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Updated: May 14, 2026

Paramyxoviruses for Tumor-targeted Immunomodulation: Design and Evaluation Ex Vivo
Published on: January 7, 2019
Myxoma and vaccinia viruses bind differentially to human leukocytes
Winnie M Chan1, Eric C Bartee, Jan S Moreb
1Department of Molecular Genetics and Microbiology, College of Medicine, University of Florida, Gainesville, Florida, USA.
Abstract:
Myxoma virus (MYXV) and vaccinia virus (VACV), two distinct members of the family Poxviridae, are both currently being developed as oncolytic virotherapeutic agents. Recent studies have demonstrated that ex vivo treatment with MYXV can selectively recognize and kill contaminating cancerous cells from autologous bone marrow transplants without perturbing the engraftment of normal CD34(+) hematopoietic stem and progenitor cells. However, the mechanism(s) by which MYXV specifically recognizes and eliminates the cancer cells in the autografts is not understood. While little is known about the cellular attachment factor(s) exploited by MYXV for entry into any target cells, VACV has been shown to utilize cell surface glycosaminoglycans such as heparan sulfate (HS), the extracellular matrix protein laminin, and/or integrin β1. We have constructed MYXV and VACV virions tagged with the Venus fluorescent protein and compared their characteristics of binding to various human cancer cell lines as well as to primary human leukocytes. We report that the binding of MYXV or VACV to some adherent cell lines could be partially inhibited by heparin, but laminin blocked only VACV binding. In contrast to cultured fibroblasts, the binding of MYXV and VACV to a wide spectrum of primary human leukocytes could not be competed by either HS or laminin. Additionally, MYXV and VACV exhibited very different binding characteristics against certain select human leukocytes, suggesting that the two poxviruses utilize different cell surface determinants for the attachment to these cells. These results indicate that VACV and MYXV can exhibit very different oncolytic tropisms against some cancerous human leukocytes.
Insights
Myxoma virus (MYXV) and vaccinia virus (VACV) show different binding behaviors on human leukocytes, indicating distinct cell surface targets for oncolytic virotherapy. Understanding these differences is key for developing effective cancer treatments.
Area of Science:
- Virology
- Oncology
- Immunology
Background:
- Myxoma virus (MYXV) and vaccinia virus (VACV) are poxviruses being developed as oncolytic virotherapeutics.
- MYXV selectively kills cancer cells in bone marrow transplants, but its targeting mechanism is unknown.
- VACV uses cell surface molecules like heparan sulfate (HS) and laminin for attachment.
Purpose of the Study:
- To investigate the cellular attachment factors and binding characteristics of MYXV and VACV to human cancer cells and leukocytes.
- To compare the binding tropisms of MYXV and VACV, which may explain their differential oncolytic activities.
Main Methods:
- MYXV and VACV were engineered to express the Venus fluorescent protein.
- Binding assays were performed using various human cancer cell lines and primary human leukocytes.
- Competition assays using heparin (HS mimic) and laminin were conducted to identify attachment factors.
Main Results:
- Both MYXV and VACV binding to some adherent cell lines were partially inhibited by heparin; laminin only inhibited VACV binding.
- Neither HS nor laminin competed for MYXV or VACV binding to primary human leukocytes.
- MYXV and VACV displayed distinct binding patterns on certain human leukocytes, suggesting different cell surface determinants are utilized.
Conclusions:
- MYXV and VACV utilize different cell surface molecules for attachment to human leukocytes.
- These distinct binding characteristics suggest differential oncolytic tropisms for MYXV and VACV against cancerous human leukocytes.
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