Cell carriage, delivery, and selective replication of an oncolytic virus in tumor in patients

Robert A Adair1, Victoria Roulstone, Karen J Scott

  • 1Leeds Institute of Molecular Medicine, St. James's University Hospital, and Institute of Molecular and Cellular Biology, Faculty of Biological Sciences, University of Leeds, Leeds LS9 7TF, UK.

Insights

Oncolytic reovirus, delivered intravenously, was protected from immune attack by blood cells in cancer patients. These cells then delivered the virus preferentially to liver tumors, showing potential for enhanced cancer therapy.

Area of Science:

  • Oncolytic virotherapy
  • Cancer immunology
  • Viral oncology

Background:

  • Oncolytic viruses show promise for cancer treatment by targeting cancer cells and stimulating immune responses.
  • Mechanisms of oncolytic virus immune evasion and tumor-specific delivery in humans remain under investigation.

Purpose of the Study:

  • To investigate the in vivo behavior of oncolytic reovirus after systemic administration in cancer patients.
  • To assess reovirus immune evasion, cellular transport, and tumor-selective delivery in humans.

Main Methods:

  • Patients with colorectal cancer liver metastases received intravenous reovirus before surgical resection.
  • Viral genome tracking in circulation and analysis of surgical specimens were performed.
  • Reovirus replication and protein expression in tumor and normal tissues were quantified.

Main Results:

  • Reovirus was detected in various blood cell compartments, but not plasma, after infusion.
  • Replication-competent reovirus was recovered from blood cells, suggesting immune protection via cellular carriage.
  • Preferential reovirus protein expression and replicating virus were found in malignant tumor cells, not normal liver tissue.

Conclusions:

  • Immune cells can protect systemically administered oncolytic reovirus from neutralizing antibodies.
  • Cellular carriage facilitates the delivery of oncolytic reovirus to tumors in vivo.
  • Findings support strategies to enhance immune evasion and tumor delivery of oncolytic viruses.

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