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滑序列使 26S 蛋白酶体在易位途径的多个点停滞。

Slippery sequences stall the 26S proteasome at multiple points along the translocation pathway.

机构信息

Department of Chemistry, Villanova University, Villanova, Pennsylvania, USA.

出版信息

Protein Sci. 2024 Jun;33(6):e5034. doi: 10.1002/pro.5034.

Abstract

In eukaryotes, the ubiquitin-proteasome system is responsible for intracellular protein degradation. Proteins tagged with ubiquitin are recognized by ubiquitin receptors on the 19S regulatory particle (RP) of the 26S proteasome, unfolded, routed through the translocation channel of the RP, and are then degraded in the 20S core particle (CP). Aromatic paddles on the pore-1 loops of the RP's Rpt subunits grip the substrate and pull folded domains into the channel, thereby unfolding them. The sequence that the aromatic paddles grip while unfolding a substrate is therefore expected to influence the extent of unfolding, and low complexity sequences have been shown to interfere with grip. However, the detailed spatial requirements for grip while unfolding proteins, particularly from the N-terminus, remain unknown. We determined how the location of glycine-rich tracts relative to a folded domain impairs unfolding. We find that, in contrast to a previous report, inserting glycine-rich sequences closer to the folded domain reduced unfolding ability more than positioning them further away. Locations that have the biggest effect on unfolding map onto the regions where the aromatic paddles are predicted to interact with the substrate. Effects on unfolding from locations up to 67 amino acids away from the folded domain suggest that there are additional interactions between the substrate and the proteasome beyond the aromatic paddles that facilitate translocation of the substrate. In sum, this study deepens understanding of the mechanical interactions within the substrate channel by mapping the spacing of interactions between the substrate and the proteasome during unfolding.

摘要

在真核生物中,泛素-蛋白酶体系统负责细胞内蛋白质的降解。带有泛素标签的蛋白质被 26S 蛋白酶体的 19S 调节颗粒 (RP) 上的泛素受体识别,解折叠,通过 RP 的转运通道进行路由,然后在 20S 核心颗粒 (CP) 中降解。RP 的 Rpt 亚基的孔 1 环上的芳香桨叶抓住底物并将折叠结构域拉入通道,从而使其展开。因此,芳香桨叶在展开底物时抓住的序列预计会影响展开的程度,并且已经证明低复杂度序列会干扰抓握。然而,在展开蛋白质时,特别是从 N 端,芳香桨叶在展开过程中的详细空间要求仍然未知。我们确定了甘氨酸丰富的序列相对于折叠结构域的位置如何影响展开。我们发现,与之前的报告相反,将富含甘氨酸的序列插入到折叠结构域更近的位置会降低展开能力,而不是将它们放置得更远。对展开影响最大的位置映射到芳香桨叶预测与底物相互作用的区域。来自折叠结构域最远 67 个氨基酸位置的展开影响表明,在底物和蛋白酶体之间存在额外的相互作用,这些相互作用有助于底物的转运。总之,这项研究通过绘制在展开过程中底物和蛋白酶体之间的相互作用的间隔,加深了对底物通道内机械相互作用的理解。

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本文引用的文献

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Trends Biochem Sci. 2022 Nov;47(11):950-964. doi: 10.1016/j.tibs.2022.06.006. Epub 2022 Jul 9.
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Determination of Proteasomal Unfolding Ability.测定蛋白酶体解折叠能力。
Methods Mol Biol. 2021;2365:217-244. doi: 10.1007/978-1-0716-1665-9_12.
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J Biol Chem. 2020 Nov 20;295(47):15892-15901. doi: 10.1074/jbc.RA120.015235. Epub 2020 Sep 10.

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