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A model system for the design of armed replicating adenoviruses using p53 as a candidate transgene
Yosef S Haviv1, Koichi Takayama, Joel N Glasgow
1Division of Human Gene Therapy, Department of Medicine, Gene Therapy Center, The University of Alabama at Birmingham, Birmingham, Alabama 35294, USA.
Abstract:
Cancer gene therapy endeavors to overcome the low therapeutic index of currently available therapeutic modalities via the efficient and safe delivery of genetic material into tumor cells. However, despite promising preclinical results, replication-deficient viral vectors have demonstrated a limited efficacy in the clinical setting. To increase vector efficiency, replication-competent viruses have been proposed. Clinical trials have shown the safety of locally injected, conditionally replicative adenoviruses (Ads) but have underscored the need for improved potency. To further increase the therapeutic effect of replicating viral vectors, armed therapeutic viruses (ATVs) have recently been used for high-efficiency transgene expression. However, interference with cellular signaling and viral production by constitutive transgene expression may be counterproductive for ATV replication, thereby hindering the therapeutic outcome. Consequently, studies are equivocal with regard to the potential benefits of ATVs. To address this issue, we hypothesized that induction of replication of an Ad expressing p53 may be a useful strategy in the context of ATV because p53 does not interfere with Ad replication and may even increase its cytolytic effect. We show that in our in vitro ATV model system, E1 transcomplementation of a replication-deficient Ad encoding p53 resulted in dramatic augmentation of cell killing and circumvented resistance to apoptosis. Correlation was found between the degrees of cell killing and apoptosis induction, rather than with viral burst. Furthermore, both Ad5 E1B 55kDa and E4 orf6 genes were required to enhance the cell killing. In conclusion, our p53-ATV model system demonstrates the potential utility of therapeutic transgene expression by a replicating Ad after a rational selection of a candidate transgene.
Insights
This study explores using a p53-armed therapeutic virus (ATV) for cancer gene therapy. Results show this approach significantly enhances cancer cell killing and apoptosis, offering a promising new strategy for improved treatment efficacy.
Area of Science:
- Oncolytic virotherapy
- Cancer gene therapy
- Viral vector development
Background:
- Replication-deficient viral vectors show limited clinical efficacy in cancer gene therapy.
- Conditionally replicative adenoviruses (Ads) are safe but require improved potency.
- Armed therapeutic viruses (ATVs) offer high transgene expression but can hinder viral replication.
Purpose of the Study:
- To investigate the potential of a p53-armed therapeutic adenovirus (Ad) as an ATV strategy.
- To determine if p53 expression enhances Ad replication and cytolytic effects without hindering viral production.
- To evaluate the efficacy of a p53-encoding Ad in an ATV model system.
Main Methods:
- Developed an in vitro ATV model system using a replication-deficient Ad encoding p53.
- Utilized E1 transcomplementation to induce Ad replication.
- Assessed cell killing, apoptosis induction, and viral burst size.
- Investigated the role of Ad5 E1B 55kDa and E4 orf6 genes in enhancing cell killing.
Main Results:
- E1 transcomplementation of the p53-encoding Ad dramatically increased cancer cell killing and overcame apoptosis resistance.
- A strong correlation was observed between cell killing/apoptosis induction and therapeutic effect, not viral burst size.
- Both Ad5 E1B 55kDa and E4 orf6 genes were essential for enhanced cell killing.
Conclusions:
- The developed p53-ATV model system demonstrates the potential of therapeutic transgene expression by replicating Ads.
- Rational selection of transgenes, like p53, can significantly improve the efficacy of oncolytic virotherapy.
- This strategy offers a promising avenue for enhancing cancer gene therapy outcomes.