PubMed Health⌕ Search

PubMed · 8439187

[Scatter factor and cell motility].

Abstract

Cell dispersion and motility are thought to be important steps in the invasion of tumor cells. The molecular mechanisms responsible for the induction of cell dispersion and motility remain unclear. Several factors affecting cell motility have been discovered. Among them, scatter factor (SF), a mesenchymal cell-derived protein, dissociates epithelial cell colonies into individual cells and stimulates the migration of epithelial cells. Purified SF promotes the invasiveness into collagen matrices of a number of human carcinoma cell lines, suggesting that SF is involved in the invasion of tumor cells. Recently, SF has been found to be identical to hepatocyte growth factor. Moreover, the c-met proto-oncogene product (the c-met protein) possessing a tyrosine kinase domain was identified as a receptor for SF. Three possible mechanisms have been postulated in which a tumor cell might increase its invasive potential through enhanced motility via SF and its receptor. First, in a cell already expressing the c-met protein, an unexpressed SF gene might be activated, leading to synthesis and secretion of the factor which could then initiate active motility in an autocrine fashion. Second, the tumor cell expressing the c-met protein may release a factor that affects surrounding mesenchymal cells, promotes synthesis and release of SF. The tumor cell would be stimulated in a paracrine fashion. Finally, the tumor cell may be exposed to SF already released by surrounding cells but may not be able to respond because it is partially or completely deficient in the c-met protein. Induction and increased expression of the c-met gene would result in the invasive phenotype of the tumor cell. Studies on these possible mechanisms will be required to elucidate the involvement of SF in the invasion of tumor cells.

Explore related subjects

Keep this discovery

Explore connections, maps & timelines

BibTeXRIS

N Kitamura. 1993. [Scatter factor and cell motility].. https://pubmed.ncbi.nlm.nih.gov/8439187/

Cite the original work for its findings. Save a collection to share your selection of sources.

KEEP EXPLORING

Related citations

Oncogenic PIK3CA enhances collective migration of mammary epithelial cells through ERK wave propagation.

Oncogenic mutations of the PIK3CA gene, which encodes the catalytic subunit of the phosphatidylinositol 3-kinase (PI3K) enhance cell migration via ERK (ERK1 and ERK2, also known as MAPK3 and MAPK1, respectively) activation. We analyzed the factors regulating collective cell migration (CCM) of genome-edited MCF10A cell lines carrying hotspot PIK3CA mutations E545K or H1047R. H1047R enhanced CCM and promoted the propagation of waves of ERK activity backwards from the wound edge, whereas E545K impaired both coordinated CCM and ERK activity wave formation. The distance traveled by ERK activity waves correlated with directional persistence of migrating cells. Inhibition of cell contractility stimulated ERK wave propagation and efficient CCM of E545K cells but impaired ERK waves and CCM in control cells. Impaired ERK wave propagation was consistently associated with non-linear cell-cell junctions and the loss of polarized distribution of actomyosin. Taken together, these analyses suggest that polarized actomyosin contractility and pulsatile ERK activation must be constrained in the territory of a phase diagram compatible with mechanotransduction of ERK waves across cell-cell junctions to achieve highly coordinated and efficient collective migration.

Cell Movement↗

High glucose upregulates connective tissue growth factor expression in human vascular smooth muscle cells.

BACKGROUND: Connective tissue growth factor (CTGF) is a potent profibrotic factor, which is implicated in fibroblast proliferation, angiogenesis and extracellular matrix (ECM) synthesis. It is a downstream mediator of some of the effects of transforming growth factor beta (TGFbeta) and is potentially induced by hyperglycemia in human renal mesangial cells. However, whether high glucose could induce the CTGF expression in vascular smooth muscle cells (VSMCs) remains unknown. Therefore, this study was designed to test whether high glucose could regulate CTGF expression in human VSMC. The effect of modulating CTGF expression on VSMC proliferation and migration was further investigated. RESULTS: Expression of CTGF mRNA was up-regulated as early as 6 hours in cultured human VSMCs after exposed to high glucose condition, followed by ECM components (collagen type I and fibronectin) accumulation. The upregulation of CTGF mRNA appears to be TGFbeta-dependent since anti-TGFbeta antibody blocks the effect of high glucose on CTGF gene expression. A small interference RNA (siRNA) targeting CTGF mRNA (CTGF-siRNA) effectively suppressed CTGF up-regulation stimulated by high glucose up to 79% inhibition. As a consequence of decreased expression of CTGF gene, the deposition of ECM proteins in the VSMC was also declined. Moreover, CTGF-siRNA expressing vector partially inhibited the high glucose-induced VSMC proliferation and migration. CONCLUSION: Our data suggest that in the development of macrovascular complications in diabetes, CTGF might be an important factor involved in the patho-physiological responses to high glucose in human VSMCs. In addition, the modulatory effects of CTGF-siRNA during this process suggest that specific targeting CTGF by RNA interference could be useful in preventing intimal hyperplasia in diabetic macrovascular complications.

Cell Movement↗