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首页> 外文期刊>BMC Medical Genomics >Identification and validation of pivotal genes related to age-related meniscus degeneration based on gene expression profiling analysis and in vivo and in vitro models detection
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Identification and validation of pivotal genes related to age-related meniscus degeneration based on gene expression profiling analysis and in vivo and in vitro models detection

机译:基于基因表达分析分析及体内和体外模型检测,鉴定和验证与年龄相关弯月球变性有关的枢轴基因

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The componential and structural change in the meniscus with aging would increase the tissue vulnerability of the meniscus, which would induce meniscus tearing. Here, we investigated the molecular mechanism of age-related meniscus degeneration with gene expression profiling analysis, and validate pivotal genes in vivo and in vitro models. The GSE45233 dataset, including 6 elderly meniscus samples and 6 younger meniscus samples, was downloaded from the Gene Expression Omnibus (GEO) database. To screen the differential expression of mRNAs and identify the miRNAs targeting hub genes, we completed a series of bioinformatics analyses, including functional and pathway enrichment, protein–protein interaction network, hub genes screening, and construction of a lncRNA–miRNA–mRNA network. Furthermore, crucial genes were examined in human senescent menisci, mouse senescent meniscus tissues and mouse meniscus cells stimulated by IL-1β. In total, the most significant 4 hub genes (RRM2, AURKB, CDK1, and TIMP1) and 5 miRNAs (hsa-miR-6810-5p, hsa-miR-4676-5p, hsa-miR-6877-5p, hsa-miR-8085, and hsa-miR-6133) that regulated such 4 hub genes, were finally identified. Moreover, these hub genes were decreased in meniscus cells in vitro and meniscus tissues in vivo, which indicated that hub genes were related to meniscus senescence and could serve as potential biomarkers for age-related meniscus tearing. In short, the integrated analysis of gene expression profile, co-expression network, and models detection identified pivotal genes, which elucidated the possible molecular basis underlying the senescence meniscus and also provided prognosis clues for early-onset age-related meniscus tearing.
机译:随老化的半月板的成分和结构变化将增加半月板的组织脆弱性,这将诱导弯月面撕裂。在这里,我们研究了与基因表达分析分析的年龄相关弯月面变性的分子机制,并验证体内和体外模型中的枢轴基因。 GSE45233数据集包括6个老年半月板样本和6个较年轻的半月形样品,从基因表达式omnibus(Geo)数据库下载。为了筛选MRNA的差异表达并鉴定靶向中心基因的MIRNA,我们完成了一系列生物信息学分析,包括功能性和途径富集,蛋白质 - 蛋白质相互作用网络,集线器基因筛选和LNCRNA-miRNA-mRNA网络的构建。此外,在人性衰老半月核中检查了关键基因,由IL-1β刺激的小鼠衰老弯月球组织和小鼠弯月面细胞。总共,最重要的4个枢纽基因(RRM2,AurkB,CDK1和TIMP1)和5 miRNA(HSA-MIR-6810-5P,HSA-MIR-4676-5P,HSA-MIR-6877-5P,HSA-MIR最终确定调节这种4个轮毂基因的-8085和HSA-miR-6133)。此外,这些轮毂基因在体外和半月板组织中的弯月面细胞中减少,表明中心基因与弯月面衰老有关,并且可以作为潜在的生物标志物,用于年龄相关的弯月面撕裂。简而言之,基因表达谱,共同表达网络和模型检测的综合分析鉴定了枢轴基因,阐述了衰老弯鼻肌底层的可能分子基础,并提供了早熟年龄相关弯月面撕裂的预后线索。

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