Tumour invasion and metastasis initiated by microRNA-10b in breast cancer (original) (raw)
References
Fidler, I. J. The pathogenesis of cancer metastasis: the 'seed and soil' hypothesis revisited. Nature Rev. Cancer3, 453–458 (2003) CAS Google Scholar
Batlle, E. et al. The transcription factor snail is a repressor of E-cadherin gene expression in epithelial tumour cells. Nature Cell Biol.2, 84–89 (2000) CAS Google Scholar
Cano, A. et al. The transcription factor snail controls epithelial–mesenchymal transitions by repressing E-cadherin expression. Nature Cell Biol.2, 76–83 (2000) CAS Google Scholar
Comijn, J. et al. The two-handed E box binding zinc finger protein SIP1 downregulates E-cadherin and induces invasion. Mol. Cell7, 1267–1278 (2001) CAS Google Scholar
Bolos, V. et al. The transcription factor Slug represses E-cadherin expression and induces epithelial to mesenchymal transitions: a comparison with Snail and E47 repressors. J. Cell Sci.116, 499–511 (2003) CAS Google Scholar
Yang, J. et al. Twist, a master regulator of morphogenesis, plays an essential role in tumor metastasis. Cell117, 927–939 (2004) CAS Google Scholar
Hartwell, K. A. et al. The Spemann organizer gene, Goosecoid, promotes tumor metastasis. Proc. Natl Acad. Sci. USA103, 18969–18974 (2006) CAS Google Scholar
Mani, S. A. et al. Mesenchyme Forkhead 1 (FOXC2) plays a key role in metastasis and is associated with aggressive basal-like breast cancers. Proc. Natl Acad. Sci. USA104, 10069–10074 (2007) CAS Google Scholar
Calin, G. A. & Croce, C. M. MicroRNA signatures in human cancers. Nature Rev. Cancer6, 857–866 (2006) CAS Google Scholar
Esquela-Kerscher, A. & Slack, F. J. Oncomirs — microRNAs with a role in cancer. Nature Rev. Cancer6, 259–269 (2006) CAS Google Scholar
Bartel, D. P. MicroRNAs: genomics, biogenesis, mechanism, and function. Cell116, 281–297 (2004) CAS Google Scholar
Brennecke, J., Hipfner, D. R., Stark, A., Russell, R. B. & Cohen, S. M. bantam encodes a developmentally regulated microRNA that controls cell proliferation and regulates the proapoptotic gene hid in Drosophila . Cell113, 25–36 (2003) CAS Google Scholar
Chen, C. Z., Li, L., Lodish, H. F. & Bartel, D. P. MicroRNAs modulate hematopoietic lineage differentiation. Science303, 83–86 (2004) CAS Google Scholar
Poy, M. N. et al. A pancreatic islet-specific microRNA regulates insulin secretion. Nature432, 226–230 (2004) CAS Google Scholar
Yi, R. et al. Morphogenesis in skin is governed by discrete sets of differentially expressed microRNAs. Nature Genet.38, 356–362 (2006) CAS Google Scholar
Schratt, G. M. et al. A brain-specific microRNA regulates dendritic spine development. Nature439, 283–289 (2006) CAS Google Scholar
Calin, G. A. et al. Human microRNA genes are frequently located at fragile sites and genomic regions involved in cancers. Proc. Natl Acad. Sci. USA101, 2999–3004 (2004) CAS Google Scholar
He, L. et al. A microRNA polycistron as a potential human oncogene. Nature435, 828–833 (2005) CAS Google Scholar
Johnson, S. M. et al. RAS is regulated by the let-7 microRNA family. Cell120, 635–647 (2005) CAS Google Scholar
Lu, J. et al. MicroRNA expression profiles classify human cancers. Nature435, 834–838 (2005) CAS Google Scholar
Roldo, C. et al. MicroRNA expression abnormalities in pancreatic endocrine and acinar tumors are associated with distinctive pathologic features and clinical behavior. J. Clin. Oncol.24, 4677–4684 (2006) CAS Google Scholar
Iorio, M. V. et al. MicroRNA gene expression deregulation in human breast cancer. Cancer Res.65, 7065–7070 (2005) CAS Google Scholar
Meister, G., Landthaler, M., Dorsett, Y. & Tuschl, T. Sequence-specific inhibition of microRNA- and siRNA-induced RNA silencing. RNA10, 544–550 (2004) CAS Google Scholar
Cheng, A. M., Byrom, M. W., Shelton, J. & Ford, L. P. Antisense inhibition of human miRNAs and indications for an involvement of miRNA in cell growth and apoptosis. Nucleic Acids Res.33, 1290–1297 (2005) CAS Google Scholar
