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Updated: Feb 10, 2026

Ex Vivo Infection of Live Tissue with Oncolytic Viruses
Published on: June 25, 2011
Carrier Cells for Delivery of Oncolytic Measles Virus into Tumors: Determinants of Efficient Loading
Chun Xu1, Mao Xia1,2, Gang Meng1,3
1Jiangsu Key Laboratory of Molecular Medicine, Medical School of Nanjing University, Nanjing, 210093, China.
Abstract:
Oncolytic measles virus (OMV) is a promising antitumor agent. However, the presence of anti-measles neutralizing antibodies (NAbs) against the hemagglutinin (H) protein of OMV is a major barrier to the therapeutic application of OMV in clinical practice. In order to overcome this challenge, specific types of cells have been used as carriers for OMV. Differential loading strategies appear to result in different therapeutic outcomes; despite this, only few studies have reported practical ex vivo loading strategies required for effective treatment. To this end, we systematically evaluated the antitumor efficacy of OMV using different loading strategies; this involved varying the in vitro loading duration and loading dose of OMV. We found that improved oncolysis of carrier cells was achieved by a prolonged loading duration in the absence of NAbs. However, the enhanced oncolytic effect was abrogated in the presence of NAbs. Further, we found that the expression of H protein on the surface of carrier cells was predominantly determined by the loading duration rather than the loading dose. Finally, we showed that NAbs blocked viral transfer by targeting H protein prior to the occurrence of cell-to-cell interactions. Our results provide comprehensive information on the determinants of an effective loading strategy for carrier cell-based virotherapy; these results may be useful for guiding the application of OMV as an antitumor agent in clinical practice.
Insights
Oncolytic measles virus (OMV) shows promise for cancer treatment. Optimizing OMV loading onto carrier cells is key to overcoming antibody barriers and improving antitumor efficacy in clinical applications.
Area of Science:
- Oncolytic virotherapy
- Cancer immunotherapy
Background:
- Oncolytic measles virus (OMV) is a potential antitumor agent.
- Anti-measles neutralizing antibodies (NAbs) hinder OMV's therapeutic use.
- Carrier cells are explored to deliver OMV, but loading strategies need optimization.
Purpose of the Study:
- To systematically evaluate the antitumor efficacy of OMV using different ex vivo loading strategies.
- To investigate the impact of loading duration and dose on OMV efficacy.
- To understand the role of neutralizing antibodies in OMV carrier cell therapy.
Main Methods:
- Systematic evaluation of OMV loading strategies on carrier cells.
- Varied in vitro loading duration and loading dose.
- Assessed OMV oncolysis and viral transfer in the presence and absence of NAbs.
Main Results:
- Prolonged loading duration enhanced carrier cell oncolysis without NAbs.
- NAbs abrogated the enhanced oncolytic effect.
- Loading duration, not dose, primarily determined H protein expression on carrier cells.
- NAbs blocked viral transfer by targeting H protein before cell-cell interaction.
Conclusions:
- Loading duration is a critical determinant for effective carrier cell-based OMV virotherapy.
- NAbs pose a significant challenge by inhibiting viral transfer.
- Optimized loading strategies are essential for successful clinical application of OMV.
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