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Development of the basal lamina in xenografted human carcinomas: an ultrastructural and immunohistochemical study

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The development of the basal lamina (BL), the key structure of the basement membrane (BM), was investigated in three xenografted human carcinomas of the sigmoid colon (CA 1), the lung (L 261), and the hypopharynx (H-Stg 1) following heterotransplantation to athymic mice. The study involved the use of electron microscopy and indirect immunofluorescence techniques employing highly specific antibodies against the intrinsic BL components, heparan sulfate proteoglycan, laminin and type-IV collagen. Following transplantation, the extracellular matrix material of the transplanted tumors decomposed and was phagocytozed by invading macrophages within 1 to 2 days. During this stage, no specific binding of the applied antibodies to BL components could be detected within the xenografts. Following the ingrowth of host-derived connective tissue between days 2 to 6, small fluorescence-positive granules appeared within the cytoplasm and around those tumor cells that were located close to the invaded strands of connective tissue. Ultrastructurally, typical secretory granules were detectable in the cytoplasm of many xenografted carcinoma cells. Thereafter, a tannic acid-positive, patchy material appeared in the extracellular space of CA 1 and L 261 and aggregated to form small fragments of a discontinuous BL. In the H-Stg 1 xenografts, this material assembled to form continuous mono-, bi- and multilayered structures. Large amounts of excess BL material remained accumulated in the L 261 and H-Stg 1 xenografts until the end of the observation period (day 24). These findings reveal that discontinuities of the BL occur independent of the active invasion processes of tumor cells, since xenografted human carcinomas neither grow invasively nor metastasize in nude mice. Moreover, they confirm that these discontinuities are not caused by a quantitatively insufficient production of BL material, but rather arise from qualitative imbalances of the composition of the synthesized BL material.

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References

  • d'Ardenne AJD (1989) Use of basement membrane markers in tumour diagnosis. J Clin Pathol 42: 449–457

    Google Scholar 

  • Banerjee SD, Cohn RH, Bernfield MR (1977) Basal lamina of embryonic salivary epithelia. Production by the epithelium and role in maintaining lobular morphology. J Cell Biol 73: 445–463

    Google Scholar 

  • Barrach HJ, Grundmann K, Hinz N, Felies A (1980) Immunofluorescent microscopic investigations of intercellular substances during limb development. In: Merker HJ, Nau H, Neubert D (eds) Teratology of the limbs. Gruyter, Berlin, pp 273–293

    Google Scholar 

  • Barrach HJ, Grundmann K, Hinz N, Felies A (1981) Comparison of the differentiation of muscle and connective tissue of mouse limb buds in culture and in vivo: a morphological study by indirect immunofluorescence. In: Neubert D, Merker HJ (eds) Culture techniques. Gruyter, Berlin, pp 135–159

    Google Scholar 

  • Bosman FT, Havenith M, Cleutjens JPM (1985) Basement membranes in cancer. Ultrastruct Pathol 8: 291–307

    Google Scholar 

  • Cleutjens JPM, Havenith MG, Beek C, Vallinga M, Kate JT, Bosman FT (1990) Origin of basement membrane type IV collagen in xenografted human epithelial tumor cell lines. Am J Pathol 136: 1165–1172

    Google Scholar 

  • Csato W, Merker HJ (1983) Production and formation of the basement membrane in embryonic tissues of the mouse. Cell Tissue Res 228: 85–98

    Google Scholar 

  • Damjanov I, Damjanov N, Knowles BB, Engvall E (1985) Origin of laminin in the extracellular matrix of human tumor xenografts in nude mice. Virchows Arch [B] 49: 45–52

    Google Scholar 

  • David G, Bernfield M (1981) Type I collagen reduces the degradation of basal lamina proteoglycan by mammary epithelial cells. J Cell Biol 91: 281–286

    Google Scholar 

  • David G, Bernfield M (1982) Defective basal lamina formation by transformed mammary epithelial cells: a reduced effect of collagen on basal lamina (heparan sulfate-rich) proteoglycan degradation. J Cell Physiol 110: 56–62

    Google Scholar 

  • David G, Van Den Berghe H (1983) Transformed mouse mammary epithelial cells synthesize undersulfated basement membrane proteoglycan. J Biol Chem 258: 7338–7344

