WWP1 的 R436Q 错义突变会破坏其 E3 泛素连接酶活性的自我抑制,导致自我降解和功能丧失。

IF 1.5 4区 生物学 Q4 CELL BIOLOGY
Michihiro Imamura, Hirokazu Matsumoto, Hideyuki Mannen, Shin'ichi Takeda, Yoshitsugu Aoki
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引用次数: 0

摘要

NH-413鸡的肌肉萎缩症是由WWP1基因的错义突变引起的。WWP1是一种HECT型E3泛素连接酶,含有四个串联的WW结构域,可与靶蛋白的富脯氨酸肽基相互作用,连接第二和第三WW结构域的一个短区域对E3连接酶维持自抑制状态至关重要。WW2-WW3 连接器中的精氨酸突变为谷氨酰胺被认为会影响 WWP1 的功能,但迄今为止有关该突变的信息很少。在这项研究中,我们产生了一种表达带有 R436Q 突变的 WWP1 转基因的转基因(Tg)小鼠模型,该突变与在 NH-413 鸡体内发现的错义突变相对应。Tg小鼠的各种组织,尤其是横纹肌中的突变WWP1蛋白出现了明显的降解。使用 WWP1 特异性抗体进行的免疫沉淀分析表明,突变体 WWP1 蛋白缺乏 C 端催化半胱氨酸残基,而该残基是它们在降解过程中与 E2-底物复合物结合所必需的。使用缺乏该催化半胱氨酸残基的 WWP1 R436Q 突变体进行的体外分析表明,该蛋白没有发生自动降解,这表明该蛋白的功能缺失降解是由自身泛素化引起的。表达 R436Q WWP1 的 Tg 小鼠没有表现出生长迟缓或过早死亡。此外,组织学分析也没有发现任何明显的变化。这些观察结果表明,R436Q 突变体 WWP1 蛋白因其错义突变而解除了自身抑制模式,在其自我降解和丧失酶功能之前,并没有对底物异常激活酶功能。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
The R436Q missense mutation in WWP1 disrupts autoinhibition of its E3 ubiquitin ligase activity, leading to self-degradation and loss of function.

Muscular dystrophy in the NH-413 chicken is caused by a missense mutation in the WWP1 gene. WWP1 is a HECT-type E3 ubiquitin ligase containing four tandem WW domains that interact with proline-rich peptide motifs of target proteins, and a short region connecting the second and third WW domains is crucial for the E3 ligase to maintain an autoinhibitory state. A mutation of the arginine in the WW2-WW3 linker to glutamine is thought to affect WWP1 function, but there is little information on this mutation to date. In this study, we generated a transgenic (Tg) mouse model expressing the WWP1 transgene with the R436Q mutation, which corresponds to the missense mutation found in the NH-413 chicken. Tg mice showed marked degradation of mutant WWP1 proteins in various tissues, particularly in striated muscle. Immunoprecipitation analysis using a WWP1-specific antibody demonstrated that the mutant WWP1 proteins lacked the C-terminal catalytic cysteine residue that is required for their binding to the E2-substrate complex during their degradation. In vitro analysis using the R436Q mutant of WWP1 lacking this catalytic cysteine residue showed no autodegradation, indicating that the loss-of-function degradation of this protein is caused by self-ubiquitination. Tg mice expressing R436Q WWP1 did not show stunted growth or premature death. Furthermore, histological analysis did not reveal any obvious changes. These observations suggested that the R436Q mutant WWP1 protein, which is released from autoinhibitory mode by its missense mutation, does not have abnormally activated enzyme function to substrates before its self-degradation and loss of enzyme function.

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来源期刊
CiteScore
3.70
自引率
4.80%
发文量
96
审稿时长
3 months
期刊介绍: In Vitro Cellular & Developmental Biology - Animal is a journal of the Society for In Vitro Biology (SIVB). Original manuscripts reporting results of research in cellular, molecular, and developmental biology that employ or are relevant to organs, tissue, tumors, and cells in vitro will be considered for publication. Topics covered include: Biotechnology; Cell and Tissue Models; Cell Growth/Differentiation/Apoptosis; Cellular Pathology/Virology; Cytokines/Growth Factors/Adhesion Factors; Establishment of Cell Lines; Signal Transduction; Stem Cells; Toxicology/Chemical Carcinogenesis; Product Applications.
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