.

摘要

研究了双氢麦角毒碱、双氢麦角异碱、双氢麦角胺、α-双氢麦角隐亭(麦角生物碱)、地西泮、甲基-β-咔啉-3-羧酸酯(β-CCM)、氟马西尼(苯二氮䓬类)、γ-氨基丁酸(GABA)和硫喷妥钠(巴比妥类)对用³H-氟硝西泮标记的小鼠脑(大脑减去大脑皮质)苯二氮䓬结合位点的体外作用。确定了³H-氟硝西泮在小鼠脑膜上具有特异性、高亲和力(亲和力常数,Kd = 57.7±8.6 nM)的结合位点。所有苯二氮䓬类药物均以纳摩尔效力抑制³H-氟硝西泮的结合。与苯二氮䓬类药物相反,所有麦角药物、GABA和硫喷妥钠均增强了³H-氟硝西泮与其在小鼠脑GABAA受体上结合位点的结合。效力顺序为:神经递质(GABA)>双氢麦角毒碱>硫喷妥钠>α-双氢麦角隐亭>双氢麦角异碱>双氢麦角胺。结果表明,双氢麦角衍生物不与用³H-氟硝西泮标记的脑苯二氮䓬结合位点结合。然而,所有受试麦角药物均增强³H-氟硝西泮的结合,这清楚地表明其与GABAA受体的苯二氮䓬结合位点存在变构相互作用。

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