Williams J T, North R A
Mol Pharmacol. 1984 Nov;26(3):489-97.
Intracellular recordings were made from neurones of the rat locus coeruleus (LC) which were located in a slice of pons superfused in vitro. Opioid agonists and antagonists were applied by adding them to the superfusing solution; normorphine and enkephalin analogues were also applied by ejecting a few nanoliters of a solution which contained the drugs from a pipette situated above the tissue slice. Opioid agonists hyperpolarized LC neurones. This has been shown previously to result from an increase in the membrane potassium conductance. The lowest concentration of normorphine which was effective was 30 nM, the EC50 was 1 microM, and the maximum effect was observed with 30 microM. The irreversible antagonist beta-funaltrexamine (beta-FNA) was used to estimate the dissociation equilibrium constants; these ranged from 9-16 microM for normorphine and [Met5]enkephalin and was about 2 microM for [D-Ala2,D-Leu5]enkephalin. beta-FNA also blocked the hyperpolarization caused by [D-Ala2,D-Leu5]enkephalin, ethylketacyclazocine, and [D-Ser2,D-Leu5] enkephalin-Thr. Naloxone reversibly antagonized the hyperpolarizations caused by normorphine and [D-Ala2,D-Leu5]enkephalin, with a dissociation equilibrium constant of 2 nM. It is suggested that the opioid hyperpolarization of LC neurones is mediated by a receptor having a high affinity for naloxone, previously termed a mu-receptor. The affinity of this receptor for normorphine appears to be 3 to 4 orders or magnitude lower than its affinity for naloxone.
在体外灌流的脑桥切片中,对大鼠蓝斑(LC)神经元进行细胞内记录。通过将阿片样物质激动剂和拮抗剂添加到灌流液中来给药;也通过从位于组织切片上方的移液管中喷出几纳升含有药物的溶液来应用去甲吗啡和脑啡肽类似物。阿片样物质激动剂使LC神经元超极化。先前已证明这是由膜钾电导增加所致。有效作用的去甲吗啡最低浓度为30 nM,半数有效浓度(EC50)为1 μM,在30 μM时观察到最大效应。使用不可逆拮抗剂β-氟纳曲胺(β-FNA)来估计解离平衡常数;去甲吗啡和[Met5]脑啡肽的解离平衡常数范围为9 - 16 μM,[D-Ala2,D-Leu5]脑啡肽的解离平衡常数约为2 μM。β-FNA也阻断了由[D-Ala2,D-Leu5]脑啡肽、乙基酮环唑新和[D-Ser2,D-Leu5]脑啡肽 - 苏氨酸引起的超极化。纳洛酮可逆性拮抗由去甲吗啡和[D-Ala2,D-Leu5]脑啡肽引起的超极化,解离平衡常数为2 nM。提示LC神经元的阿片样物质超极化是由对纳洛酮具有高亲和力的受体介导的,该受体先前被称为μ受体。该受体对去甲吗啡的亲和力似乎比对纳洛酮的亲和力低3至4个数量级。