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兔近端小管中的多巴胺受体。

Dopamine receptors in the proximal tubule of the rabbit.

作者信息

Felder R A, Blecher M, Calcagno P L, Jose P A

出版信息

Am J Physiol. 1984 Sep;247(3 Pt 2):F499-505. doi: 10.1152/ajprenal.1984.247.3.F499.

Abstract

Our laboratory has characterized dopamine receptors in glomeruli and tubular homogenates. Since the heterogeneity of kidney homogenates limits the interpretation of these studies, the [3H]haloperidol binding site and adenylate cyclase sensitivity to dopamine were studied in the isolated proximal convoluted tubule and pars recta of the rabbit kidney. [3H]Haloperidol binding sites were saturable, stereoselective, and of high affinity. The apparent dissociation constant was 31.5 X 10(-9) M (+/- 8.5) and the maximum receptor density was 0.31 X 10(-15) M (+/- 0.08) per millimeter. In pars recta specific binding was 53% of total [3H]-haloperidol binding. Dopamine stimulated adenylate cyclase activity in a dose-related manner, which was inhibited by cis-flupenthixol but not by trans-flupenthixol or (-)-propranolol. Moreover, the stimulatory effect of the dopamine 1 (D1) agonist SKF 82526 on adenylate cyclase activity was blocked by the D1 antagonist SCH 23390. Dopamine receptors in the proximal convoluted tubule appear to be of the D1 subtype since they are linked to stimulation of adenylate cyclase. This is further substantiated by the stereoselectivity for (+)-sulpiride (a D1 antagonist), which had a greater affinity for the [3H]haloperidol binding site than (-)-sulpiride (a D2 antagonist).

摘要

我们实验室已对肾小球和肾小管匀浆中的多巴胺受体进行了特性分析。由于肾脏匀浆的异质性限制了这些研究的解释,因此在兔肾分离的近端曲管和直部中研究了[3H]氟哌啶醇结合位点以及腺苷酸环化酶对多巴胺的敏感性。[3H]氟哌啶醇结合位点具有饱和性、立体选择性且亲和力高。表观解离常数为31.5×10(-9)M(±8.5),最大受体密度为每毫米0.31×10(-15)M(±0.08)。在直部,特异性结合占[3H]氟哌啶醇总结合量的53%。多巴胺以剂量相关的方式刺激腺苷酸环化酶活性,顺式氟奋乃静可抑制该活性,但反式氟奋乃静或(-)-普萘洛尔则无此作用。此外,多巴胺1(D1)激动剂SKF 82526对腺苷酸环化酶活性的刺激作用被D1拮抗剂SCH 23390阻断。近端曲管中的多巴胺受体似乎属于D1亚型,因为它们与腺苷酸环化酶的刺激相关。这一点通过对(+)-舒必利(一种D1拮抗剂)的立体选择性得到进一步证实,(+)-舒必利对[3H]氟哌啶醇结合位点的亲和力比对(-)-舒必利(一种D2拮抗剂)更高。

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