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Published on: July 21, 2018
Inhibition of human non-small cell lung tumors by a c-Met antisense/U6 expression plasmid strategy
L P Stabile1, J S Lyker, L Huang
1Department of Pharmacology, University of Pittsburgh, Pittsburgh, PA 15261, USA.
Abstract:
c-Met is a receptor tyrosine kinase whose activation by hepatocyte growth factor (HGF) can lead to transformation and tumorigenicity in a variety of tumors. We investigated the effects of suppressing c-Met protein expression in human non-small cell lung tumors. Expression plasmids containing either sense or antisense sequences of the human c-met gene were constructed under control of the U6 snRNA promoter. A U6 control plasmid was also constructed that did not contain any c-met sequence. These constructs have been examined both in vitro and in an in vivo tumor xenograft model. The c-Met protein was downregulated by 50-60% in two lung cancer cell lines that were transiently transfected with the c-Met antisense versus U6 control. Tumor cells treated with the c-Met antisense construct also show decreased phosphorylation of c-Met and MAP kinase when exposed to exogenous HGF. Lung cancer cells were grown as xenografts in mice and treated by intratumoral liposome-mediated transfer of the c-Met sense, antisense or U6 control plasmids. The treatment of lung tumors with c-Met antisense versus U6 control plasmid resulted in the downregulation of the c-Met protein expression, a 50% decrease in tumor growth over a 5-week treatment period and an increased rate of apoptosis. These results suggest that targeting the HGF/c-Met pathway may be an effective novel strategy to treat lung cancer patients.
Insights
Suppressing c-Met protein expression in non-small cell lung cancer using antisense technology significantly reduced tumor growth and increased apoptosis. Targeting the HGF/c-Met pathway offers a novel therapeutic strategy for lung cancer.
Area of Science:
- Oncology
- Molecular Biology
- Gene Therapy
Background:
- c-Met, a receptor tyrosine kinase, is activated by hepatocyte growth factor (HGF), promoting tumor growth and transformation.
- Aberrant HGF/c-Met signaling is implicated in various cancers, including non-small cell lung cancer (NSCLC).
Purpose of the Study:
- To investigate the efficacy of suppressing c-Met protein expression in human non-small cell lung tumors.
- To evaluate the therapeutic potential of targeting the HGF/c-Met pathway in NSCLC.
Main Methods:
- Construction of expression plasmids with sense or antisense sequences of the human c-met gene under the U6 snRNA promoter.
- In vitro transfection of lung cancer cell lines and in vivo studies using a tumor xenograft model in mice.
- Liposome-mediated intratumoral transfer of c-Met sense, antisense, or control plasmids.
Main Results:
- c-Met protein was downregulated by 50-60% in lung cancer cells transfected with c-Met antisense plasmid.
- Antisense treatment decreased phosphorylation of c-Met and MAP kinase upon HGF stimulation.
- In vivo, c-Met antisense treatment resulted in a 50% decrease in tumor growth and increased apoptosis over 5 weeks.
Conclusions:
- Suppression of c-Met protein expression via antisense technology effectively inhibits NSCLC growth.
- Targeting the HGF/c-Met pathway represents a promising novel therapeutic strategy for lung cancer treatment.

