Taft W C, DeLorenzo R J
Proc Natl Acad Sci U S A. 1984 May;81(10):3118-22. doi: 10.1073/pnas.81.10.3118.
Benzodiazepines in micromolar concentrations significantly inhibit depolarization-sensitive Ca2+ uptake in intact nerve-terminal preparations. Benzodiazepine inhibition of Ca2+ uptake is concentration dependent and stereospecific. Micromolar-affinity benzodiazepine receptors have been identified and characterized in brain membrane and shown to be distinct from nanomolar-affinity benzodiazepine receptors. Evidence is presented that micromolar, and not nanomolar, benzodiazepine binding sites mediate benzodiazepine inhibition of Ca2+ uptake. Irreversible binding to micromolar benzodiazepine binding sites also irreversibly blocked depolarization-dependent Ca2+ uptake in synaptosomes, indicating that these compounds may represent a useful marker for identifying the molecular components of Ca2+ channels in brain. Characterization of benzodiazepine inhibition of Ca2+ uptake demonstrates that these drugs function as Ca2+ channel antagonists, because benzodiazepines effectively blocked voltage-sensitive Ca2+ uptake inhibited by Mn2+, Co2+, verapamil, nitrendipine, and nimodipine. These results indicate that micromolar benzodiazepine binding sites regulate voltage-sensitive Ca2+ channels in brain membrane and suggest that some of the neuronal stabilizing effects of micromolar benzodiazepine receptors may be mediated by the regulation of Ca2+ conductance.
微摩尔浓度的苯二氮䓬类药物能显著抑制完整神经末梢制剂中去极化敏感的Ca2+摄取。苯二氮䓬类药物对Ca2+摄取的抑制作用具有浓度依赖性和立体特异性。已在脑膜中鉴定并表征了微摩尔亲和力的苯二氮䓬受体,且显示其与纳摩尔亲和力的苯二氮䓬受体不同。有证据表明,介导苯二氮䓬类药物对Ca2+摄取抑制作用的是微摩尔而非纳摩尔的苯二氮䓬结合位点。与微摩尔苯二氮䓬结合位点的不可逆结合也不可逆地阻断了突触体中去极化依赖性Ca2+摄取,这表明这些化合物可能是鉴定脑中Ca2+通道分子成分的有用标记物。对苯二氮䓬类药物抑制Ca2+摄取的表征表明,这些药物起Ca2+通道拮抗剂的作用,因为苯二氮䓬类药物有效地阻断了由Mn2+、Co2+、维拉帕米、尼群地平和尼莫地平抑制的电压敏感性Ca2+摄取。这些结果表明,微摩尔苯二氮䓬结合位点调节脑膜中的电压敏感性Ca2+通道,并提示微摩尔苯二氮䓬受体的一些神经元稳定作用可能是由Ca2+电导的调节介导的。