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c-myc antisense oligodeoxyribonucleotides inhibit proliferation of non-small cell lung cancer
L A Robinson1, L J Smith, M P Fontaine
1Division of Cardiovascular and Thoracic Surgery, University of South Florida, H. Lee Moffitt Cancer Center and Research Institute, Tampa 33612-9497, USA.
Background:
Mutation or deregulation of certain cellular genes (protooncogenes) results in expression of proteins that appear to promote malignant transformation. Human non-small cell lung cancer has been documented to express many such oncogenes including c-myc, bcl-2, and mutant p53. Antisense oligodeoxyribonucleotides (ASODN) complementary to these oncogenes were tested on three non-small cell lung cancer cell lines for their efficacy in inhibiting cellular proliferation and oncoprotein expression.
Methods:
Established non-small cell lung cancer cell lines A427, SKMES-1, and A549 were grown in the presence of ASODNs complementary to messenger RNA of c-myc, bcl-2, p53, or controls at 1 mumol/L or 10 mumol/L concentrations for 4 or 10 days. Cellular proliferation was measured by tritiated thymidine uptake. Flow cytometry was used to quantitate oncoprotein expression. Intranuclear ASODN uptake was documented by fluoresceine-tagged ASODNs.
Results:
Fluoresceine-tagged ASODNs were readily taken up by all cell lines. c-myc, as well as bcl-2 and p53 ASODNs, were found to inhibit proliferation of all cell lines significantly compared with controls, most notably in line A549 (40.1% +/- 7.1% of control, p = 0.000 with c-myc ASODN). Antisense c-myc reduced c-myc protein by as much as 71.3% in A427, although protein levels were only minimally reduced in the viable cells of the other lines.
Conclusions:
c-myc ASODNs inhibit proliferation of non-small cell lung cancer cell lines as well as reduce c-myc protein expression. Antisense bcl-2 and p53 also cause similar growth inhibition. These results suggest a critical role for activation of these oncogenes in the growth of cultured lung cancer cells. Furthermore, the efficacy and rapid cellular uptake of ASODNs support the potential role of antisense targeting of oncogene expression for pharmacologic control of non-small cell lung cancer.
Insights
Antisense oligodeoxyribonucleotides (ASODN) targeting oncogenes like c-myc significantly inhibited non-small cell lung cancer cell proliferation and reduced oncoprotein expression. This demonstrates the potential of ASODN therapy for lung cancer treatment.
Area of Science:
- Oncology
- Molecular Biology
- Pharmacology
Background:
- Protooncogene activation promotes cancer development.
- Non-small cell lung cancer (NSCLC) exhibits overexpression of oncogenes such as c-myc, bcl-2, and mutant p53.
- Antisense oligodeoxyribonucleotides (ASODN) offer a targeted approach to inhibit oncogene expression.
Purpose of the Study:
- To evaluate the efficacy of ASODNs against c-myc, bcl-2, and p53 oncogenes in NSCLC cell lines.
- To assess the impact of ASODNs on NSCLC cellular proliferation and oncoprotein levels.
- To determine the potential of ASODN therapy for managing NSCLC.
Main Methods:
- Three NSCLC cell lines (A427, SKMES-1, A549) were treated with ASODNs targeting c-myc, bcl-2, p53, or control sequences.
- Cellular proliferation was quantified using tritiated thymidine uptake.
- Oncoprotein expression was measured by flow cytometry.
- Intranuclear ASODN uptake was confirmed using fluoresceine-tagged ASODNs.
Main Results:
- Fluoresceine-tagged ASODNs were effectively internalized by all tested NSCLC cell lines.
- ASODNs targeting c-myc, bcl-2, and p53 significantly inhibited proliferation across all cell lines, with notable effects in A549 cells.
- Antisense c-myc reduced c-myc protein levels by up to 71.3% in A427 cells.
Conclusions:
- ASODNs targeting c-myc effectively inhibit proliferation and reduce c-myc protein expression in NSCLC cell lines.
- ASODNs against bcl-2 and p53 also demonstrated significant growth inhibition.
- These findings highlight the critical role of activated oncogenes in NSCLC growth and support ASODN therapy as a potential treatment strategy.
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