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Published on: December 13, 2018
c-MYC antisense phosphosphorodiamidate morpholino oligomer inhibits lung metastasis in a murine tumor model
Harmanjatinder S Sekhon1, Carla A London, Mypinder Sekhon
1Oregon Health and Sciences University, Portland, OR, USA.
Background:
c-MYC amplification and overexpression has been correlated with progression and chemotherapy resistance in lung cancer. AVI-4126, a neutral antisense phosphorodiamidate morpholino oligomer (PMO) has been identified to specifically inhibit c-MYC expression in multiple disease models and identified in Phase I clinical studies to be safe and bioavailable in solid tumors. The present study evaluates AVI-4126 on the development of lung metastasis in the LLC1 syngeneic murine tumor model. Further, this is the first study to show in vivo mis-splicing of c-MYC post-AVI-4126 treatment.
Methods And Results:
Subcutaneous administration of AVI-4126 at local tumor site (50 microg/day) for 3 cycles of 5 days a week starting day 1 post-tumor cell implantation showed significantly decreased tumor burden, number of tumorlets formed in the lung in comparison to saline or control PMO treatment groups, although no significant reduction of the subcutaneous tumor was observed. AVI-4126 treated lung had markedly reduced mitotic activity but higher rate of apoptosis compared to the controls. HPLC-based analysis of tumor and lung lysates confirmed the presence of intact PMO. In addition to decrease in c-MYC expression, a moderate reduction in the levels of MMP-9 mRNA, a pro-angiogenic extracellular matrix protein postulated to be involved in extravasation of cells from the localized tumor or implantation into the distant metastatic site was observed in the LLC1 tumor tissue of AVI-4126 treated animals.
Conclusions:
The study results are significant in the development of novel anti-tumoral therapeutic strategies directed to c-MYC-overexpressing tumors and establish AVI-4126 as a strong clinical candidate for metastatic disease.
Insights
This study shows AVI-4126 effectively reduces lung metastasis in a mouse model by inhibiting c-MYC expression. AVI-4126 demonstrates potential as a therapeutic for c-MYC-overexpressing metastatic cancers.
Area of Science:
- Oncology
- Molecular Biology
- Pharmacology
Background:
- c-MYC amplification correlates with lung cancer progression and chemoresistance.
- AVI-4126, a novel antisense oligomer, inhibits c-MYC and is safe and bioavailable.
- This study investigates AVI-4126's efficacy against lung metastasis in a murine model.
Purpose of the Study:
- To evaluate the anti-metastatic effects of AVI-4126 in the LLC1 syngeneic murine tumor model.
- To assess AVI-4126's impact on c-MYC expression and related pathways in vivo.
- To demonstrate in vivo c-MYC mis-splicing following AVI-4126 treatment.
Main Methods:
- Subcutaneous administration of AVI-4126 (50 microg/day) in 5-day cycles post-tumor cell implantation.
- Analysis of tumor burden, lung tumorlet formation, mitotic activity, and apoptosis.
- HPLC analysis to confirm PMO presence; assessment of c-MYC and MMP-9 mRNA levels.
Main Results:
- AVI-4126 significantly decreased lung tumor burden and tumorlet number compared to controls.
- Reduced mitotic activity and increased apoptosis were observed in AVI-4126 treated lungs.
- AVI-4126 treatment led to decreased c-MYC and MMP-9 mRNA levels in tumor tissue.
Conclusions:
- AVI-4126 shows significant anti-metastatic activity against c-MYC-overexpressing tumors.
- AVI-4126 is a promising clinical candidate for treating metastatic lung cancer.
- This study provides the first evidence of in vivo c-MYC mis-splicing induced by AVI-4126.
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