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Correlation of N-cadherin expression in high grade gliomas with tissue invasion

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Abstract

Cadherins are Ca2+-dependent cell adhesion molecules that play an important role in tissue construction and morphogenesis in multicellular organisms. Over the last few years, reports have emerged in the literature describing the involvement of cadherins in tumor invasion and metastasis. Cadherins typically demonstrate up and down-regulation according to the biological needs of the tissue. Additionally, up-regulation of N-cadherin is thought to be important for tumor formation in early stages of tumor development. We studied N-cadherin in surgical specimens of patients with primary glioblastoma by microarray analysis and found that N-cadherin mRNA expression is up-regulated compared to normal brain. To study the effects of N-cadherin expression on invasion and metastasis in vitro and in vivo, we overexpressed N-cadherin in the rat C6 glioma cell line which normally has low levels of N-cadherin. We found that up-regulation of N-cadherin resulted in a slight decreased adhesion to type IV collagen, fibronectin, and laminin, but statistically significant decreased adhesion to type I collagen. Furthermore, increased expression of N-cadherin correlated with a dramatic decrease in invasive behavior in extracellular matrix invasion assays. We then proceeded to study these cell lines in vivo in a rat intracranial glioma model, and found that N-cadherin expression inversely correlated with invasion into surrounding tissues, irregular margins, and extracranial invasion. In summary, these data collectively demonstrate that N-cadherin levels are important in the malignant behavior of gliomas, and may serve as a prognostic indicator for patients with high-grade gliomas.

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References

  1. Nose A, Nagafuchi A, Takeichi M: Expressed recombinant cadherins mediate cell sorting in model systems. Cell 54: 993-1001, 1988

    Google Scholar 

  2. Shimamura K, Takeichi M: Local and transient expression of E-cadherin involved in mouse embryonic brain morphogenesis. Development 116: 1011-1019, 1992

    Google Scholar 

  3. Takeichi M: The cadherins: cell–cell adhesion molecules controlling animal morphogenesis. Development 102: 639-655, 1988

    Google Scholar 

  4. Takeichi M: Cadherin cell adhesion receptors as a morphogenetic regulator. Science 251: 1451-1455, 1991

    Google Scholar 

  5. Takeichi M: Functional correlation between cell and cell adhesion properties and cell surface protein. J Cell Biol 75: 464-474, 1977

    Google Scholar 

  6. Nose A, Takeichi M: A novel cadherin cell adhesion molecule: its expression patterns associated with implantation and organogenesis of mouse embryos. J Cell Biol 103: 2649-2658, 1986

    Google Scholar 

  7. Hatta K, Okada TS, Takeichi M: A monoclonal antibody disrupting calcium-dependent cell–cell adhesion of brain tissues: possible role of its target antigen in animal pattern formation. Proc Natl Acad Sci USA 82: 2789-2793, 1985

    Google Scholar 

  8. Suzuki S, Sano K, Tanihara H: Diversity of the cadherin family: evidence for eight new cadherins in nervous tissue. Cell Regul 2: 261-270, 1991

    Google Scholar 

  9. Ozawa M, Baribault H, Kemler R: The cytoplasmic domain of the cell adhesion molecule uvomorulin associates with three independent proteins structurally related in di.erent species. EMBO J 8: 1711-1717, 1989

    Google Scholar 

  10. Ozawa M, Kemler R: Molecular organization of the uvomorulin–catenin complex. J Cell Biol 116: 989-996, 1992

    Google Scholar 

  11. Nagafuchi A, Takeichi M: Cell binding function of Ecadherin is regulated by the cytoplasmic domain. EMBO J 7: 3679-3684, 1988

    Google Scholar 

  12. Ozawa M, Ringwald M, Kemler R: Uvomorulin–catenin complex formation is regulated by a specific domain in the cytoplasmic region of the cell adhesion molecule. Proc Natl Acad Sci USA 87: 4246-4250, 1990

    Google Scholar 

  13. Doki Y, Shiozaki H, Tahara H, Inoue M, Oka H, Iihara K, Kadowaki T, Takeichi M, Mori T: Correlation between Ecadherin expression and invasiveness in vitro in a human esophageal cancer cell line. Cancer Res 53: 3421-3426, 1993

    Google Scholar 

  14. Jankowski JA, Newham PM, Kandemir O, Hirano S, Takeichi M, Pignatelli M: Differential expression of E-cadherin in normal, metaplastic and dysplastic oesophageal mucosa: ta putative biomarker. Int J Pathol 4: 441-448, 1994

    Google Scholar 

  15. Nakanishi Y, Ochiai A, Akimoto S, Kato H, Watanabe H, Tachimori Y, Yamamoto S, Hirohashi S: Expression of E-cadherin, alpha-catenin, beta-catenin and plakoglobin in esophageal carcinomas and its prognostic significance: immunohistochemical analysis of 96 lesions. Oncology 54: 158-165, 1997

    Google Scholar 

  16. Pignatelli M, Liu D, Nasim MM, Stamp GW, Hirano S, Takeichi M: Morphoregulatory activities of E-cadherin and beta-1 integrins in colorectal tumour cells. Br J Cancer 66: 629-634, 1992

