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Preparation of Cell-lines for Conditional Knockdown of Gene Expression and Measurement of the Knockdown Effects on E4orf4-Induced Cell Death
Published on: October 21, 2012
Functional interactions of antiapoptotic proteins and tumor necrosis factor in the context of a replication-competent
1Viral and Genetic Therapy Program, Cancer Research UK Molecular Oncology Unit, Barts & The London School of Medicine and Imperial College Faculty of Medicine, Hammersmith Hospital, London, UK.
Abstract:
Replication-selective oncolytic adenoviruses hold promise, but novel mechanisms must be identified to maximize intratumoral virus persistence, spread and therapeutic transgene-carrying capacity while maintaining safety. One of the main approaches to engineering cancer-selectivity has been to delete a viral gene that is theoretically expendable in cancer cells. Results with this approach have been mixed, however, as evidenced by controversy over Onyx-015 (E1B-55kD(-)) selectivity. We hypothesized that the functional redundancy between viral gene products might limit selectivity and/or potency with this approach. Antiviral immune inducers of apoptosis (eg TNF-alpha) have not been thoroughly investigated in previous studies. We therefore explored whether deletion of functionally redundant viral genes, E1B-19kD and E3B, both independently antagonize TNF-alpha, could lead to enhanced oncolytic potency while maintaining selectivity. Since tumors have numerous blocks in apoptotic pathways, we hypothesized that deletion of one or both gene regions would result in cancer-selectivity in the presence of TNF-alpha. We have previously shown that the E1B-19kD deletion resulted in enhanced viral spread in vitro and in immunocompetent tumor models in vivo. In contrast, the impact of E3B deletion, especially its in vitro selectivity and potency, was not thoroughly characterized, although it resulted in rapid immune-mediated viral clearance in vivo. Furthermore, previous publications indicated that double-deleted mutants have selectivity but unsatisfactory efficacy. We compared the selectivity and potency of E1B-19kD(-), E3B(-) and E1B-19kD(-)/E3B(-) mutants to wild-type adenovirus. In cancer cells, the E1B-19kD(-) mutant had superior replication, spread and cytolysis (+) or (-) TNF-alpha; deletion of both E1B-19kD and E3B was relatively deleterious. In normal cells without TNF-alpha, similar results were obtained. In contrast, all three mutants were significantly inhibited in the presence of TNF-alpha. In immunocompetent mice, all three mutants were significantly inhibited in normal tissue. In tumors, only the E1B-19kD(-) mutant demonstrated enhanced replication, spread and antitumoral efficacy. Therefore, E1B-19kD deletion and E3B retention should be incorporated in oncolytic adenoviruses for enhanced safety and efficacy. In addition, functional redundant viral genes and their biological mediators/targets need to be carefully examined for the next generation of gene-deleted oncolytic viruses.
Insights
Deleting the E1B-19kD gene in oncolytic adenoviruses enhances tumor spread and efficacy. Retaining the E3B gene improves safety by reducing viral inhibition in normal tissues, especially with TNF-alpha present.
Area of Science:
- Oncolytic virotherapy
- Cancer gene therapy
- Adenovirus engineering
Background:
- Replication-selective oncolytic adenoviruses aim to maximize tumor cell killing while sparing normal cells.
- Engineering cancer selectivity by deleting viral genes has yielded mixed results due to functional redundancy.
- The role of TNF-alpha antagonism by viral genes E1B-19kD and E3B in oncolytic adenovirus selectivity and potency requires further investigation.
Purpose of the Study:
- To investigate the impact of deleting functionally redundant viral genes (E1B-19kD and E3B) on oncolytic adenovirus selectivity, potency, and safety.
- To compare the performance of E1B-19kD(-), E3B(-), and E1B-19kD(-)/E3B(-) adenovirus mutants against wild-type adenovirus.
- To evaluate the influence of TNF-alpha on the selectivity and efficacy of these engineered adenoviruses.
Main Methods:
- Construction and characterization of replication-selective oncolytic adenovirus mutants with deletions in E1B-19kD and/or E3B genes.
- In vitro assessment of viral replication, spread, and cytolysis in cancer and normal cells, with and without TNF-alpha.
- In vivo evaluation of viral safety, replication, spread, and antitumoral efficacy in immunocompetent mouse models.
Main Results:
- The E1B-19kD(-) mutant showed superior replication, spread, and cytolysis in cancer cells, with or without TNF-alpha.
- Deletion of both E1B-19kD and E3B genes was detrimental to viral potency.
- All mutants were inhibited by TNF-alpha in normal cells and significantly cleared in normal tissues in vivo; only E1B-19kD(-) demonstrated enhanced tumor efficacy.
Conclusions:
- E1B-19kD deletion enhances oncolytic adenovirus replication, spread, and antitumor efficacy.
- E3B retention contributes to improved safety by limiting viral activity in normal tissues, particularly in the presence of TNF-alpha.
- Future oncolytic virus development should consider functional redundancy and biological mediators for optimized next-generation gene-deleted oncolytic viruses.
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