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ras-transformation of MDCK cells alters responses to phorbol ester without altering responses to bradykinin
S R Slivka1, C Godson, P A Insel
1Department of Pharmacology, University of California, San Diego, La Jolla 92093.
Abstract:
The results of studies to evaluate the hypothesis that the 21 kDa GTP-binding protein derived from the ras oncogene is involved in regulation and coupling of hormone receptors to phospholipase activity have thus far been inconsistent. We therefore examined the effect of H-ras transformation on basal, tumor-promoting phorbol ester (TPA)-stimulated, and bradykinin-mediated phospholipid hydrolysis in Madin Darby canine kidney cells (MDCK) by comparing H-ras-transformed MDCK cells (MDCK-RAS) to two non-transformed strains of MDCK cells (MDCK-D1 and MDCK-ATCC). In unstimulated MDCK-RAS, diacylglycerol (DAG), inositol phosphate accumulation, and choline phosphate release were increased while arachidonic acid and arachidonic acid metabolite (AA) release was not increased, suggesting that ras transformation increased phospholipase C activity. Protein kinase C (PK-C) activity was decreased, and specific binding of [3H]phorbol ester was reduced in MDCK-RAS relative to the non-transformed MDCK cells suggesting that elevated DAG may activate and thereby down-regulate PK-C. Consistent with this finding in MDCK-RAS, TPA-stimulated AA release and subsequent prostaglandin E2 production were decreased, while TPA-stimulated choline phosphate release was increased. Bradykinin receptor-stimulated phospholipid hydrolysis in MDCK-RAS was similar to that of non-transformed cells, suggesting that the ras-derived protein does not directly couple bradykinin receptors to phospholipases in MDCK cells. However, the ability of TPA-treatment to inhibit bradykinin-stimulated phosphoinositide hydrolysis and enhance bradykinin-stimulated AA release was attenuated in MDCK-RAS. Additionally, in MDCK-RAS the conversion of arachidonic acid to prostaglandin E2 was substantially reduced. We conclude that ras transformation of MDCK cells increases DAG levels, thereby activating and, in turn, down-regulating PK-C and certain responses to TPA. Since activation of PK-C may result in a variety of effects on signal transduction pathways, we propose that increased DAG and altered PK-C levels associated with ras transformation may account for the inconsistent effects previously observed in studies evaluating the effect of ras transformation on phospholipases and other signal transduction systems.
Insights
Ras oncogene transformation increases diacylglycerol (DAG) levels, leading to protein kinase C (PK-C) down-regulation. This explains inconsistent findings on ras transformation
Area of Science:
- Cell Biology
- Oncology
- Biochemistry
Background:
- The role of the ras oncogene's 21 kDa GTP-binding protein in hormone receptor signaling to phospholipase activity is unclear, with inconsistent study results.
- Madin Darby canine kidney (MDCK) cells provide a model to investigate cellular signaling pathways.
Purpose of the Study:
- To investigate the impact of H-ras transformation on phospholipid hydrolysis in MDCK cells.
- To compare basal, TPA-stimulated, and bradykinin-mediated signaling in H-ras-transformed (MDCK-RAS) versus non-transformed MDCK cells.
Main Methods:
- Comparison of MDCK-RAS cells with non-transformed MDCK-D1 and MDCK-ATCC cells.
- Measurement of diacylglycerol (DAG), inositol phosphate, choline phosphate, and arachidonic acid (AA) release.
- Assay of protein kinase C (PK-C) activity and [3H]phorbol ester binding.
Main Results:
- Ras transformation increased basal DAG and inositol phosphate accumulation, suggesting enhanced phospholipase C activity.
- PK-C activity and phorbol ester binding were reduced in MDCK-RAS cells, indicating DAG-mediated PK-C down-regulation.
- TPA-stimulated AA release and prostaglandin E2 production were decreased in MDCK-RAS cells, while choline phosphate release increased.
Conclusions:
- Ras transformation elevates DAG levels, leading to PK-C activation and subsequent down-regulation.
- Altered DAG and PK-C levels in ras-transformed cells likely contribute to inconsistent observations in signal transduction studies.
- Ras transformation does not appear to directly mediate bradykinin receptor coupling to phospholipases.