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在乳腺癌中发现的Keap1突变会损害其抑制Nrf2活性的能力。

A mutation of Keap1 found in breast cancer impairs its ability to repress Nrf2 activity.

作者信息

Nioi Paul, Nguyen Truyen

机构信息

Schering-Plough Research Institute, 181 Passaic Avenue, Summit, NJ 07901, USA.

出版信息

Biochem Biophys Res Commun. 2007 Nov 3;362(4):816-21. doi: 10.1016/j.bbrc.2007.08.051. Epub 2007 Aug 27.

Abstract

Keap1 is the substrate recognition module of a Cullin 3-based E3 ubiquitin ligase. Its primary role is to catalyze the ubiquitylation of the Nrf2 transcription factor. Oxidative stress blocks the E3 ligase activity of Keap1 which stabilizes Nrf2 allowing it to drive the expression of certain antioxidant and drug metabolizing enzymes. A recent study identified a mutation in the Keap1 gene (Keap1C23Y) that is present in breast cancer. Using reporter gene assays we show that Keap1C23Y is impaired in its ability to repress Nrf2 dependent transcription. Unlike wild-type Keap1, we found that Keap1C23Y failed to stimulate the degradation of Nrf2. Co-immunopreciptation experiments showed that Keap1C23Y retains its ability to interact with Nrf2 and Cullin 3. In contrast, we found that Keap1C23Y could not efficiently promote the ubiquitylation of Nrf2, suggesting that its intrinsic biological activity might have been compromised. These results revealed an unexpected role for the N-terminal region of Keap1 in regulating its E3 ligase activity. Importantly, our findings suggest that a paradox exists whereby Nrf2 activity is beneficial in non-malignant cells but in cancer cells it may provide a selective advantage for clonal expansion.

摘要

Keap1是一种基于Cullin 3的E3泛素连接酶的底物识别模块。其主要作用是催化Nrf2转录因子的泛素化。氧化应激会阻断Keap1的E3连接酶活性,从而使Nrf2稳定,使其能够驱动某些抗氧化和药物代谢酶的表达。最近的一项研究在乳腺癌中发现了Keap1基因的一种突变(Keap1C23Y)。通过报告基因分析,我们发现Keap1C23Y抑制Nrf2依赖性转录的能力受损。与野生型Keap1不同,我们发现Keap1C23Y无法刺激Nrf2的降解。免疫共沉淀实验表明,Keap1C23Y保留了与Nrf2和Cullin 3相互作用的能力。相比之下,我们发现Keap1C23Y不能有效地促进Nrf2的泛素化,这表明其内在生物学活性可能已受损。这些结果揭示了Keap1 N端区域在调节其E3连接酶活性方面的意外作用。重要的是,我们的研究结果表明存在一种矛盾现象,即Nrf2活性在非恶性细胞中有益,但在癌细胞中它可能为克隆扩增提供选择性优势。

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