    Google Scholar 

  17. Rasbridge SA, Gillett CE, Sampson SA, Walsh FS, Millis RR: Epithelial (E-) and placental (P-) cadherin cell adhesion molecule expression in breast carcinoma. J Pathol 169: 245-250, 1993

    Google Scholar 

  18. Shimoyama Y, Hirohashi S, Hirano S, Noguchi M, Shimosato Y, Takeichi M, Abe O: Cadherin cell-adhesion molecules in human epithelial tissues and carcinomas. Cancer Res 49: 2128-2133, 1989

    Google Scholar 

  19. Shimoyama Y, Hirohashi S: Expression of E-and P-cadherin in gastric carcinomas. Cancer Res 51: 2185-2192, 1991

    Google Scholar 

  20. Shimoyama Y, Hirohashi S: Cadherin intercellular adhesion molecule in hepatocellular carcinomas: loss of E-cadherin expression in an undifferentiated carcinoma. Cancer Lett 57: 131-135, 1991

    Google Scholar 

  21. Shiozaki H, Tahara H, Oka H, Miyata M, Kobayashi K, Tamura S, Lihara K, Doki Y, Hirano S, Takeichi M, Mori T: Expression of immunoreactive E-cadherin adhesion molecules in human cancers. Am J Pathol 139: 17-23, 1991

    Google Scholar 

  22. Takeichi M: Cadherins in cancer: implications for invasion and metastasis. Curr Opin Cell Biol 5: 806-811, 1993

    Google Scholar 

  23. Tang A, Ellen MS, Hara M, Yaar M, Hirohashi S, Gilchrest BA: E-cadherin is the major mediator of human melanocyte adhesion to keratinocyte in vitro. J Cell Sci 107: 983-992, 1994

    Google Scholar 

  24. Umbas R, Schalken JA, Aalders TW, Carter BS, Karthaus HF, Schaafsma HE, Debruyne FM, Isaacs WB: Expression of the cellular adhesion molecule E-cadherin is reduced or absent in high-grade prostate cancer. Cancer Res 52: 5104-5109, 1992

    Google Scholar 

  25. Asano K, Kubo O, Tajika Y, Huang MC, Takakura K, Ebina K, Suzuki S: Expression and role of cadherins in astrocytic tumors. Brain Tumor Pathol 14: 27-33, 1997

    Google Scholar 

  26. Asano K, Kubo O, Tajika Y, Takakura K, Suzuki S: Expression of cadherin and CSF dissemination in malignant astrocytic tumors. Neurosurg Rev 23: 39-44, 2000

    Google Scholar 

  27. Perego C, Vanoni C, Massari S, Raimondi A, Pola S, Cattaneo MG, Francolini M, Vicentini LM, Pietrini G: Invasive behaviour of glioblastoma cell lines is associated with altered organisation of the cadherin–catenin adhesion system. J Cell Sci 115: 3331-3340, 2002

    Google Scholar 

  28. Shinoura N, Paradies NE, Warnick RE, Chen H, Larson JJ, Tew JJ, Simon M, Lynch RA, Kanai Y, Hirohashi S, Hemperly JJ, Menon AG, Brackenbury R: Expression of N-cadherin and α-catenin in astrocytomas and glioblastomas. Br J Cancer 72: 627-633, 1995

    Google Scholar 

  29. Hatta K, Takagi S, Fujisawa H, Takeichi M: Spatial and temporal expression pattern of N-cadherin cell adhesion molecules correlated with morphogenetic processes of chicken embryos. Dev Biol 120: 215-227, 1987

    Google Scholar 

  30. Inuzuka H, Redies C, Takeichi M, Differential expression of R-and N-cadherin in neural and mesodermal tissues during early chicken development. Development 113: 959-967, 1991

    Google Scholar 

  31. Letourneau PC, Shattuck TA, Roche FK, Takeichi M, Lemmon V: Nerve growth cone migration onto Schwann cells involves the calcium-dependent adhesion molecule, N-cadherin. Dev Biol 138: 430-442, 1990

    Google Scholar 

  32. Matsunaga M, Hatta K, Takeichi M: Role of N-cadherin cell adhesion molecules in the histogenesis of neural retina. Neuron 1: 289-295, 1988

    Google Scholar 

  33. Neugebauer KM, Tomaselli KJ, Lilien J, Reichardt LF: N-cadherin, NCAM, and integrins promote retinal neurite outgrowth on astrocytes in vitro. J Cell Biol 107: 1177-1187, 1988

    Google Scholar 

  34. Redies C, Takeichi M: N-and R-cadherin expression in the optic nerve of the chicken embryo: N-and R-cadherin expression in the optic nerve of the chicken embryo. Glia 8: 161-171, 1993

    Google Scholar 

  35. Schnadelbach O, Blaschuk OW, Symonds M, Gour BJ, Doherty P, Fawcett JW: N-cadherin in.uences migration of oligodendrocytes on astrocyte monolayers. Mol Cell Neurosci 15: 288-302, 2000

