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Linear ubiquitination prevents inflammation and regulates immune signalling

机译:线性泛素化可预防炎症并调节免疫信号

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摘要

Members of the tumour necrosis factor (TNF) receptor superfamily have important functions in immunity and inflammation. Recently linear ubiquitin chains assembled by a complex containing HOIL-1 and HOIP (also known as RBCK1 and RNF31, respectively) were implicated in TNF signalling, yet their relevance in vivo remained uncertain. Here we identify SHARPIN as a third component of the linear ubiquitin chain assembly complex, recruited to the CD40 and TNF receptor signalling complexes together with its other constituents, HOIL-1 and HOIP. Mass spectrometry of TNF signalling complexes revealed RIP1 (also known as RIPK1) and NEMO (also known as IKKγ or IKBKG) to be linearly ubiquitinated. Mutation of the Sharpin gene (Sharpin~(cpdm/codn) causes chronic proliferative dermatitis (cpdm) characterized by inflammatory skin lesions and defective lymphoid organogenesis. Gene induction by TNF, CD40 ligand and interleukin-lp was attenuated in cpdm-derived cells which were rendered sensitive to TNF-induced death. Importantly, Tnf gene deficiency prevented skin lesions in cpdm mice. We conclude that by enabling linear ubiquitination in the TNF receptor signalling complex, SHARPIN interferes with TNF-induced cell death and, thereby, prevents inflammation. Our results provide evidence for the relevance of linear ubiquitination in vivo in preventing inflammation and regulating immune signalling.
机译:肿瘤坏死因子(TNF)受体超家族的成员在免疫和炎症中具有重要功能。最近,由含有HOIL-1和HOIP的复合物(分别称为RBCK1和RNF31)组装的线性泛素链与TNF信号有关,但它们在体内的相关性仍不确定。在这里,我们将SHARPIN确定为线性泛素链装配复合体的第三部分,将其与其他成分HOIL-1和HOIP一起募集到CD40和TNF受体信号复合体中。 TNF信号复合物的质谱分析显示RIP1(也称为RIPK1)和NEMO(也称为IKKγ或IKBKG)被线性泛素化。 Sharpin基因(Sharpin〜(cpdm / codn))的突变会导致慢性增生性皮炎(cpdm),其特征是炎症性皮肤损伤和淋巴样器官发生缺陷。更重要的是,Tnf基因缺陷可以预防cpdm小鼠皮肤损伤,我们的结论是,通过在TNF受体信号复合物中实现线性泛素化,SHARPIN可以干扰TNF诱导的细胞死亡,从而预防炎症。结果为体内线性泛素化与预防炎症和调节免疫信号的相关性提供了证据。

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  • 来源
    《Nature》 |2011年第7340期|p.591-596|共6页
  • 作者单位

    Tumour Immunology Unit, Department of Medicine, Imperial College London, W12 ONN London, UK,Division of Apoptosis Regulation, German Cancer Research Center (DKFZ), 69120 Heidelberg,Germany;

    Tumour Immunology Unit, Department of Medicine, Imperial College London, W12 ONN London, UK;

    Tumour Immunology Unit, Department of Medicine, Imperial College London, W12 ONN London, UK;

    Tumour Immunology Unit, Department of Medicine, Imperial College London, W12 ONN London, UK,Division of Apoptosis Regulation, German Cancer Research Center (DKFZ), 69120 Heidelberg,Germany;

    Tumour Immunology Unit, Department of Medicine, Imperial College London, W12 ONN London, UK;

    Division of Apoptosis Regulation, German Cancer Research Center (DKFZ), 69120 Heidelberg,Germany,Department of Experimental Oncology, Mediterranean Institute of Oncology, 95029 Viagrande, Italy;

    Department of Biochemistry, Bio21 Melbourne University, Melbourne, VIC 3010, Australia;

    Department of Biochemistry, La Trobe University, Melbourne, VIC 3086, Australia;

    Department of Biochemistry, La Trobe University, Melbourne, VIC 3086, Australia;

    Department of Biochemistry, La Trobe University, Melbourne, VIC 3086, Australia;

    Department of Biochemistry, La Trobe University, Melbourne, VIC 3086, Australia;

    Department of Biochemistry, La Trobe University, Melbourne, VIC 3086, Australia;

    Protein Analysis Core Facility, German Cancer Research Center (DKFZ), 69120 Heidelberg, Germany;

    Department of Biochemistry, Bio21 Melbourne University, Melbourne, VIC 3010, Australia;

    Department of Biochemistry, La Trobe University, Melbourne, VIC 3086, Australia;

    Tumour Immunology Unit, Department of Medicine, Imperial College London, W12 ONN London, UK,Division of Apoptosis Regulation, German Cancer Research Center (DKFZ), 69120 Heidelberg,Germany;

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  • 正文语种 eng
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  • 入库时间 2022-08-18 02:54:33

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