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β-抑制蛋白在β2-肾上腺素能受体的内吞作用中作为网格蛋白衔接蛋白发挥作用。

Beta-arrestin acts as a clathrin adaptor in endocytosis of the beta2-adrenergic receptor.

作者信息

Goodman O B, Krupnick J G, Santini F, Gurevich V V, Penn R B, Gagnon A W, Keen J H, Benovic J L

机构信息

Department of Biochemistry and Molecular Pharmacology, Kimmel Cancer Institute, Thomas Jefferson University, Philadelphia, Pennsylvania 19107, USA.

出版信息

Nature. 1996 Oct 3;383(6599):447-50. doi: 10.1038/383447a0.

Abstract

The ability of a system to regulate its responsiveness in the presence of a continuous stimulus, often termed desensitization, has been extensively characterized for the beta2-adrenergic receptor (beta2AR). beta2AR signalling is rapidly attenuated through receptor phosphorylation and subsequent binding of the protein beta-arrestin. Ultimately the receptor undergoes internalization, and although the molecular mechanism is unclear, receptor phosphorylation and beta-arrestin binding have been implicated in this processs. Here we report that beta-arrestin and arrestin-3, but not visual arrestin, promote beta2AR internalization and bind with high affinity directly and stoichiometrically to clathrin, the major structural protein of coated pits. Moreover, beta-arrestin/arrestin chimaeras that are defective in either beta2AR or clathrin binding show a reduced ability to promote beta2AR endocytosis. Immunofluorescence microscopy of intact cells indicates an agonist-dependent colocalization of the beta2AR and beta-arrestin with clathrin. These results show that beta-arrestin functions as an adaptor in the receptor-mediated endocytosis pathway, and suggest a general mechanism for regulating the trafficking of G-protein-coupled receptors.

摘要

一个系统在持续刺激存在时调节其反应性的能力,通常称为脱敏,已针对β2肾上腺素能受体(β2AR)进行了广泛研究。β2AR信号传导通过受体磷酸化以及随后蛋白质β抑制蛋白的结合而迅速减弱。最终,受体会发生内化,尽管分子机制尚不清楚,但受体磷酸化和β抑制蛋白结合已被认为与该过程有关。在此我们报告,β抑制蛋白和抑制蛋白3,而非视紫红质抑制蛋白,可促进β2AR内化,并以高亲和力直接且化学计量地与网格蛋白结合,网格蛋白是被膜小窝的主要结构蛋白。此外,在β2AR或网格蛋白结合方面存在缺陷的β抑制蛋白/抑制蛋白嵌合体促进β2AR内吞作用的能力降低。完整细胞的免疫荧光显微镜检查表明,β2AR和β抑制蛋白与网格蛋白存在激动剂依赖性共定位。这些结果表明,β抑制蛋白在受体介导的内吞途径中起衔接蛋白的作用,并提示了一种调节G蛋白偶联受体转运的通用机制。

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