    Google Scholar 

  36. Tomaselli KJ, Neugebauer KM, Bixby JL, Lilien J, Reichardt LF: N-cadherin and integrins: two receptor systems that mediate neuronal process outgrowth on astrocyte surfaces. Neuron 1: 33-43, 1988

    Google Scholar 

  37. Lagunowich LA, Schneider JC, Chasen S, Grunwald GB: Immunohistochemical and biochemical analysis of Ncadherin expression during CNS development. J Neurosci Res 32: 202-208, 1992

    Google Scholar 

  38. Redies C, Takeichi M: Expression of N-cadherin mRNA during development of the mouse brain. Dev Dyn 197: 26-39, 1993

    Google Scholar 

  39. Matsunaga M, Hatta K, Nagafuchi A, Takeichi M: Guidance of optic nerve fibres by N-cadherin adhesion molecules. Nature 334: 62-64, 1988

    Google Scholar 

  40. Irizary RA, Bolstad BM, Collin F, Cope LM, Hobbs B, Speed TP: Summaries of affymetrix gene chip probe level data. Nucleic Acids Res 31: 15, 2003

    Google Scholar 

  41. Ihaka R, Gentleman RR: A Language for data analysis and graphics. J Comp Graph Stat 5: 299-231, 1996

    Google Scholar 

  42. Takeichi M, Okada TS: Roles of magnesium and calcium ions in cell-to-substrate adhesion. Exp Cell Res 74: 51-60, 1972

    Google Scholar 

  43. Kobayashi N, Allen N, Clendenon NR, Ko LW: An improved rat brain-tumor model. J Neurosurg 53: 808-815, 1980

    Google Scholar 

  44. Bernstein JJ, Goldberg WJ, Laws ER Jr, Conger D, Morreale V, Wood LR: C6 glioma cell invasion and migration of rat brain after neural homografting: ultrastructure. Neurosurgery 26: 622–628, 1990

    Google Scholar 

  45. Saini M, Bellinzona M, Meyer F, Cali G, Samii M: Morphometrical characterization of two glioma models in the brain of immunocompetent and immunode.cient rats. J Neurooncol 42: 59-67, 1999

    Google Scholar 

  46. Vitolo D, Paradiso P, Uccini S, Ruco LP, Baroni CD: Expression of adhesion molecules and extracellular matrix proteins in glioblastomas: relation to angiogenesis and spread. Histopathology 28: 521-528, 1996

    Google Scholar 

  47. Albini A, Iwamoto Y, Kleinman HK, Martin GR, Aaronson SA, Kozlowski JM, McEwan RN: A rapid in vitro assay for quantitating the invasive potential of tumor cells. Cancer Res 47: 3239-3245, 1987

    Google Scholar 

  48. Schor SL, Schor AM, Winn B, Rushton G: The use of three-dimensional collagen gels for the study of tumour cell invasion in vitro: experimental parameters influencing cell migration into the gel matrix. Int J Cancer 29: 57-62, 1982

    Google Scholar 

  49. Chen WC, Obrink B: Cell-cell contacts mediated by E-cadherin (uvomorulin) restrict invasive behavior of Lcells. J Cell Biol 114: 319-327, 1991

    Google Scholar 

  50. Shiozaki H, Mori T: Adhesion molecules and cancer metastasis. Jpn J Cancer Chemother 18: 2361-2368, 1991

    Google Scholar 

  51. Oda T, Kanai Y, Oyama T, Yoshiura K, Shimoyama Y, Birchmeier W, Sugimura T, Hirohashi S: E-cadherin gene mutations in human gastric carcinoma cell lines. Proc Natl Acad Sci USA 91: 1858-1862, 1994

    Google Scholar 

  52. Shimoyama Y, Nagafuchi A, Fujita S, Gotoh M, Takeichi M, Tsukita S, Hirohashi S: Cadherin dysfunction in a human cancer cell line: possible involvement of loss of alpha-catenin expression in reduced cell–cell adhesiveness. Cancer Res 52: 5770-5774, 1992

    Google Scholar 

  53. Yoshiura K, Kanai Y, Ochiai A, Shimoyama Y, Sugimura T, Hirohashi S: Silencing of the E-cadherin invasionsuppressor gene by CpG methylation in human carcinomas. Proc Natl Acad Sci USA 92: 7416-7419, 1995

    Google Scholar 

  54. Shibamoto S, Hayakawa M, Takeuchi K, Hori T, Oku N, Miyazawa K, Kitamura N, Takeichi M, Ito F: Tyrosine phosphorylation of beta-catenin and plakoglobin enhanced by hepatocyte growth factor and epidermal growth factor in human carcinoma cells. Cell Adhes Commun 1: 295-305, 1994

    Google Scholar 

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Asano, K., Asano, K., Duntsch, C.D. et al. Correlation of N-cadherin expression in high grade gliomas with tissue invasion. J Neurooncol 70, 3–15 (2004). https://doi.org/10.1023/B:NEON.0000040811.14908.f2

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