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Opioid receptors from a lower vertebrate (Catostomus commersoni): sequence, pharmacology, coupling to a G-protein-gated inward-rectifying potassium channel (GIRK1), and evolution.一种低等脊椎动物(科氏吸口鲤)的阿片受体:序列、药理学、与G蛋白门控内向整流钾通道(GIRK1)的偶联及进化
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Effects of clozapine on the delta- and kappa-opioid receptors and the G-protein-activated K+ (GIRK) channel expressed in Xenopus oocytes.氯氮平对非洲爪蟾卵母细胞中δ-阿片受体、κ-阿片受体及G蛋白激活的钾离子(GIRK)通道的影响。
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Interaction of p-fluorofentanyl on cloned human opioid receptors and exploration of the role of Trp-318 and His-319 in mu-opioid receptor selectivity.对氟芬太尼与克隆的人阿片受体的相互作用以及色氨酸-318和组氨酸-319在μ-阿片受体选择性中的作用探索。
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Endocytosis of the rat somatostatin receptors: subtype discrimination, ligand specificity, and delineation of carboxy-terminal positive and negative sequence motifs.大鼠生长抑素受体的内吞作用:亚型鉴别、配体特异性以及羧基末端正负序列基序的描绘。
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Loss of morphine-induced analgesia, reward effect and withdrawal symptoms in mice lacking the mu-opioid-receptor gene.缺乏μ阿片受体基因的小鼠中吗啡诱导的镇痛、奖赏效应及戒断症状丧失。
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How does morphine work?吗啡是如何起作用的?
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Opioid peptides in the nervous system of Aplysia: a combined biochemical, immunocytochemical, and electrophysiological study.海兔神经系统中的阿片肽:一项结合生化、免疫细胞化学和电生理学的研究。
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cDNA cloning and pharmacological characterization of an opioid receptor with high affinities for kappa-subtype-selective ligands.对κ亚型选择性配体具有高亲和力的阿片受体的cDNA克隆及药理学特性研究
FEBS Lett. 1993 Sep 6;330(1):77-80. doi: 10.1016/0014-5793(93)80923-i.
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Primary structures and expression from cDNAs of rat opioid receptor delta- and mu-subtypes.大鼠阿片受体δ和μ亚型的初级结构及cDNA表达
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Cloning and functional comparison of kappa and delta opioid receptors from mouse brain.小鼠脑内κ和δ阿片受体的克隆及功能比较
Proc Natl Acad Sci U S A. 1993 Jul 15;90(14):6736-40. doi: 10.1073/pnas.90.14.6736.
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Molecular cloning and functional expression of a mu-opioid receptor from rat brain.大鼠脑μ-阿片受体的分子克隆与功能表达
Mol Pharmacol. 1993 Jul;44(1):8-12.
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Cloning and pharmacological characterization of a rat mu opioid receptor.大鼠μ阿片受体的克隆与药理学特性研究
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一种低等脊椎动物(科氏吸口鲤)的阿片受体:序列、药理学、与G蛋白门控内向整流钾通道(GIRK1)的偶联及进化

Opioid receptors from a lower vertebrate (Catostomus commersoni): sequence, pharmacology, coupling to a G-protein-gated inward-rectifying potassium channel (GIRK1), and evolution.

作者信息

Darlison M G, Greten F R, Harvey R J, Kreienkamp H J, Stühmer T, Zwiers H, Lederis K, Richter D

机构信息

Institut für Zellbiochemie und klinische Neurobiologie, Universität Hamburg, Martinistrasse 52, D-20246 Hamburg, Germany.

出版信息

Proc Natl Acad Sci U S A. 1997 Jul 22;94(15):8214-9. doi: 10.1073/pnas.94.15.8214.

DOI:10.1073/pnas.94.15.8214
PMID:9223341
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC21583/
Abstract

The molecular evolution of the opioid receptor family has been studied by isolating cDNAs that encode six distinct opioid receptor-like proteins from a lower vertebrate, the teleost fish Catostomus commersoni. One of these, which has been obtained in full-length form, encodes a 383-amino acid protein that exhibits greatest sequence similarity to mammalian mu-opioid receptors; the corresponding gene is expressed predominantly in brain and pituitary. Transfection of the teleost cDNA into HEK 293 cells resulted in the appearance of a receptor having high affinity for the mu-selective agonist [D-Ala2, MePhe4-Gly-ol5]enkephalin (DAMGO) (Kd = 0.63 +/- 0.15 nM) and for the nonselective antagonist naloxone (Kd = 3.1 +/- 1.3 nM). The receptor had negligible affinity for U50488 and [D-Pen2, D-Pen5]enkephalin (DPDPE), which are kappa- and delta-opioid receptor selective agonists, respectively. Stimulation of transfected cells with 1 microM DAMGO lowered forskolin-induced cAMP levels, an effect that could be reversed by naloxone. Experiments in Xenopus oocytes have demonstrated that the fish opioid receptor can, in an agonist-dependent fashion, activate a coexpressed mouse G-protein-gated inward-rectifying potassium channel (GIRK1). The identification of six distinct fish opioid receptor-like proteins suggests that additional mammalian opioid receptors remain to be identified at the molecular level. Furthermore, our data indicate that the mu-opioid receptor arose very early in evolution, perhaps before the appearance of vertebrates, and that the pharmacological and functional properties of this receptor have been conserved over a period of approximately 400 million years implying that it fulfills an important physiological role.

摘要

通过从一种低等脊椎动物——硬骨鱼科的康氏美洲 sucker鱼中分离出编码六种不同阿片受体样蛋白的cDNA,对阿片受体家族的分子进化进行了研究。其中一种已获得全长形式,编码一种383个氨基酸的蛋白质,该蛋白质与哺乳动物的μ阿片受体具有最大的序列相似性;相应的基因主要在脑和垂体中表达。将硬骨鱼cDNA转染到HEK 293细胞中,导致出现一种对μ选择性激动剂[D-Ala2,MePhe4-Gly-ol5]脑啡肽(DAMGO)(Kd = 0.63 +/- 0.15 nM)和非选择性拮抗剂纳洛酮(Kd = 3.1 +/- 1.3 nM)具有高亲和力的受体。该受体对分别为κ和δ阿片受体选择性激动剂的U50488和[D-Pen2,D-Pen5]脑啡肽(DPDPE)的亲和力可忽略不计。用1 microM DAMGO刺激转染细胞可降低福司可林诱导的cAMP水平,这一效应可被纳洛酮逆转。非洲爪蟾卵母细胞实验表明,鱼类阿片受体可以以激动剂依赖的方式激活共表达的小鼠G蛋白门控内向整流钾通道(GIRK1)。六种不同的鱼类阿片受体样蛋白的鉴定表明,在分子水平上仍有待鉴定更多的哺乳动物阿片受体。此外,我们的数据表明,μ阿片受体在进化过程中很早就出现了,可能在脊椎动物出现之前,并且该受体的药理学和功能特性在大约4亿年的时间里一直保守,这意味着它发挥着重要的生理作用。