Elenbaas, B. et al. Human breast cancer cells generated by oncogenic transformation of primary mammary epithelial cells. Genes Dev.15, 50–65 (2001) CAS Google Scholar
Ethier, S. P., Mahacek, M. L., Gullick, W. J., Frank, T. S. & Weber, B. L. Differential isolation of normal luminal mammary epithelial cells and breast cancer cells from primary and metastatic sites using selective media. Cancer Res.53, 627–635 (1993) CAS Google Scholar
Kuperwasser, C. et al. A mouse model of human breast cancer metastasis to human bone. Cancer Res.65, 6130–6138 (2005) CAS Google Scholar
Thiery, J. P. Epithelial–mesenchymal transitions in tumour progression. Nature Rev. Cancer2, 442–454 (2002) CAS Google Scholar
Cripps, R. M. et al. The myogenic regulatory gene Mef2 is a direct target for transcriptional activation by Twist during Drosophila myogenesis. Genes Dev.12, 422–434 (1998) CAS Google Scholar
Cheng, G. Z. et al. Twist transcriptionally up-regulates AKT2 in breast cancer cells leading to increased migration, invasion, and resistance to paclitaxel. Cancer Res.67, 1979–1987 (2007) CAS Google Scholar
Zhou, X., Ruan, J., Wang, G. & Zhang, W. Characterization and identification of microRNA core promoters in four model species. PLoS Comput. Biol.3, e37 (2007) Google Scholar
Lewis, B. P., Shih, I. H., Jones-Rhoades, M. W., Bartel, D. P. & Burge, C. B. Prediction of mammalian microRNA targets. Cell115, 787–798 (2003) CAS Google Scholar
Krek, A. et al. Combinatorial microRNA target predictions. Nature Genet.37, 495–500 (2005) CAS Google Scholar
Makiyama, K. et al. Aberrant expression of HOX genes in human invasive breast carcinoma. Oncol. Rep.13, 673–679 (2005) CAS Google Scholar
Carrio, M., Arderiu, G., Myers, C. & Boudreau, N. J. Homeobox D10 induces phenotypic reversion of breast tumor cells in a three-dimensional culture model. Cancer Res.65, 7177–7185 (2005) CAS Google Scholar
Myers, C., Charboneau, A., Cheung, I., Hanks, D. & Boudreau, N. Sustained expression of homeobox D10 inhibits angiogenesis. Am. J. Pathol.161, 2099–2109 (2002) CAS Google Scholar
Clark, E. A., Golub, T. R., Lander, E. S. & Hynes, R. O. Genomic analysis of metastasis reveals an essential role for RhoC. Nature406, 532–535 (2000) CAS Google Scholar
Hakem, A. et al. RhoC is dispensable for embryogenesis and tumor initiation but essential for metastasis. Genes Dev.19, 1974–1979 (2005) CAS Google Scholar
Kleer, C. G. et al. RhoC GTPase expression as a potential marker of lymph node metastasis in squamous cell carcinomas of the head and neck. Clin. Cancer Res.12, 4485–4490 (2006) CAS Google Scholar
Kondo, T. et al. Expression of RhoC is associated with metastasis of gastric carcinomas. Pathobiology71, 19–25 (2004) Google Scholar
Wang, W. et al. Overexpression of the RhoC gene correlates with invasion and metastasis of hepatocellular carcinoma Chinese J. Oncol . (Zhonghua Zhong Liu Za Zhi.) 26, 279–282 (2004)
Reichmann, E. et al. Activation of an inducible c-FosER fusion protein causes loss of epithelial polarity and triggers epithelial–fibroblastoid cell conversion. Cell71, 1103–1116 (1992) CAS Google Scholar
Enright, A. J. et al. MicroRNA targets in Drosophila . Genome Biol.5, R1 (2003) Google Scholar
Yekta, S., Shih, I. H. & Bartel, D. P. MicroRNA-directed cleavage of HOXB8 mRNA. Science304, 594–596 (2004) CAS Google Scholar
Ronshaugen, M., Biemar, F., Piel, J., Levine, M. & Lai, E. C. The Drosophila microRNA iab-4 causes a dominant homeotic transformation of halteres to wings. Genes Dev.19, 2947–2952 (2005) CAS Google Scholar
Garzon, R. et al. MicroRNA fingerprints during human megakaryocytopoiesis. Proc. Natl Acad. Sci. USA103, 5078–5083 (2006) CAS Google Scholar
Zhang, X. et al. Human growth hormone-regulated HOXA1 is a human mammary epithelial oncogene. J. Biol. Chem.278, 7580–7590 (2003) CAS Google Scholar
Stewart, S. A. et al. Lentivirus-delivered stable gene silencing by RNAi in primary cells. RNA9, 493–501 (2003) CAS Google Scholar