Journal of Southern Medical University ›› 2014, Vol. 34 ›› Issue (07): 939-.
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Abstract: Objective To screen differentially expressed genes in hyperplastic scar to explore the pathogenesis of hyperplasticscar and identify new therapeutic targets. Methods Three pairs of surgical specimens of hyperplastic scar and adjacent normalskin tissues were collected to investigate the differentially expressed genes in hyperplastic scar using Agilent geneoligonucletide microarray and clustering analysis. DAVID Bioinformatics Resources6.7 was used for GO analysis and pathwayanalysis. Results and Conlcusion Distinctly different gene expression profiles were found between hyperplastic scar tissuesand normal skin tissues. Compared with normal skin tissue, hyperplastic scar tissues showed 3142 up-regulated and 2984down-regulated genes by two folds and 28 up-regulated and 44 down-regulated genes by 5 folds after repeating theexperiment once; after repeating the experiment twice, 3004 genes were found up-regulated and 3038 down-regulated by 2folds and 25 up-regulated and 38 down-regulated by 5 folds in hyperplastic scars. In all the 3 specimens, 1920 genes wereup-regulated and 1912 down-regulated by 2 folds and 18 up-regulated and 29 down-regulated by 5 folds. The dysregulatedgenes in hyperplastic scar were involved in cell cycles, cell proliferation, immune response and cell adhesion (CDKN1C,CDKN2A, CTNNA3, COL6A3, and HOXB4) and in signaling pathway of focal adhesion, TGF-beta signaling pathway, p53signaling pathway, cell cycle, and tumor-associated pathways (TGFβ1, CDKN1C, CDKN2A, CDC14A, ITGB6, and EGF).
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https://www.j-smu.com/EN/Y2014/V34/I07/939