Microrna-143-3p suppresses tumorigenesis by targeting catenin- δ 1 in colorectal cancer
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Y. Ding | Kai Mao | Xiaoyu Wang | Jiying Du | Fanping Wang | Xiaohua Ding
[1] M. Ebert,et al. Checkpoints and beyond - Immunotherapy in colorectal cancer. , 2019, Seminars in cancer biology.
[2] L. Ren,et al. MiR-382 functions as tumor suppressor and chemosensitizer in colorectal cancer , 2018, Bioscience reports.
[3] Huimin Shen,et al. MiR-143-3p suppresses the progression of ovarian cancer. , 2018, American journal of translational research.
[4] Hidetoshi Eguchi,et al. MicroRNAs as Biomarkers in Colorectal Cancer , 2017, Cancers.
[5] A. Jemal,et al. Colorectal cancer statistics, 2017 , 2017, CA: a cancer journal for clinicians.
[6] Sang Wook Kim. [The Role of MicroRNAs in Colorectal Cancer]. , 2017, The Korean journal of gastroenterology = Taehan Sohwagi Hakhoe chi.
[7] H. Xue,et al. Down-regulation of microRNA-143 is associated with colorectal cancer progression. , 2016, European review for medical and pharmacological sciences.
[8] Yu Ding,et al. MicroRNA-103 promotes tumor growth and metastasis in colorectal cancer by directly targeting LATS2. , 2016, Oncology letters.
[9] Jing Chen,et al. MiR-143-3p functions as a tumor suppressor by regulating cell proliferation, invasion and epithelial–mesenchymal transition by targeting QKI-5 in esophageal squamous cell carcinoma , 2016, Molecular Cancer.
[10] Zhenran Wang,et al. Overexpression of CTNND1 in hepatocellular carcinoma promotes carcinous characters through activation of Wnt/β-catenin signaling , 2016, Journal of Experimental & Clinical Cancer Research.
[11] Marco Greco,et al. Worldwide burden of colorectal cancer: a review , 2016, Updates in Surgery.
[12] Ahmedin Jemal,et al. Global patterns and trends in colorectal cancer incidence and mortality , 2016, Gut.
[13] K. Shi,et al. Clinical value of integrated-signature miRNAs in colorectal cancer: miRNA expression profiling analysis and experimental validation , 2015, Oncotarget.
[14] E. Kuipers,et al. Colorectal cancer screening: a global overview of existing programmes , 2015, Gut.
[15] X. Chen,et al. MiR-143 and MiR-145 Regulate IGF1R to Suppress Cell Proliferation in Colorectal Cancer , 2014, PloS one.
[16] V. Kim,et al. Regulation of microRNA biogenesis , 2014, Nature Reviews Molecular Cell Biology.
[17] Toby C. Cornish,et al. Lessons from miR-143/145: the importance of cell-type localization of miRNAs , 2014, Nucleic acids research.
[18] V. Adhami,et al. The dietary terpene lupeol targets colorectal cancer cells with constitutively active Wnt/β-catenin signaling. , 2013, Molecular nutrition & food research.
[19] L. Ricci-Vitiani,et al. Analysis of the combined action of miR-143 and miR-145 on oncogenic pathways in colorectal cancer cells reveals a coordinate program of gene repression , 2013, Oncogene.
[20] M. Tenhagen,et al. p120-catenin in cancer – mechanisms, models and opportunities for intervention , 2013, Journal of Cell Science.
[21] P. V. van Diest,et al. Loss of p120-catenin induces metastatic progression of breast cancer by inducing anoikis resistance and augmenting growth factor receptor signaling. , 2013, Cancer research.
[22] B. Jiang,et al. MicroRNA-143 Targets MACC1 to Inhibit Cell Invasion and Migration in Colorectal cancer , 2012, Molecular Cancer.
[23] C. Boucheix,et al. E-cadherin/p120-catenin and tetraspanin Co-029 cooperate for cell motility control in human colon carcinoma. , 2010, Cancer research.
[24] O. Topolcan,et al. Relevance of miR-21 and miR-143 expression in tissue samples of colorectal carcinoma and its liver metastases. , 2010, Cancer genetics and cytogenetics.
[25] Y. Akao,et al. Role of anti-oncomirs miR-143 and -145 in human colorectal tumors , 2010, Cancer Gene Therapy.
[26] Tetsu Akiyama,et al. Mutated APC and Asef are involved in the migration of colorectal tumour cells , 2003, Nature Cell Biology.
[27] D. Rimm,et al. Loss of p120ctn in human colorectal cancer predicts metastasis and poor survival. , 1998, Cancer letters.
[28] F. van Roy,et al. Molecular cloning of the human p120ctn catenin gene (CTNND1): expression of multiple alternatively spliced isoforms. , 1998, Genomics.
[29] K. Kinzler,et al. Constitutive Transcriptional Activation by a β-Catenin-Tcf Complex in APC−/− Colon Carcinoma , 1997, Science.
[30] B. Vogelstein,et al. A genetic model for colorectal tumorigenesis , 1990, Cell.
[31] B. Baradaran,et al. MicroRNAs as novel biomarkers for colorectal cancer: New outlooks. , 2018, Biomedicine & pharmacotherapy = Biomedecine & pharmacotherapie.
[32] Hongming Song,et al. miR-143-3p targeting LIM domain kinase 1 suppresses the progression of triple-negative breast cancer cells. , 2017, American journal of translational research.
[33] Mario Acunzo,et al. MicroRNA and cancer--a brief overview. , 2015, Advances in biological regulation.
[34] P. Anastasiadis,et al. p120 catenin: an essential regulator of cadherin stability, adhesion-induced signaling, and cancer progression. , 2013, Progress in molecular biology and translational science.
[35] A. Reynolds. p120-catenin: Past and present. , 2007, Biochimica et biophysica acta.
[36] P. Polakis. The oncogenic activation of beta-catenin. , 1999, Current opinion in genetics & development.