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对抑制蛋白-1激活与自缔合的见解

Insights into the Activation and Self-Association of Arrestin-1.

作者信息

Salom David, Kiser Philip D, Palczewski Krzysztof

机构信息

Gavin Herbert Eye Institute - Center for Translational Vision Research, Department of Ophthalmology, University of California, Irvine, Irvine, California 92697, United States.

Department of Physiology and Biophysics, University of California, Irvine, Irvine, California 92697, United States.

出版信息

Biochemistry. 2025 Jan 21;64(2):364-376. doi: 10.1021/acs.biochem.4c00632. Epub 2024 Dec 20.

Abstract

Arrestins halt signal transduction by binding to the phosphorylated C-termini of activated G protein-coupled receptors. Arrestin-1, the first subtype discovered, binds to rhodopsin in rod cells. Mutations in , the gene encoding Arrestin-1, are linked to Oguchi disease, characterized by delayed dark adaptation. Since the discovery of Arrestin-1, substantial progress has been made in understanding the role of these regulatory proteins in phototransduction, including the characterization of visual phenotypes of animals and humans lacking this protein, discovery of splice variants, and documentation of its binding to inositol-polyphosphates. Arrestin-1 was one of the first structurally characterized proteins in the phototransduction cascade. However, there are knowledge gaps regarding the conformational intermediates leading to its binding to phosphorylated rhodopsin. Among various mammalian Arrestin-1 conformations captured via crystallography, the preactivated state is represented by the mutant R175E-Arrestin-1 and by a C-terminally truncated splice variant (p44). This report describes a novel purification method of Arrestin-1 from bovine retinas followed by limited proteolysis to obtain a protein resembling p44. We solved the crystal structure of this preactivated, shortened Arrestin-1 at a resolution of 1.40 Å. The structure reveals a more complete picture of the finger loop structure and of the role of the polar core in the activation of Arrestin-1. The structure of Arrestin-1 captures an intermediate form halfway between the inactive and fully activated conformations of Arrestin-1. Finally, we addressed the question of Arrestin-1 oligomerization by comparing the packing interfaces in different Arrestin-1 crystals and dimer models predicted by AlphaFold 3.

摘要

抑制蛋白通过与活化的G蛋白偶联受体的磷酸化C末端结合来终止信号转导。最早发现的亚型抑制蛋白-1,可与视杆细胞中的视紫红质结合。编码抑制蛋白-1的基因发生突变与小柳原田病相关,其特征为暗适应延迟。自抑制蛋白-1被发现以来,在理解这些调节蛋白在光转导中的作用方面取得了重大进展,包括对缺乏该蛋白的动物和人类视觉表型的表征、剪接变体的发现以及其与肌醇多磷酸盐结合的记录。抑制蛋白-1是光转导级联反应中最早进行结构表征的蛋白质之一。然而,关于导致其与磷酸化视紫红质结合的构象中间体仍存在知识空白。在通过晶体学捕获的各种哺乳动物抑制蛋白-1构象中,预激活状态由突变体R175E-抑制蛋白-1和C末端截短的剪接变体(p44)代表。本报告描述了一种从牛视网膜中纯化抑制蛋白-1的新方法,随后进行有限蛋白酶解以获得类似p44的蛋白质。我们以1.40 Å的分辨率解析了这种预激活、缩短的抑制蛋白-1的晶体结构。该结构揭示了指环结构的更完整图景以及极性核心在抑制蛋白-1激活中的作用。抑制蛋白-1的结构捕获了抑制蛋白-1非活性和完全激活构象之间的中间形式。最后,我们通过比较不同抑制蛋白-1晶体中的堆积界面和AlphaFold 3预测的二聚体模型,解决了抑制蛋白-1寡聚化的问题。

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Structure and self-association of Arrestin-1.抑制蛋白-1的结构与自我缔合
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