    Google Scholar 

  • Duprez A, Guerret S, Vignaud JM, Plenat F, Hartmann D, Grimaud JA (1987) The interstitial matrix of human carcinomas and sarcomas transplanted to the nude mouse: immunolocalization of some human and murine components. Cell Mol Biol 33: 647–654

    Google Scholar 

  • Frei JV (1962) The fine structure of the basement membrane in epidermal tumors. J Cell Biol 15: 335–342

    Google Scholar 

  • Gosslau B, Barrach HJ (1979) Enzyme-linked immunosorbent microassay for quantification of specific antibodies to collagen type I, II, III. J Immunol Methods 29: 71–77

    Google Scholar 

  • Gusterson BA, Warburton MJ, Mitchell D, Kraft N, Hancock WW (1984) Invading squamous cell carcinoma can retain a basal lamina. An immunohistochemical study using a monoclonal antibody to type IV collagen. Lab Invest 51: 82–87

    Google Scholar 

  • Hassell JR, Robey PG, Barrach HJ, Wilczek J, Rennard SI, Martin GR (1980) Isolation of a heparan sulfate-containing proteoglycan from basement membrane. Proc Natl Acad Sci USA 77: 4494–4498

    Google Scholar 

  • Ingber DE, Madri JA, Jamieson JD (1981) Role of basal lamina in neoplastic disorganization of tissue architecture. Proc Natl Acad Sci USA 78: 3901–3905

    Google Scholar 

  • Ingber DE, Madri JA, Jamieson JD (1986) Basement membrane as a spatial organizer of polarized epithelia. Am J Pathol 122: 129–139

    Google Scholar 

  • Jao W, Keh PC, Swerdlow MA (1976) Ultrastructure of the basal cell adenoma of parotid gland. Cancer 37: 1322–1333

    Google Scholar 

  • Karst W, Merker HJ (1988) The differentiation behaviour of MDCK cells grown on matrix components and in collagen gels. Cell Differ 22: 211–224

    Google Scholar 

  • Köpf-Maier P, Jäckel M (1988) Proliferation behavior of xenografted human tumors: a flow cytometric study. Anticancer Res 8: 1355–1360

    Google Scholar 

  • Köpf-Maier P, Kestenbach U (1989) Host-supplied connective tissue as a guide for proliferating tumor cells in human tumor xenografts. Acta Anat 135: 289–295

    Google Scholar 

  • Leblond CP, Inoue S (1989) Structure, composition, and assembly of basement membrane. Am J Anat 185: 367–390

    Google Scholar 

  • Leblond CP, Laurie GW, Wright GM (1982) Comparison of the intracellular distribution of precursors of type I and IV collagens. In: Kühn K, Schoene H, Timpl R (eds) New trends in basement membrane research. Raven Press, New York, pp 163–185

    Google Scholar 

  • Liotta LA (1984) Tumor invasion and metastases: role of the basement membrane. Am J Pathol 117: 339–348

    Google Scholar 

  • Liotta LA, Tryggvason K, Garbisa S, Hart I, Foltz CM, Shafie S (1980) Metastatic potential correlates with enzymatic degradation of basement membrane collagen. Nature 284: 67–68

    Google Scholar 

  • Liotta LA, Thorgeirsson UP, Garbisa S (1982) Role of collagenases in tumor cell invasion. Cancer Metastasis Rev 1: 277–297

    Google Scholar 

  • Mangakis N, Sehrt B (1986) Die prospektive Potenz kombinierter histologischer, histochemischer und biochemischer Untersuchungen bei der chronisch-fibrösen Mastopathie. Z Klin Med 41: 1211–1214

    Google Scholar 

  • Martinez-Hernandez A, Amenta PS (1983) The basement membrane in pathology. Lab Invest 48: 656–677

    Google Scholar 

  • Merker HJ (1987) Production and formation of the basal lamina. In: Wolff JR, Sievers J (eds) Mesenchymal-epithelial interactions in neural development. Springer, Berlin Heidelberg New York, pp 53–64

    Google Scholar 

  • Merker HJ, Bremer D, Barrach HJ, Gossrau R (1987) The basement membrane of the persisting maternal blood vessels in the placenta of Callithrix jacchus. Anat Embryol 176: 87–97

