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Critical pathways in cellular senescence and immortalization revealed by gene expression profiling

机译:基因表达谱揭示细胞衰老和永生化的关键途径

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摘要

Bypassing cellular senescence and becoming immortal is a prerequisite step in the tumorigenic transformation of a cell. It has long been known that loss of a key tumor suppressor gene, such as p53, is necessary, but not sufficient, for spontaneous cellular immortalization. Therefore, there must be additional mutations and/or epigenetic alterations required for immortalization to occur. Early work on these processes included somatic cell genetic studies to estimate the number of senescence genes, and microcell-mediated transfer of chromosomes into immortalized cells to identify putative senescence-inducing genetic loci. These principal studies laid the foundation for the field of senescence/immortalization, but were labor intensive and the results were somewhat limited. The advent of gene expression profiling and bioinformatics analysis greatly facilitated the identification of genes and pathways that regulate cellular senescence/immortalization. In this review, we present the findings of several gene expression profiling studies and supporting functional data, where available. We identified universal genes regulating senescence/immortalization and found that the key regulator genes represented six pathways: the cell cycle pRB/p53, cytoskeletal, interferon-related, insulin growth factor-related, MAP kinase and oxidative stress pathway. The identification of the genes and pathways regulating senescence/immortalization could provide novel molecular targets for the treatment and/or prevention of cancer.
机译:绕过细胞衰老并永生不灭是细胞致瘤转化的先决条件。早已知道,对于自发的细胞永生化来说,关键的肿瘤抑制基因(如p53)的缺失是必需的,但还不足以实现。因此,必须存在额外的突变和/或永生化发生所需的表观遗传学改变。这些过程的早期工作包括体细胞遗传学研究以估计衰老基因的数量,以及微细胞介导的染色体向永生化细胞的转移,以鉴定推定的衰老诱导基因位点。这些主要研究为衰老/永生化领域奠定了基础,但劳动强度大且结果有限。基因表达谱分析和生物信息学分析的出现极大地促进了调控细胞衰老/永生化的基因和途径的鉴定。在这篇综述中,我们介绍了一些基因表达谱研究的结果以及可用的辅助功能数据。我们鉴定了调控衰老/永生化的通用基因,发现关键的调控基因代表六个途径:细胞周期pRB / p53,细胞骨架,干扰素相关,胰岛素生长因子相关,MAP激酶和氧化应激途径。基因的鉴定和调节衰老/永生化的途径可以为治疗和/或预防癌症提供新的分子靶标。

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