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Modulation of platelet-derived growth factor-beta mRNA expression and cell growth in a human mesothelioma cell line
T Dorai1, H Kobayashi, J F Holland
1Department of Medicine, Mount Sinai School of Medicine, New York, New York 10029.
Abstract:
Malignant mesothelioma in humans is a rare disease, but it has recently received much public attention and concern because of its strong relationship to exposure to asbestos. We have found overexpression of the gene for platelet-derived growth factor (PDGF)-beta in several mesothelioma xenografts in nude mice. Because some mesothelioma cell lines such as VAMT-1 overexpress PDGF-beta and PDGF-beta receptors, it was considered that an autocrine loop involving PDGF-beta and its receptor may contribute to the malignant phenotype of these cells. To investigate this possibility we have developed a hammerhead ribozyme against PDGF-beta mRNA. This c-sis ribozyme was able to cleave an artificial PDGF-beta RNA substrate in a cell-free system. Transduction of this ribozyme, with the aid of a constitutive expression vector, in the VAMT-1 cell line led to a decrease in the PDGF-beta mRNA level. The ribozyme expressed in these cells was functional in cleaving the artificial RNA substrate in vitro. Ribonuclease protection assays using the ribozyme and whole PDGF-beta mRNA showed that this ribozyme was capable of cleaving the whole mRNA in vivo. Transfectant clones containing the wild-type ribozyme showed decreased cell growth, in parallel with the decreases in PDGF-beta expression. The disabled ribozyme was inactive in the cleavage reaction in vitro and in decreasing the cell growth rate in vivo. Our data indicate that in some mesothelioma cells the PDGF-beta autocrine loop may be functional and transduction of the PDGF-beta ribozyme leads to a significant reduction of cell growth. The c-sis ribozyme may be applicable in the treatment of patients with malignant mesothelioma.
Insights
Researchers developed a ribozyme to target platelet-derived growth factor (PDGF)-beta mRNA in malignant mesothelioma cells. This approach reduced PDGF-beta expression and significantly inhibited cancer cell growth, suggesting a potential new therapy.
Area of Science:
- Oncology
- Molecular Biology
- Gene Therapy
Background:
- Malignant mesothelioma is a rare cancer linked to asbestos exposure.
- Overexpression of platelet-derived growth factor (PDGF)-beta and its receptors is observed in mesothelioma.
- An autocrine loop involving PDGF-beta may drive mesothelioma cell malignancy.
Purpose of the Study:
- To investigate the role of the PDGF-beta autocrine loop in mesothelioma.
- To develop and test a ribozyme targeting PDGF-beta mRNA for therapeutic potential.
Main Methods:
- Development of a hammerhead ribozyme targeting PDGF-beta mRNA.
- Transduction of the ribozyme into VAMT-1 mesothelioma cells using a constitutive expression vector.
- Assessment of ribozyme activity via cell-free assays, in vitro cleavage, and in vivo mRNA degradation.
- Evaluation of cell growth inhibition in transfectant clones.
Main Results:
- The developed ribozyme effectively cleaved PDGF-beta mRNA in cell-free systems and in vivo.
- Transduction of the functional ribozyme decreased PDGF-beta mRNA levels in VAMT-1 cells.
- Mesothelioma cell lines expressing the ribozyme exhibited reduced cell growth.
- A disabled ribozyme control showed no significant effect on mRNA levels or cell growth.
Conclusions:
- The PDGF-beta autocrine loop is functional in some malignant mesothelioma cells.
- Targeting PDGF-beta mRNA with a ribozyme significantly reduces mesothelioma cell proliferation.
- This PDGF-beta ribozyme shows promise as a potential therapeutic agent for malignant mesothelioma.
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