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    刘宇博

    • 教授     博士生导师   硕士生导师
    • 性别:男
    • 毕业院校:大连理工大学
    • 学位:博士
    • 所在单位:化工海洋与生命学院
    • 学科:生物化学与分子生物学. 生物化工. 化学生物学
    • 办公地点:大连理工大学 盘锦校区 生命与医药学院 F03-314
    • 联系方式:liuyubo@dlut.edu.cn
    • 电子邮箱:liuyubo@dlut.edu.cn

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    Caveolin-1 upregulates Fut8 expression by activating the Wnt/beta-catenin pathway to enhance HCC cell proliferative and invasive ability

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    论文类型:期刊论文

    发表时间:2021-01-10

    发表刊物:CELL BIOLOGY INTERNATIONAL

    卷号:44

    期号:11

    页面范围:2202-2212

    ISSN号:1065-6995

    关键字:caveolin-1; core fucosylation; Fut8; hepatocellular carcinoma; signal transduction

    摘要:Caveolin-1 (Cav-1), a critical structural protein of caveolae, plays an oncogenic role by participating in abnormal protein glycosylation in hepatocellular carcinoma (HCC). However, the mechanism by which Cav-1 regulates glycosylation and glycosyltransferase expression has yet to be fully defined. Here, we show that Cav-1 promotes the expression of alpha-1,6-fucosyltransferase (Fut8), which catalyzes the transfer of GDP-fucose to the core structure of the N-sugar chain. In this study, we show that the mouse HCC cell line, Hepa1-6, which has low Fut8 transcriptional and protein levels, also lacks Cav-1 expression, whereas the mouse HCC cell line, Hca-F, has strong Fut8 expression and high transcriptional and protein levels of Cav-1. Subsequently, Cav-1 overexpression in Hepa1-6 was found to activate Wnt/beta-catenin signaling, which leads to downstream binding of the T cell factor/lymphoid enhancer factor to theFut8promoter region for activation of its transcription. In contrast, knockdown of Cav-1 expression in Hca-F caused the Wnt/beta-catenin pathway to be significantly inhibited, which attenuates the expression of Fut8. We further show that Cav-1-induced upregulation of Fut8 expression enhanced proliferation and invasion by mouse HCC cells in vitro. Our current findings provide molecular evidence that Cav-1 plays an important role in regulating glycosyltransferase expression and may participate in abnormal glycosylation, which mediates the proliferation and invasion of HCC.