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肿瘤坏死因子在炎症条件下介导 USE1 非依赖性 FAT10 化。

Tumor necrosis factor mediates USE1-independent FAT10ylation under inflammatory conditions.

机构信息

Biotechnology Institute Thurgau at the University of Konstanz, Kreuzlingen, Switzerland.

https://ror.org/0546hnb39 Division of Immunology, Department of Biology, University of Konstanz, Konstanz, Germany.

出版信息

Life Sci Alliance. 2023 Aug 21;6(11). doi: 10.26508/lsa.202301985. Print 2023 Nov.

Abstract

The ubiquitin-like modifier FAT10 is up-regulated in many different cell types by IFNγ and TNFα (TNF) and directly targets proteins for proteasomal degradation. FAT10 gets covalently conjugated to its conjugation substrates by the E1 activating enzyme UBA6, the E2 conjugating enzyme USE1, and E3 ligases including Parkin. To date, USE1 was supposed to be the only E2 enzyme for FAT10ylation, and we show here that a knockout of USE1 strongly diminished FAT10 conjugation. Remarkably, under inflammatory conditions in the presence of TNF, FAT10 conjugation appears to be independent of USE1. We report on the identification of additional E2 conjugating enzymes, which were previously not associated with FAT10. We confirm their capacity to be charged with FAT10 onto their active site cysteine, and to rescue FAT10 conjugation in the absence of USE1. This finding strongly widens the field of FAT10 research by pointing to multiple, so far unknown pathways for the conjugation of FAT10, disclosing novel possibilities for pharmacological interventions to regulate FAT10 conjugation under inflammatory conditions and/or viral infections.

摘要

泛素样修饰物 FAT10 在许多不同的细胞类型中通过 IFNγ 和 TNFα(TNF)而上调,并直接将靶蛋白靶向蛋白酶体降解。FAT10 通过 E1 激活酶 UBA6、E2 连接酶 USE1 和包括 Parkin 在内的 E3 连接酶将其共价连接到其缀合底物上。迄今为止,USE1 被认为是 FAT10 缀合的唯一 E2 酶,我们在这里表明,USE1 的敲除强烈减弱了 FAT10 的缀合。值得注意的是,在存在 TNF 的炎症条件下,FAT10 缀合似乎独立于 USE1。我们报告了先前与 FAT10 无关的其他 E2 连接酶的鉴定。我们证实它们能够将 FAT10 加载到其活性位点半胱氨酸上,并在缺乏 USE1 的情况下挽救 FAT10 的缀合。这一发现通过指出 FAT10 缀合的多个迄今为止未知的途径,极大地拓宽了 FAT10 研究领域,为在炎症条件和/或病毒感染下调节 FAT10 缀合提供了新的药理学干预可能性。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/6e6a/10442930/d524f4b618d7/LSA-2023-01985_Fig1.jpg

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