| miRNA | gene name | experiments | ||||||||||||
|---|---|---|---|---|---|---|---|---|---|---|---|---|---|---|
| hsa-miR-133b | BCL2L2 |
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| hsa-miR-133b | PKM |
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| hsa-miR-133b | PITX3 |
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| hsa-miR-133b | PTBP2 |
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| hsa-miR-133b | MCL1 |
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| hsa-miR-133b | IGF1R |
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| hsa-miR-133b | KCNH2 |
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| hsa-miR-133b | FSCN1 |
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| hsa-miR-133b | FAIM |
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| hsa-miR-133b | EGFR |
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| hsa-miR-133b | FGFR1 |
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| hsa-miR-133b | CDK13 |
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| hsa-miR-133b | PTPRK |
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| hsa-miR-133b | RB1CC1 |
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| hsa-miR-133b | CPNE3 |
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| hsa-miR-133b | PRDM16 |
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| hsa-miR-133b | MET |
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| hsa-miR-133b | ERG |
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| hsa-miR-133b | HCN2 |
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| hsa-miR-133b | HCN4 |
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| hsa-miR-133b | STK3 |
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| hsa-miR-133b | CDC42 |
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| hsa-miR-133b | RHOA |
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| hsa-miR-133b | GLI1 |
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| hsa-miR-133b | SP1 |
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| hsa-miR-133b | TAGLN2 |
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| hsa-miR-133b | AKT1 |
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| hsa-miR-133b | FAM160B1 |
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| hsa-miR-133b | CXCR4 |
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| hsa-miR-133b | MMP9 |
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| hsa-miR-133b | CTGF |
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| hsa-miR-133b | FOXL2 |
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| hsa-miR-133b | CNN2 |
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| hsa-miR-133b | EMID1 |
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| hsa-miR-133b | MC2R |
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| hsa-miR-133b | SESN3 |
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| hsa-miR-133b | RHOQ |
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| hsa-miR-133b | HIST2H2AC |
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| hsa-miR-133b | DCAKD |
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| hsa-miR-133b | ZBTB37 |
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| hsa-miR-133b | RNF103-CHMP3 |
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| hsa-miR-133b | MYPN |
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| hsa-miR-133b | CHMP3 |
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| hsa-miR-133b | SYAP1 |
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| hsa-miR-133b | CDK5R1 |
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| hsa-miR-133b | ATP13A3 |
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| hsa-miR-133b | ZFP28 |
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| hsa-miR-133b | SUPT16H |
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| hsa-miR-133b | PTMA |
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| hsa-miR-133b | C11orf24 |
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| hsa-miR-133b | CCDC39 |
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| hsa-miR-133b | ITPKB |
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| hsa-miR-133b | CCNI |
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| hsa-miR-133b | TXNRD3NB |
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| hsa-miR-133b | PDE1A |
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| hsa-miR-133b | RBMXL1 |
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| hsa-miR-133b | RNF168 |
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| hsa-miR-133b | C17orf64 |
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| hsa-miR-133b | ZMAT4 |
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| hsa-miR-133b | TRIM71 |
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| hsa-miR-133b | FOSL2 |
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| hsa-miR-133b | SERPINH1 |
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| hsa-miR-133b | ANGPT4 |
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| hsa-miR-133b | CMTM4 |
|
| authors | journal | year | Pubmed link | title | |
|---|---|---|---|---|---|
| 1 | Chen et al. | Cancer Cell Int. | 2014 | 25414595 | MiR-133b regulates bladder cancer cell proliferation and apoptosis by targeting Bcl-w and Akt1. |
| 2 | Abdellatif et al. | Circ. Res. | 2010 | 20056941 | The role of microRNA-133 in cardiac hypertrophy uncovered. |
| 3 | Crawford et al. | Biochem. Biophys. Res. Commun. | 2009 | 19654003 | MicroRNA 133B targets pro-survival molecules MCL-1 and BCL2L2 in lung cancer. |
