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Biomedical subjects

P Inki

Publications and source records attributed to P Inki.

6 recordsLinked to original sources

Expression of syndecan in transformed mouse keratinocytes.

BACKGROUND: Malignant transformation is frequently associated with altered behavior of cells, a phenomenon that also suggests changes in cell-matrix interactions. We have studied expression of syndecan, a cell surface proteoglycan that binds extracellular matrix components and growth factors, in various chemically transformed mouse keratinocyte cell lines that differ in their morphology and tumorigenicity. EXPERIMENTAL DESIGN: A monoclonal antibody, specific for mouse syndecan, and a cDNA clone for mouse syndecan, were used to detect syndecan in seven different keratinocyte cell lines. The glycosaminoglycan composition of syndecan was studied using differential digestions of heparan sulfate and chondroitin sulfate chains. RESULTS: In general, the tumorigenic cells were found to express lower amounts of syndecan, both at protein and mRNA levels, than the nontumorigenic cells. The most tumorigenic cell line CarC revealed barely detectable syndecan expression. Also, molecular polymorphism of syndecan was observed, as three forms of syndecan with different molecular weights appeared on the surfaces of different keratinocytes. The highly tumorigenic cells, that expressed low amounts of syndecan, expressed syndecan with the largest molecular weight. The different molecular weights were shown to reflect an increased amount of both heparan and chondroitin sulfate chains attached to the core protein. An increased shedding of syndecan ectodomain from the membrane-associated domain was observed in cells that express high amounts of mutated Ha-ras p21. CONCLUSIONS: The results suggest, that transformed epithelial cells can modulate the appearance of syndecan on the cell-surface by at least two ways: (a) by altering its glycosylation or (b) by increasing its shedding from the cell surface. These modulations, together with overall suppression of syndecan expression, could be associated with malignant transformation of keratinocytes.

Animals

Syndecan in carcinomas produced from transformed epithelial cells in nude mice.

Expression of syndecan, a cell surface proteoglycan, was studied in carcinomas induced by implanting chemically transformed keratinocytes and mammary epithelial cells into nude mice. By immunohistochemistry and in situ hybridization, syndecan was localized in keratinizing cells within moderate- to well-differentiated squamous cell carcinomas in a pattern resembling that of normal epidermis, whereas almost total loss of expression was detected in poorly-differentiated areas within these tumors. In anaplastic spindle cell carcinomas, syndecan expression was barely detectable. In biphasic tumors, induced by mammary epithelial cells, and consisting of cysts overlaying an adenocarcinoma, syndecan was unquely localized to differentiated epithelial structures such as secretory epithelial lining of the cysts as well as aberrant glands and ducts within the carcinoma. Based on the expression pattern of syndecan in the tumors studied, we conclude that the expression of this developmentally regulated molecule is associated with epithelial differentiation also during neoplastic growth.

Animals

Immunohistochemical localization of syndecan in mouse skin tumors induced by UV irradiation. Loss of expression associated with malignant transformation.

Immunoreactivity for syndecan, a cell surface proteoglycan, which binds extracellular matrix molecules and growth factors, was studied in hairless (hr/hr) mice exposed to UV-A and UV-B irradiation. Positive staining was observed at the surface of normal epidermal cells as well as in the dermal abortive hair follicle cysts characteristic to this mouse strain. Early reaction to UV-irradiation showing hyperplastic epidermis with slight cellular atypia showed also positive, although reduced, staining of epidermal cell surfaces. Specimens with severe dysplasia showed weak staining in the granular cell layer, whereas the basal cell layer was negative. In papillomas and keratoacanthomas, immunoreactivity for syndecan was observed in the benign hyperplastic epidermal cells as well as in the proliferating epidermal cells of the horn cysts. Malignant transformation of epithelium, expressed as the formation of early invasive and anaplastic squamous cell carcinomas, was uniformly associated with loss of syndecan staining. These results are consistent with the previous findings of reduced expression of syndecan associated with malignant transformation of cultured epithelial cells, but also suggest an important role for syndecan in the maintenance of normal tissue architecture and differentiation pattern of the skin.

Animals

Binding of human syndecan to extracellular matrix proteins.

We have isolated a cell surface proteoglycan from a human mammary cell line (HBL-100). This proteoglycan was found to be a human equivalent to mouse syndecan, because (i) it has identical biochemical properties with murine syndecan, including size, charge, buoyant density, and glycosaminoglycan composition, (ii) its core protein has identical size with murine syndecan as studied by sodium dodecyl sulfate-polyacrylamide gel electrophoresis, and (iii) the core protein is detected with anti-peptide antibody for the cytoplasmic domain of syndecan. HBL-100 cells also showed high expression of syndecan mRNAs, when probed with mouse syndecan cDNA. The ectodomain of the human syndecan revealed binding to type I collagen fibrils and fibronectin but not to laminin, duplicating the binding properties of murine syndecan. Very interestingly, syndecan did not bind to vitronectin, which is known to contain a heparin binding domain and is one of the major adhesive factors of serum for cultured cells. Syndecans are known to change their glycosaminoglycan composition yielding tissue-type specific polymorphic forms of syndecan (Sanderson, R., and Bernfield, M. (1988) Proc. Natl. Acad. Sci. U. S.A. 85, 9562-9566). The members of this family may thus represent a collection of structurally related matrix receptors that could differ in their interactions due to variation of the ectodomain glycosylation.

Blood Proteins