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ADAM17 胞质结构域调节硫氧还蛋白-1 的构象和活性。

ADAM17 cytoplasmic domain modulates Thioredoxin-1 conformation and activity.

机构信息

Laboratório Nacional de Biociências, LNBio, CNPEM, Campinas, São Paulo, Brazil.

Department of Cell Biology, Harvard Medical School, Boston, USA.

出版信息

Redox Biol. 2020 Oct;37:101735. doi: 10.1016/j.redox.2020.101735. Epub 2020 Sep 24.

DOI:10.1016/j.redox.2020.101735
PMID:33011677
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC7513893/
Abstract

The activity of Thioredoxin-1 (Trx-1) is adjusted by the balance of its monomeric, active and its dimeric, inactive state. The regulation of this balance is not completely understood. We have previously shown that the cytoplasmic domain of the transmembrane protein A Disintegrin And Metalloprotease 17 (ADAM17cyto) binds to Thioredoxin-1 (Trx-1) and the destabilization of this interaction favors the dimeric state of Trx-1. Here, we investigate whether ADAM17 plays a role in the conformation and activation of Trx-1. We found that disrupting the interacting interface with Trx-1 by a site-directed mutagenesis in ADAM17 (ADAM17cyto) caused a decrease of Trx-1 reductive capacity and activity. Moreover, we observed that ADAM17 overexpressing cells favor the monomeric state of Trx-1 while knockdown cells do not. As a result, there is a decrease of cell oxidant levels and ADAM17 sheddase activity and an increase in the reduced cysteine-containing peptides in intracellular proteins in ADAM17cyto overexpressing cells. A mechanistic explanation that ADAM17cyto favors the monomeric, active state of Trx-1 is the formation of a disulfide bond between Cys at the C-terminal of ADAM17cyto with the Cys of Trx-1, which is involved in the dimerization site of Trx-1. In summary, we propose that ADAM17 is able to modulate Trx-1 conformation affecting its activity and intracellular redox state, bringing up a novel possibility for positive regulation of thiol isomerase activity in the cell by mammalian metalloproteinases.

摘要

硫氧还蛋白-1(Trx-1)的活性通过其单体、活性形式和二聚体、非活性形式之间的平衡来调节。这种平衡的调节机制尚不完全清楚。我们之前已经表明,跨膜蛋白 A 型解整合素金属蛋白酶 17(ADAM17cyto)的细胞质结构域与硫氧还蛋白-1(Trx-1)结合,并且这种相互作用的不稳定性有利于 Trx-1 的二聚体状态。在这里,我们研究了 ADAM17 是否在 Trx-1 的构象和激活中发挥作用。我们发现,通过 ADAM17 中的定点突变破坏与 Trx-1 的相互作用界面(ADAM17cyto)导致 Trx-1 的还原能力和活性降低。此外,我们观察到 ADAM17 过表达细胞有利于 Trx-1 的单体状态,而敲低细胞则不然。结果是细胞氧化剂水平和 ADAM17 剪切酶活性降低,细胞内蛋白质中含还原半胱氨酸的肽增加。ADAM17cyto 过表达细胞中 Trx-1 更倾向于单体、活性状态的机制解释是 ADAM17cyto 的 C 末端半胱氨酸与 Trx-1 的半胱氨酸之间形成二硫键,这涉及 Trx-1 的二聚化位点。总之,我们提出 ADAM17 能够调节 Trx-1 的构象,影响其活性和细胞内氧化还原状态,为哺乳动物金属蛋白酶对硫醇异构酶活性的正向调节提供了一种新的可能性。

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Redox Biol. 2020 Jul;34:101553. doi: 10.1016/j.redox.2020.101553. Epub 2020 May 3.
4
The pathogenesis and treatment of the `Cytokine Storm' in COVID-19.新型冠状病毒病中“细胞因子风暴”的发病机制与治疗。
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