Interactions between newly formed endothelial channels and carcinoma cells in plasma clot culture (original) (raw)

References

  1. Ausprunk, D. H., 1982, Synthesis of glycoproteins by endothelial cells in embryonic blood vessels. Development Biology, 90, 79–90.
    Google Scholar
  2. Clark, R. A., Della Pelle, P. D., Manseau, E., Lanigan, J. M., Dvorak, H. F., and Colvin, R. B., 1982, Blood vessel fibronectin increases in conjunction with endothelial cell proliferation and capillary ingrowth during wound healing. Journal of Investigative Dermatology, 79, 269–276.
    Google Scholar
  3. Folkman, J., and Hochberg, M., 1973, Self regulation of growth in three dimensions. Journal of Experimental Medicine, 138, 745–753.
    Google Scholar
  4. Folkman, J., 1974, Tumor angiogenesis factor. Cancer Research, 34, 2109–2113.
    Google Scholar
  5. Folkman, J., 1975, Tumor angiogenesis. Cancer Biology of Tumors, edited by F. F. Becker (New York: Plenum Press), pp. 355–388.
    Google Scholar
  6. Furcht, L. T., McCarthy, J. B., Palm, S. L., Basara, M. L., and Enenstein, J., 1984, Peptide fragments of laminin and fibronectin promote migration (haptotaxis and chemotaxis) of metastatic cells. Basement Membranes and Cell Movement, edited by R. Porter and J. Whelan (London: Pitman), pp. 130–145.
    Google Scholar
  7. Gimbrone, M. A., Jr., Leapman, S., Cottran, R. S., and Folkman, J., 1972, Tumor dormancy in vivo by prevention of neovascularization. Journal of Experimental Medicine, 136, 261–276.
    Google Scholar
  8. Gospadarowicz, D., and Greenberg, D., 1981, The role of growth factors and extracellular matrices in the control of mammalian cell proliferation. The Biology of Normal Human Growth, edited by A. Aperia, K. Hall, A. Larsson, A. Zetterberg and R. Zetterstrom (New York: Raven Press), pp. 11–21.
    Google Scholar
  9. Gospodarowicz, D., Greenburg, G., Foidart, J. M., and Savion, N., 1981, The production and localization of laminin in cultured vascular and corneal endothelial cells. Journal of Cell Physiology, 107, 171–183.
    Google Scholar
  10. Humphreys, W. J., Sposlock, B. O., and Johnson, J. S., 1974, Critical point crying of ethanol infiltrated cryofractured biological specimens for scanning electron microscopy. Scanning Electron Microscopy/1974, 275–282.
    Google Scholar
  11. Jaffe, E. A., and Mosher, D. F., 1978, Synthesis of fibronectin by cultured human endothelial cells. Journal of Experimental Medicine, 147, 1779–1791.
    Google Scholar
  12. Kramer, R. H., Gonzalez, R., and Nicholson, G., 1980, Metastatic tumor cells adhere preferentially to the extracellular matrix underlying vascular endothelial cells. International Journal of Cancer, 26, 639–645.
    Google Scholar
  13. Kramer, R. H., Vogel, K. G., and Nicolson, G. L., 1982, Tumor cell interactions with vascular endothelial cells and their extracellular matrix. Interactions of Platelets and Tumor Cells, edited by G. A. Jamieson (New York: Liss), pp. 333–351.
    Google Scholar
  14. Lacovara, J., Cramer, E. B., and Quigley, J. P., 1984, Fibronectin enhancement of directed migration of B16 melanoma cells. Cancer Research, 44, 1657–1663.
    Google Scholar
  15. Leighton, J., Tchao, R., Stein, R., and Abaza, N., 1980, Histophysiologic gradient culture of stratified epithelium. Normal human tissue and cell culture. Methods in Cell Biology, Vol. 21B, edited by C. C. Harris, B. F. Trump, G. D. Stoner (New York: Academic Press), pp. 287–307.
    Google Scholar
  16. Leighton, J., Tchao, R., Nicosia, R. F., and Schroyens, W., 1983, Analysis of some tissue processes involved in the propagation of cancer using histophysiologic gradient culture. 13th International Cancer Congress, Part C, Biology of Cancer (2) (New York: Liss), pp. 51–62.
    Google Scholar
  17. Liotta, L., Rao, C. N., and Barsky, S. H., 1983, Tumor invasion and the extracellular matrix. Laboratory Investigation, 49, 636–649.
    Google Scholar
  18. Moscona, A. A., 1961, Rotation-mediated histogenetic aggregation of dissociated cells. A quantifiable approach to cell interaction in vitro. Experimental Cell Research, 22, 455–475.
    Google Scholar
  19. Nicolson, G. L., Izimura, T., Gonzalez, R., and Ruoslathl, E., 1981, The Role of fibronectin in the adhesion of metastatic melanoma cells to endothelial cells and their basal lamina. Experimental Cell Research, 135, 461–465.
    Google Scholar
  20. Nicosia, R. F., Tchao, R., and Leighton, J., 1982, Histotypic angiogenesis in vitro: light microscopic, ultrastructural and radioautographic studies. In Vitro, 18, 538–549.
    Google Scholar
  21. Nicosia, R. F., Tchao, R., and Leighton, J., 1983, Angiogenesis-dependent tumor spread in reinforced fibrin clot culture. Cancer Research, 43, 2159–2166.
    Google Scholar
  22. Reynolds, E. S., 1963, The use of lead citrate at high pH as an electron opaque stain in electron microscopy. Journal of Cell Biology, 17, 208–212.
    Google Scholar
  23. Tannock, I. F., 1983, Biology of tumor growth. Hospital Practice, 18, (No. 4), 81–93.
    Google Scholar
  24. Tchao, R., 1982, Novel forms of epithelial cell motility on collagen and on glass surfaces. Cell Motility, 4, 333–341
    Google Scholar
  25. Vlodavsky, I., and Gospodarowicz, D., 1981, Respective roles of laminin and fibronectin in adhesion of human carcinoma and sarcoma cells. Nature, 289, 304–306.
    Google Scholar

Download references