    Google Scholar 

  • Pitelka DR, Hamamoto ST, Taggart BN (1980) Basal lamina and tissue recognition in malignant mammary tumors. Cancer Res 40: 1600–1611

    Google Scholar 

  • Pucci Minafra I, Minafra S, Tomasino RM, Sciarrino S, Tinervia R (1986) Collagen changes in the ductal infiltrating (scirrhous) carcinoma of the human breast. A possible role played by type I trimer collagen on the invasive growth. J Submicrosc Cytol 18: 795–805

    Google Scholar 

  • Reynolds ES (1963) The use of lead citrate at high pH as an electron-opaque stain in electron microscopy. J Cell Biol 17: 208–212

    Google Scholar 

  • Richards CJ, Furness PN (1990) Basement membrane continuity in benign, premalignant and malignant epithelial conditions of the uterine cervix. Histopathology 16: 47–52

    Google Scholar 

  • Romanos G, Schröter-Kermani C, Hinz N, Bernimoulin JP (1991) Immunohistochemical distribution of the collagen types IV, V, VI and glycoprotein laminin in the healthy rat, marmoset (Callithrix jacchus) and human gingivae. Matrix 11: 125–132

    Google Scholar 

  • Sakr WA, Zarbo RJ, Jacobs JF, Crissman JD (1987) Distribution of basement membrane in squamous cell carcinoma of the head and neck. Hum Pathol 18: 1043–1050

    Google Scholar 

  • Sinha AA, Gleason DF, Wilson MJ, Staley NA, Furcht LT, Palm SL, Reddy PK, Sibley RK, Martinez-Hernandez A (1989) Immunohistochemical localization of laminin in the basement membrane of normal, hyperplastic, and neoplastic human prostate. Prostate 15: 299–313

    Google Scholar 

  • Thorgeirsson UP, Turpeenniemi-Hujanen T, Liotta LA (1985) Cancer cells, components of basement membranes, and proteolytic enzymes. Int Rev Exp Pathol 27: 203–234

    Google Scholar 

  • Tsubura A, Shikata N, Inui T, Morii S, Hatano T, Oikawa T, Matsuzawa A (1988) Immunohistochemical localization of myoepithelial cells and basement membrane in normal, benign and malignant human breast lesions. Virchows Arch [A] 413: 133–139

    Google Scholar 

  • Van Cauwenberge D, Pierard GE, Foidart JM, Lapière CM (1983) Immunohistochemical localization of laminin, type IV and type V collagen in basal cell carcinoma. Br J Dermatol 108: 163–170

    Google Scholar 

  • Van Den Hooff A (1989) An essay on basement membranes and their involvement in cancer. Persp Biol Med 32: 401–413

    Google Scholar 

  • Vracko B (1974) Basal lamina scaffold—anatomy and significance for maintenance of orderly tissue structure. Am J Pathol 77: 314–344

    Google Scholar 

  • Warburton MJ, Ferns SA, Kimbell R, Rudland PS, Monaghan P, Gusterson BA (1987) Loss of basement membrane deposits and development of invasive potential by virally-transformed rat mammary cells are independent of collagenase production. Int J Cancer 40: 270–277

    Google Scholar 

  • Willebrand D, Bosman FT, De Goeij AFPM (1986) Patterns of basement membrane deposition in benign and malignant breast tumours. Histopathology 10: 1231–1241

    Google Scholar 

  • Xu D, Schröter-Kermani C, Hinz N, Merker HJ (1990) Immunofluorescence-microscopic localization of collagen type IV and VI, laminin and nidogen in the livers of Callithrix jacchus during pre- and postnatal development. Acta Anat 138: 212–219

    Google Scholar 

  • Zuk RJ, Baithun SI, Martin JE, Cox EL, Revell PA (1989) The immunocytochemical demonstration of basement membrane deposition in transitional cell carcinoma of bladder. Virchows Arch [A] 414: 447–452

    Google Scholar 

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Köpf-Maier, P., Merker, H.J. Development of the basal lamina in xenografted human carcinomas: an ultrastructural and immunohistochemical study. Cell Tissue Res 266, 563–578 (1991). https://doi.org/10.1007/BF00318598

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