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Molecular and cellular characterization of baboon C-Raf as a target for antiproliferative effects of antisense
S Mandiyan1, C Schumacher, C Cioffi
1CIBA Pharmaceuticals Division, Summit, New Jersey, USA.
Abstract:
C-Raf is a an essential member of the growth factor-ras pathway and a target for intervention strategies aimed at blocking cell proliferative responses. Excessive smooth muscle proliferation is considered one cause of the arterial closure in restenosis. Because of the similarity to the human cardiovascular system, a useful current animal model of the disease is a baboon model. As a foundation for animal studies employing antisense oligonucleotides, efforts were made to characterize the molecular and cellular biology of the baboon system. The nucleotide sequence of baboon c-raf cDNA was determined. Antisense phosphorothioate oligonucleotides specific to the 3'-UTR of c-raf mRNA from human and baboon were compared using primary baboon smooth muscle cells in culture. A particular human antisense oligonucleotide, referred to as ISIS 5132, was different by only 2 of 20 bases from the baboon sequence. The corresponding baboon antisense oligonucleotide ISIS 12959, however, was markedly more effective to inhibit c-raf mRNA, protein production, and DNA synthesis, and the results attest to the species specificity of the approach. After antisense treatment, c-raf mRNA levels dropped rapidly, whereas protein levels decreased with a half-life of roughly 24-48 hours, consistent with the antiproliferative effects. The data are discussed with regard to the profile of protein-protein interactions made by C-Raf and with the view that the baboon system closely parallels the human one at the signal transduction level. As this work progressed, a baboon cDNA homolog of a human c-raf-2 pseudogene was isolated, sequenced, and shown to be transcribed into mRNA.
Insights
This study investigated baboon c-raf gene regulation using antisense oligonucleotides. A baboon-specific oligonucleotide effectively inhibited c-raf, demonstrating species specificity for blocking cell proliferation in restenosis models.
Area of Science:
- Molecular biology
- Cellular biology
- Cardiovascular research
Background:
- C-Raf is crucial in the growth factor-ras pathway, targeting cell proliferation.
- Excessive smooth muscle proliferation contributes to restenosis, a cardiovascular condition.
- The baboon model closely mimics the human cardiovascular system for disease studies.
Purpose of the Study:
- To characterize the molecular and cellular biology of the baboon system for antisense oligonucleotide studies.
- To compare the efficacy of human and baboon antisense oligonucleotides targeting c-raf.
- To validate the baboon model's relevance for human restenosis research.
Main Methods:
- Sequencing of baboon c-raf cDNA.
- In vitro culture of primary baboon smooth muscle cells.
- Comparison of human (ISIS 5132) and baboon (ISIS 12959) antisense oligonucleotides targeting c-raf mRNA's 3'-UTR.
Main Results:
- Baboon c-raf cDNA sequence was determined.
- Baboon antisense oligonucleotide ISIS 12959 was significantly more effective than the human counterpart in inhibiting c-raf mRNA, protein, and DNA synthesis.
- Species-specific inhibition of c-raf was confirmed, with mRNA levels dropping rapidly and protein levels decreasing over 24-48 hours.
Conclusions:
- Antisense oligonucleotides targeting c-raf exhibit species specificity.
- The baboon model closely parallels human signal transduction, supporting its use in restenosis studies.
- Characterization of baboon c-raf provides a foundation for developing targeted therapies for cardiovascular diseases like restenosis.
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