Replication-dependent transgene expression from a conditionally replicating adenovirus via alternative splicing to a

Jan E Carette1, Harm C A Graat, Frederik H E Schagen

  • 1Division of Gene Therapy, Department of Medical Oncology, VU University Medical Center, 1081 HV Amsterdam, The Netherlands. j.carette@vumc.nl

Abstract

Insights

Researchers developed oncolytic adenoviruses for cancer therapy. These viruses express therapeutic genes only when they replicate within cancer cells, enhancing safety and effectiveness for improved oncolytic potency.

Area of Science:

  • Virology
  • Molecular Biology
  • Cancer Therapy

Background:

  • Oncolytic viruses selectively target and replicate within cancer cells, offering a promising anticancer strategy.
  • Enhancing oncolytic virus potency involves expressing therapeutic genes, requiring controlled transgene expression kinetics and levels.
  • Ensuring cytotoxic transgene expression is confined to cancer cells is crucial for safety.

Purpose of the Study:

  • To develop oncolytic adenoviruses with transgene expression strictly dependent on viral replication.
  • To engineer adenoviruses for improved monitoring of viral replication and enhanced oncolytic potency.

Main Methods:

  • Constructed an oncolytic adenovirus expressing luciferase under the adenovirus major late promoter (MLP) via alternative splicing.
  • Utilized RT-PCR to analyze luciferase transcript splicing.
  • Measured transgene expression with and without apigenin, a viral replication inhibitor.

Main Results:

  • The engineered splice-acceptor site was efficiently recognized by the adenoviral splicing machinery.
  • Luciferase expression was significantly higher with the MLP system compared to the CMV promoter, particularly late in infection.
  • Inhibiting viral replication drastically reduced luciferase expression (4-5 logs) in the engineered virus, versus a moderate reduction (2 logs) in the CMV-driven system.

Conclusions:

  • Transgene expression driven by the endogenous late gene machinery offers a distinct pattern compared to the CMV promoter.
  • High expression levels tightly coupled to viral replication facilitate replication monitoring.
  • This approach provides a platform for developing armed conditionally replicating adenoviruses (CRAds) with enhanced oncolytic efficacy.

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