| 4 | Zhao et al. | PLoS ONE | 2013 | 24391788 | MiR-133b is down-regulated in human osteosarcoma and inhibits osteosarcoma cells proliferation, migration and invasion, and promotes apoptosis. |
| 5 | Wong et al. | Int. J. Cancer | 2008 | 18464261 | Identification of pyruvate kinase type M2 as potential oncoprotein in squamous cell carcinoma of tongue through microRNA profiling. |
| 6 | Kim et al. | Science | 2007 | 17761882 | A MicroRNA feedback circuit in midbrain dopamine neurons. |
| 7 | Boutz et al. | Genes Dev. | 2007 | 17210790 | MicroRNAs regulate the expression of the alternative splicing factor nPTB during muscle development. |
| 8 | Ning et al. | Differentiation | 2009 | 19695767 | MicroRNA regulation of neuron-like differentiation of adipose tissue-derived stem cells. |
| 9 | Xiao et al. | J. Biol. Chem. | 2007 | 17344217 | MicroRNA miR-133 represses HERG K+ channel expression contributing to QT prolongation in diabetic hearts. |
| 10 | Yamamoto et al. | Mod. Pathol. | 2013 | 23196799 | Fascin-1 overexpression and miR-133b downregulation in the progression of gastrointestinal stromal tumor. |
| 11 | et al. | None | 20198616 | ||
| 12 | Kano et al. | Int. J. Cancer | 2010 | 21351259 | miR-145, miR-133a and miR-133b: Tumor-suppressive miRNAs target FSCN1 in esophageal squamous cell carcinoma. |
| 13 | Guo et al. | J. Exp. Clin. Cancer Res. | 2014 | 25433493 | The role of microRNA-133b and its target gene FSCN1 in gastric cancer. |
| 14 | Patron et al. | PLoS ONE | 2012 | 22532850 | MiR-133b targets antiapoptotic genes and enhances death receptor-induced apoptosis. |
| 15 | Liu et al. | FEBS J. | 2012 | 22883469 | MicroRNA-133b inhibits the growth of non-small-cell lung cancer by targeting the epidermal growth factor receptor. |
| 16 | Tao et al. | Oncol. Rep. | 2012 | 22407299 | microRNA-133 inhibits cell proliferation, migration and invasion in prostate cancer cells by targeting the epidermal growth factor receptor. |
| 17 | Wen et al. | Tumour Biol. | 2013 | 23296701 | miR-133b acts as a tumor suppressor and negatively regulates FGFR1 in gastric cancer. |
| 18 | Mo et al. | PLoS ONE | 2013 | 23451058 | Identification of novel AR-targeted microRNAs mediating androgen signalling through critical pathways to regulate cell viability in prostate cancer. |
| 19 | Yin et al. | Cell Metab. | 2013 | 23395168 | MicroRNA-133 controls brown adipose determination in skeletal muscle satellite cells by targeting Prdm16. |
| 20 | Hu et al. | Cancer Biol. Ther. | 2010 | 20505319 | miR-133b regulates the MET proto-oncogene and inhibits the growth of colorectal cancer cells in vitro and in vivo. |
| 21 | Luo et al. | J. Biol. Chem. | 2008 | 18458081 | Down-regulation of miR-1/miR-133 contributes to re-expression of pacemaker channel genes HCN2 and HCN4 in hypertrophic heart. |
| 22 | Qin et al. | Oncogene | 2012 | 22179829 | MicroRNA-133b is a key promoter of cervical carcinoma development through the activation of the ERK and AKT1 pathways. |
| 23 | Cheng et al. | Cell. Signal. | 2014 | 25152372 | miR-133 is a key negative regulator of CDC42-PAK pathway in gastric cancer. |
| 24 | Zhao et al. | BMC Cancer | 2014 | 24443799 | MiR-133b is frequently decreased in gastric cancer and its overexpression reduces the metastatic potential of gastric cancer cells. |
| 25 | Qiu et al. | FEBS Lett. | 2014 | 24613927 | MiR-145, miR-133a and miR-133b inhibit proliferation, migration, invasion and cell cycle progression via targeting transcription factor Sp1 in gastric cancer. |
| 26 | Xiao et al. | PLoS ONE | 2014 | 24959893 | MiR-133b regulates the expression of the Actin protein TAGLN2 during oocyte growth and maturation: a potential target for infertility therapy. |
| 27 | Kishore et al. | Nat. Methods | 2011 | 21572407 | A quantitative analysis of CLIP methods for identifying binding sites of RNA-binding proteins. |
| 28 | Duan et al. | Mol. Cancer | 2013 | 24330809 | miR-133b, a muscle-specific microRNA, is a novel prognostic marker that participates in the progression of human colorectal cancer via regulation of CXCR4 expression. |
| 29 | Wu et al. | Mol Med Rep | 2014 | 24714873 | microRNA-133b downregulation and inhibition of cell proliferation, migration and invasion by targeting matrix metallopeptidase-9 in renal cell carcinoma. |
| 30 | Robinson et al. | Invest. Ophthalmol. Vis. Sci. | 2013 | 24065814 | MicroRNA signature in wound healing following excimer laser ablation: role of miR-133b on TGFβ1, CTGF, SMA, and COL1A1 expression levels in rabbit corneal fibroblasts. |
| 31 | Dai et al. | FEBS Lett. | 2013 | 23810756 | MicroRNA-133b stimulates ovarian estradiol synthesis by targeting Foxl2. |
| 32 | Whisnant et al. | MBio | 2013 | 23592263 | In-depth analysis of the interaction of HIV-1 with cellular microRNA biogenesis and effector mechanisms. |
| 33 | Memczak et al. | Nature | 2013 | 23446348 | Circular RNAs are a large class of animal RNAs with regulatory potency. |
| 34 | Lipchina et al. | Genes Dev. | 2011 | 22012620 | Genome-wide identification of microRNA targets in human ES cells reveals a role for miR-302 in modulating BMP response. |
| 35 | Hafner et al. | Cell | 2010 | 20371350 | Transcriptome-wide identification of RNA-binding protein and microRNA target sites by PAR-CLIP. |
| 36 | Karginov et al. | Genes Dev. | 2013 | 23824327 | Remodeling of Ago2-mRNA interactions upon cellular stress reflects miRNA complementarity and correlates with altered translation rates. |
| 37 | Xue et al. | Cell | 2013 | 23313552 | Direct conversion of fibroblasts to neurons by reprogramming PTB-regulated microRNA circuits. |
| 38 | Chi et al. | Nature | 2009 | 19536157 | Argonaute HITS-CLIP decodes microRNA-mRNA interaction maps. |