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Cathepsin B-activatable cyclic antisense oligonucleotides for cell-specific target gene knockdown in vitro and
Zhongyu Wang1, Xinli Fan1, Guanqun Mu1
1State Key Laboratory of Natural and Biomimetic Drugs, School of Pharmaceutical Sciences and Chemical Biology Center, Peking University, No. 38, Xueyuan Road, Beijing 100191, People's Republic of China.
Abstract:
Trigger-activatable antisense oligonucleotides have been widely applied to regulate gene function. Among them, caged cyclic antisense oligonucleotides (cASOs) maintain a specific topology that temporarily inhibits their interaction with target genes. By inserting linkers that respond to cell-specific endogenous stimuli, they can be powerful tools and potential therapeutic agents for specific types of cancer cells with low off-target effects on normal cells. Here, we developed enzyme-activatable cASOs by tethering two terminals of linear antisense oligonucleotides through a cathepsin B (CB) substrate peptide (Gly-Phe-Leu-Gly [GFLG]), which could be efficiently uncaged by CB. CB-activatable cASOs were used to successfully knock down two disease-related endogenous genes in CB-abundant PC-3 tumor cells at the mRNA and protein levels but had much less effect on gene knockdown in CB-deficient human umbilical vein endothelial cell (HUVECs). In addition, reduced nonspecific immunostimulation was found using cASOs compared with their linear counterparts. Further in vivo studies indicated that CB-activatable cASOs showed effective tumor inhibition in PC-3 tumor model mice through downregulation of translationally controlled tumor protein (TCTP) protein in tumors. This study applies endogenous enzyme-activatable cASOs for antitumor therapy in tumor model mice, which demonstrates a promising stimulus-responsive cASO strategy for cell-specific gene knockdown upon endogenous activation and ASO prodrug development.
Insights
Enzyme-activatable caged cyclic antisense oligonucleotides (cASOs) target cancer cells by releasing therapeutic cargo in response to specific enzymes. This targeted approach reduces side effects and shows promise for cancer therapy.
Area of Science:
- Biotechnology
- Molecular Biology
- Antisense Oligonucleotide Technology
Background:
- Antisense oligonucleotides (ASOs) regulate gene function but can have off-target effects.
- Caged cyclic antisense oligonucleotides (cASOs) offer controlled gene regulation via specific triggers.
- Cell-specific stimuli can enhance the therapeutic potential of ASOs in targeted treatments.
Purpose of the Study:
- To develop enzyme-activatable cASOs for targeted gene knockdown.
- To investigate the efficacy of cathepsin B (CB)-activatable cASOs in cancer cells.
- To evaluate the potential of cASOs as a prodrug strategy for cancer therapy.
Main Methods:
- Design and synthesis of CB-activatable cASOs using a GFLG peptide linker.
- Assessment of gene knockdown in CB-abundant PC-3 tumor cells and CB-deficient HUVECs.
- Evaluation of in vivo tumor inhibition in a PC-3 tumor model mouse.
Main Results:
- CB-activatable cASOs efficiently knocked down target genes in CB-positive cancer cells.
- Significantly reduced gene knockdown was observed in CB-deficient cells, indicating specificity.
- Reduced nonspecific immunostimulation compared to linear ASOs.
- Effective tumor inhibition in vivo via TCTP protein downregulation.
Conclusions:
- CB-activatable cASOs represent a promising stimulus-responsive strategy for cell-specific gene knockdown.
- This approach demonstrates potential for targeted cancer therapy with reduced off-target effects.
- The study highlights the development of ASO prodrugs activated by endogenous enzymes.
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