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Scintigraphic imaging of oncogenes with antisense probes: does it make sense?
J L Urbain1, S K Shore, M C Vekemans
1Department of Diagnostic Imaging, Temple University Hospital and School of Medicine, Philadelphia, PA 19140, USA.
Abstract:
Based on the specificity of the Watson-Crick base pairing formation, antisense deoxyoligonucleotides have been used to inhibit the expression of oncogenes in various cancer cells. Activation of an oncogene by means of amplification leads to an increased, detectable amount of the mRNA transcript in the cytoplasm. The aim of this study was to demonstrate that cells which are expressing a particular mRNA transcript do preferentially and specifically retain the antisense probe targeting that mRNA. Using a mouse plasmacytoma cell line (MOPC315) which produces high levels of IgA heavy chain mRNA, a control mouse pre B cell line (7OZ/3B), a human mammary cell line (MCF7) which expresses the erbB2 or neu oncogene, MOPC315 cells as neu-negative controls, and antisense DNA oligonucleotides complementary to the 5' region of the mRNAs and the sense sequence, we have shown that there is a preferential, specific retention of the IgA and neu antisense sequence in MOPC315 and MCF7 cells, respectively. We have further demonstrated that this retention is time and concentration dependent with a maximum at 24 h. We conclude that cancer cells which express a particular oncogene are suitable targets for radiolabeled antisense deoxyoligonucleotides directed toward the oncogene transcript. This work and recent developments in the antisense field lead to the expectation of a new class of radiopharmaceuticals with unique specificity.
Insights
Antisense deoxyoligonucleotides specifically target and are retained by cancer cells expressing specific oncogene messenger RNA (mRNA). This specificity suggests potential for developing targeted radiopharmaceuticals for cancer therapy.
Area of Science:
- Molecular Biology
- Oncology
- Antisense Technology
Background:
- Antisense deoxyoligonucleotides leverage Watson-Crick base pairing to inhibit oncogene expression.
- Oncogene activation leads to increased mRNA transcripts, detectable in the cytoplasm.
Purpose of the Study:
- To demonstrate preferential and specific retention of antisense probes in cells expressing target mRNA.
- To evaluate the potential of cancer cells as targets for radiolabeled antisense deoxyoligonucleotides.
Main Methods:
- Utilized mouse plasmacytoma (MOPC315) and human mammary (MCF7) cell lines with specific mRNA expression.
- Employed antisense DNA oligonucleotides complementary to oncogene mRNA 5' regions.
- Assessed retention of antisense probes in cancer cells versus control cell lines.
Main Results:
- Demonstrated preferential and specific retention of IgA and neu antisense sequences in MOPC315 and MCF7 cells, respectively.
- Showed that antisense probe retention is time and concentration-dependent, peaking at 24 hours.
Conclusions:
- Cancer cells expressing specific oncogenes are suitable targets for radiolabeled antisense deoxyoligonucleotides.
- This specificity supports the development of a novel class of radiopharmaceuticals for targeted cancer therapy.