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Cell cycle-dependent distribution and specific inhibitory effect of vectorized antisense oligonucleotides in cell
1Laboratoire de Biochimie-Enzymologie, UMR 8532, Institut Gustave-Roussy, Villejuif, France. vhelin@igr.fr
Abstract:
Factors limiting the use of antisense phosphodiester oligodeoxynucleotides (ODNs) as therapeutic agents are inefficient cellular uptake and intracellular transport to RNA target. To overcome these obstacles, ODN carriers have been developed, but the intracellular fate of ODNs is controversial and strongly depends on the means of vectorization. Polyamidoamine dendrimers are non-linear polycationic cascade polymers that are able to bind ODNs electrostatically. These complexes have been demonstrated to protect phosphodiester ODNs from nuclease degradation and also to increase their cellular uptake and pharmacological effectiveness. We studied the intracellular distribution of a fluorescein isothiocyanate-labeled ODN vectorized by a dendrimer vector and found that intracellular ODN distribution was dependent on the phase of the cell cycle, with a nuclear localization predominantly in the G2/M phase. In addition, in order to evaluate the relevance of ODN vectors in enhancing the inhibition of the targeted genes' expression, we developed a rapid screening system which measures the transient expression of two reporter genes, one used as target, the other as control and vice versa. This system was validated through investigating the effect of the dendrimer vector on ODN biological activity. Antisense sequence-specific inhibition of more than 70% of one reporter gene was obtained with a chimeric ODN containing four phosphorothioate groups, two at each end.
Insights
Polyamidoamine dendrimers enhance cellular uptake and effectiveness of antisense oligodeoxynucleotides (ODNs). ODN distribution within cells varies with the cell cycle, showing nuclear localization in the G2/M phase.
Area of Science:
- Biotechnology
- Molecular Biology
- Nanotechnology
Background:
- Antisense oligodeoxynucleotides (ODNs) face challenges in cellular uptake and intracellular transport for therapeutic use.
- Polyamidoamine dendrimers are effective carriers for ODNs, protecting them from degradation and improving cellular delivery.
Purpose of the Study:
- To investigate the intracellular distribution of dendrimer-vectorized ODNs.
- To evaluate the efficiency of dendrimer vectors in enhancing ODN-mediated gene expression inhibition.
Main Methods:
- Utilized a fluorescein isothiocyanate-labeled ODN complexed with a polyamidoamine dendrimer.
- Studied intracellular ODN distribution across different cell cycle phases.
- Developed and validated a rapid screening system using dual reporter genes to assess ODN biological activity.
Main Results:
- Intracellular ODN distribution was cell cycle-dependent, with preferential nuclear localization during the G2/M phase.
- The dendrimer vector significantly enhanced ODN cellular uptake and pharmacological effectiveness.
- Achieved over 70% sequence-specific inhibition of a reporter gene using a modified ODN.
Conclusions:
- Polyamidoamine dendrimers represent a promising vectorization strategy for improving antisense ODN delivery and efficacy.
- Cell cycle-dependent intracellular localization influences the therapeutic potential of ODN-dendrimer complexes.
- The developed screening system efficiently validates the biological activity of ODN vectors.