LINC00665 靶点 let-7i/HMGA1 促进肝癌细胞的增殖和侵袭

IF 1.5 4区 医学 Q4 BIOTECHNOLOGY & APPLIED MICROBIOLOGY Mutation Research-Fundamental and Molecular Mechanisms of Mutagenesis Pub Date : 2024-01-01 DOI:10.1016/j.mrfmmm.2024.111852
Bo-chao Zhang , Si-yuan Ma , Ping Zhu , Liang-yu Zhu , Xiao-xiao Zhao , Chun Pu
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引用次数: 0

摘要

目的:我们的研究小组先前通过数据库分析发现,LINC00665在肝细胞癌(HCC)组织中上调;然而,LINC00665在HCC进展中的潜在分子机制仍需进一步研究。方法:采用qRTPCR测定LINC00665和let-7i在HCC细胞中的差异表达。进行双荧光素酶报告实验分析 LINC00665 和 let-7i 的相互作用。结果与正常肝细胞相比,LINC00665在HCC细胞中上调。双荧光素酶报告实验证实了 LINC00665 和 let-7i 之间的潜在结合位点。结论LINC00665通过let-7i/HMGA1信号轴促进HCC细胞的增殖和侵袭。
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LINC00665 target let-7i/HMGA1 promotes the proliferation and invasion of hepatoma cells

Objectives

Our group previously found that LINC00665 was upregulated in hepatocellular carcinoma (HCC) tissues through database analysis; however, the potential molecular mechanism of LINC00665 in HCC progression still needs further study.

Methods

qRTPCR was performed to determine the differential expression of LINC00665 and let-7i in HCC cells. Dual-luciferase reporter assays were performed to analyze the interaction of LINC00665 and let-7i. CCK-8 assays, scratch assays, Transwell invasion assays, qRTPCR and western blotting were performed to determine the regulatory mechanism of LINC00665/let-7i/HMGA1 in HCC cells.

Results

LINC00665 was upregulated in HCC cells compared with normal hepatocytes. A potential binding site between LINC00665 and let-7i was confirmed by dual-luciferase reporter assay. In HCC cells, inhibition of LINC00665 significantly reduced cell proliferation, migration and invasion ability via the let-7i/HMGA1 signaling axis.

Conclusion

LINC00665 promotes the proliferation and invasion of HCC cells via the let-7i/HMGA1 signaling axis.

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来源期刊
CiteScore
4.90
自引率
0.00%
发文量
24
审稿时长
51 days
期刊介绍: Mutation Research (MR) provides a platform for publishing all aspects of DNA mutations and epimutations, from basic evolutionary aspects to translational applications in genetic and epigenetic diagnostics and therapy. Mutations are defined as all possible alterations in DNA sequence and sequence organization, from point mutations to genome structural variation, chromosomal aberrations and aneuploidy. Epimutations are defined as alterations in the epigenome, i.e., changes in DNA methylation, histone modification and small regulatory RNAs. MR publishes articles in the following areas: Of special interest are basic mechanisms through which DNA damage and mutations impact development and differentiation, stem cell biology and cell fate in general, including various forms of cell death and cellular senescence. The study of genome instability in human molecular epidemiology and in relation to complex phenotypes, such as human disease, is considered a growing area of importance. Mechanisms of (epi)mutation induction, for example, during DNA repair, replication or recombination; novel methods of (epi)mutation detection, with a focus on ultra-high-throughput sequencing. Landscape of somatic mutations and epimutations in cancer and aging. Role of de novo mutations in human disease and aging; mutations in population genomics. Interactions between mutations and epimutations. The role of epimutations in chromatin structure and function. Mitochondrial DNA mutations and their consequences in terms of human disease and aging. Novel ways to generate mutations and epimutations in cell lines and animal models.
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