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R Warn

Publications and source records attributed to R Warn.

8 recordsLinked to original sources

HGF/SF induces mesothelial cell migration and proliferation by autocrine and paracrine pathways.

Mesothelial repair differs from that of other epithelial-like surfaces as healing does not occur solely by centripetal in-growth of cells as a sheet from the wound margins. Mesothelial cells lose their cell-cell junctions, divide, and adopt a fibroblast-like morphology while scattering across and covering the wound surface. These features are consistent with a cellular response to hepatocyte growth factor/scatter factor (HGF/SF). In this study, we examined the ability of mesothelial cells to secrete HGF/SF and investigated its possible role as an autocrine regulator of mesothelial cell motility and proliferation. We found that human primary mesothelial cells expressed HGF/SF mRNA and secreted active HGF/SF into conditioned medium as determined by ELISA and in a scattering bioassay. These cells also expressed the HGF/SF receptor, Met, as shown by RT-PCR and by Western blot analysis and immunofluorescence. Incubation of mesothelial cells with neutralizing antibodies to HGF/SF decreased cell migration to 25% of controls, whereas addition of HGF/SF disrupted cell-cell junctions and induced scattering and enhanced mesothelial cell migration. Furthermore, HGF/SF showed a small but significant mitogenic effect on all mesothelial cell lines examined. In conclusion, HGF/SF is produced by mesothelial cells and induces both motility and proliferation of these cells. These data are consistent with HGF/SF playing an autocrine role in mesothelial healing.

Antineoplastic Agents↗

Growth factors. A scattering of factors.

Hepatocyte growth factor/scatter factor is a multifunctional growth factor with varied properties: more and more polypeptide factors are being discovered that share these characteristics.

Animals↗

Cytoskeletal changes associated with cell motility.

This chapter reviews various aspects of changes in cytoskeletal organization which occur upon activating a highly motile cell phenotype. The first of these relates to the rapid formation of F-actin-rich ruffles on the apical cell surfaces following the addition of one of several motility factors. In a number of aspects these ruffles resemble leading edge lamellipodia. The ruffles form upon ligand binding and, at least for one cytokine, the receptors become associated with the ruffles. For several cytokines the ruffles are circular and in all cases they are associated with much increased pinocytosis. The possible significance is considered of these very early markers of a motile cell phenotype. A second topic covered is the role of microtubules (MTs) in maintaining cell polarity in some cell types but not others. The micro-injection of biotin-tubulin into cells has provided a valuable marker of MT turnover. Using this method it has been found that the microtubule network in secondary chick heart fibroblasts (2 degrees CHFs), where MTs are required to maintain a polarized motility, does not turn over significantly more slowly than in 1 degree CHFs which do not require an intact MT network for locomotion. In both cases the MT network turns over very quickly and no sub-population of longer-lived MTs has been found. In contrast, in motile epithelial (PtK2) cells, a sub-population of longer-lived microtubules has been identified and these appear to maintain the long cell processes.

Animals↗

Circular ruffle formation and closure lead to macropinocytosis in hepatocyte growth factor/scatter factor-treated cells.

Treatment with hepatocyte growth factor/scatter factor (HGF/SF) rapidly induced the formation of conspicuous circular ruffles on the apical surfaces of two kidney cell lines, MDCK and PtK2. The ruffles were found to contain significant amounts of F-actin and myosin as judged by immunofluorescence microscopy. Time-lapse photomicroscopy demonstrated that the ruffles constrict, closing over, and were followed by the formation of phase bright structures. That these structures were macropinocytotic vesicles was confirmed using fluorescein isothiocyanate (FITC)-dextran as a marker for fluid uptake. It is hypothesized that the constriction of the ruffles followed by membrane fusion causes the vesicles to form. Treatment with suramin blocked both circular ruffle formation and scattering, suggesting that ligand binding was the causal agent for ruffle formation. The drugs amiloride and SITS (4-acetamido-4'-isothiocyanatostilbene-2,2'-disulfonic acid) also completely inhibited ruffle formation, suggesting that ion transport was an early consequence of HGF/SF binding and that these transport effects had a major role in the cytoskeletal changes leading to circular ruffle formation. The appearance of macropinocytotic vesicles was also blocked by amiloride treatment. Surprisingly though, subsequent scattering was not blocked by amiloride treatment, although suramin and SITS both entirely inhibited scattering.

3T3 Cells↗

Restroation of the capacity to form pole cells in u.v.-irradiated Drosophila embryos.

Injection of pole plasm into u.v.-irradiated posterior poles of early Drosophila embryos leads to the restoration of the capacity to form pole cells in nearly half of the recipients. The effect is specific, since cytoplasm from the anterior tip has no such result. In most cases only a small number (between 1 and 5) of discrete pole cells are formed. However, a large number of pole cell fragments with or without nuclei occur. Occasionally pole cells were formed outside the area of the originally irradiated pole plasm. This happened when material was injected more anteriorly than usual. Thus polar cytoplasm contains some factor(s) necessary for the formation of pole cells.

Animals↗