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Published on: April 25, 2018
Silencing of human c-myc oncogene expression by poly-DNP-RNA
Long Shen1, Chongjie Zhang, Julian L Ambrus
1Bioenergetics Laboratory, Natural Sciences Complex, University at Buffalo, Buffalo, NY 14260, USA.
Abstract:
Deregulation of c-myc oncogene expression drives the progression of many different types of cancer. Recent experimental data suggest that even brief inhibition of c-myc expression may be sufficient to permanently stop tumor growth and induce regression of tumors. Previous efforts in developing an inhibitor to silence the c-myc gene were hampered by low efficacy and lack of sequence specificity. Here, we report the synthesis of an antisense RNA inhibitor based on a new 21-nt sequence on a poly- DNP-RNA platform that can specifically inhibit cancer cell growth by silencing c-myc gene expression. Both c-myc mRNA and protein levels were significantly decreased in MCF-7 cells following treatment with this antisense DNP-RNA inhibitor. The control compounds with sense or mismatched sequence were inactive. When c-myc transgenic mice were each treated with a single dose of the antisense RNA inhibitor, in vivo silencing of c-myc gene expression was observed for up to 72 hours by real-time RT-PCR. Similar treatment of c-myc transgenic mice with unmodified (native) homologous small interfering RNA (siRNA) had no effect on the mRNA concentration of the c-myc gene. Injection of this short antisense poly-DNP-RNA into mice did not induce the synthesis of DNP-binding immunoglobulins in the host. The observed in vivo gene silencing by this antisense RNA inhibitor suggests its possible use as a therapeutic agent for cancers involving the deregulation of c-myc gene expression.
Insights
A novel antisense RNA inhibitor effectively silences c-myc oncogene expression, halting cancer cell growth and tumor progression in preclinical models. This targeted approach shows promise for treating cancers driven by c-myc deregulation.
Area of Science:
- Molecular Biology
- Oncology
- RNA Therapeutics
Background:
- Deregulation of the c-myc oncogene is a key driver in numerous cancers.
- Previous attempts to inhibit c-myc have faced challenges with efficacy and specificity.
- Brief inhibition of c-myc may lead to sustained tumor regression.
Purpose of the Study:
- To develop and evaluate a novel antisense RNA inhibitor for specific c-myc gene silencing.
- To assess the efficacy of the inhibitor in vitro and in vivo for cancer treatment.
Main Methods:
- Synthesis of a 21-nucleotide antisense RNA inhibitor on a poly-DNP-RNA platform.
- In vitro assessment of c-myc mRNA and protein levels in MCF-7 cells.
- In vivo evaluation in c-myc transgenic mice using real-time RT-PCR and assessment of immune response.
Main Results:
- The antisense DNP-RNA inhibitor significantly reduced c-myc mRNA and protein levels in cancer cells.
- In vivo administration resulted in sustained c-myc gene silencing for up to 72 hours in mice.
- The inhibitor did not induce an adverse immune response (DNP-binding immunoglobulins).
- Unmodified small interfering RNA (siRNA) showed no effect on c-myc mRNA levels in vivo.
Conclusions:
- The developed antisense poly-DNP-RNA is a potent and specific inhibitor of c-myc gene expression.
- This novel RNA inhibitor demonstrates significant in vivo gene silencing capabilities.
- The findings suggest potential therapeutic applications for cancers associated with c-myc deregulation.
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