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Updated: Aug 29, 2026

Paramyxoviruses for Tumor-targeted Immunomodulation: Design and Evaluation Ex Vivo
Published on: January 7, 2019
Potentiation of oncolytic adenoviral vector efficacy with gutless vectors encoding GMCSF or TRAIL
Kevin D Burroughs1, Dawn B Kayda, Kiran Sakhuja
1Genetic Therapy, Inc., A Novartis Company, Gaithersburg, Maryland 20878, USA.
Abstract:
Oncolytic adenoviral vectors selectively replicate in and lyse human tumor cells, providing a promising means for targeted tumor destruction. However, oncolytic vectors have limited capacity for incorporation of additional genetic material that could encode therapeutic transgenes and/or transcriptional regulatory control elements to augment the efficacy and/or safety of the vector. Therefore, we hypothesized that coadministration of an oncolytic vector with a replication-defective, gutless adenoviral vector encoding a therapeutic transgene would result in replication of both vectors within a tumor and potentiate antitumor efficacy relative to the use of either vector alone. We constructed gutless vectors encoding the murine granulocyte-macrophage colony-stimulating factor (AGVmGMF) or human tumor necrosis factor alpha-related apoptosis-inducing ligand (AGVhTRAIL) gene and tested the ability of these vectors to augment the efficacy of an oncolytic vector (Ar6pAE2fE3F) in a potentiating vector strategy. In Hep3B cells in vitro, cotreatment with Ar6pAE2fE3F increased transgene expression from AGVhTRAIL and permitted replication of AGVhTRAIL, suggesting that an oncolytic vector can propagate gutless vector spread in vivo. In pre-established Hep3B xenograft tumors, neither gutless vector alone inhibited tumor growth; however, coadministration of AGVmGMF or AGVhTRAIL with Ar6pAE2fE3F significantly reduced tumor growth relative to Ar6pAE2fE3F alone. Additionally, use of AGVhTRAIL with Ar6pAE2fE3F increased the number of complete or partial tumor regressions observed at study end. These data provide evidence that coadministration of an oncolytic vector with a gutless vector holds promise for potentiating tumor ablation efficacy.
Insights
Combining oncolytic adenoviral vectors with gutless adenoviral vectors enhances tumor destruction. This dual-vector approach potentiates antitumor efficacy, offering a promising strategy for cancer therapy.
Area of Science:
- Oncolytic virotherapy
- Gene therapy
- Cancer research
Background:
- Oncolytic adenoviral vectors target and destroy tumor cells.
- Limited genetic capacity of oncolytic vectors restricts therapeutic gene delivery.
- Gutless adenoviral vectors offer larger transgene capacity for enhanced therapy.
Purpose of the Study:
- To investigate the synergistic antitumor efficacy of coadministering an oncolytic vector with a gutless adenoviral vector.
- To determine if a gutless vector can replicate in tumors when combined with an oncolytic vector.
- To evaluate the potential of this combined strategy for potentiating tumor ablation.
Main Methods:
- Construction of gutless adenoviral vectors encoding granulocyte-macrophage colony-stimulating factor (AGVmGMF) or tumor necrosis factor alpha-related apoptosis-inducing ligand (AGVhTRAIL).
- In vitro testing of coadministration with an oncolytic vector (Ar6pAE2fE3F) in Hep3B cells.
- In vivo efficacy studies using Hep3B xenograft tumor models.
Main Results:
- In vitro, the oncolytic vector enhanced transgene expression and replication of the gutless vector (AGVhTRAIL).
- Neither gutless vector alone inhibited tumor growth in xenograft models.
- Coadministration of gutless vectors (AGVmGMF or AGVhTRAIL) with the oncolytic vector significantly reduced tumor growth.
- The AGVhTRAIL combination led to increased tumor regressions.
Conclusions:
- Coadministration of oncolytic and gutless adenoviral vectors is a promising strategy for potentiating antitumor efficacy.
- This combined approach may enhance tumor destruction through synergistic vector replication and therapeutic transgene delivery.
- The findings support the development of dual-vector systems for improved cancer treatment outcomes.
