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Updated: Sep 30, 2025

Genome-wide RNAi Screening to Identify Host Factors That Modulate Oncolytic Virus Therapy
Published on: April 3, 2018
NAD+ depletion enhances reovirus-induced oncolysis in multiple myeloma
Barry E Kennedy1, Michael Giacomantonio1, J Patrick Murphy1,2
1Department of Pathology, Dalhousie University, Rm. 11J Sir Charles Tupper Medical Building, 5850 College Street, Halifax, NS B3H 1X5, Canada.
Abstract:
Cancer cell energy metabolism plays an important role in dictating the efficacy of oncolysis by oncolytic viruses. To understand the role of multiple myeloma metabolism in reovirus oncolysis, we performed semi-targeted mass spectrometry-based metabolomics on 12 multiple myeloma cell lines and revealed a negative correlation between NAD+ levels and susceptibility to oncolysis. Likewise, a negative correlation was observed between the activity of the rate-limiting NAD+ synthesis enzyme NAMPT and oncolysis. Indeed, depletion of NAD+ levels by pharmacological inhibition of NAMPT using FK866 sensitized several myeloma cell lines to reovirus-induced killing. The myelomas that were most sensitive to this combination therapy expressed a functional p53 and had a metabolic and transcriptomic profile favoring mitochondrial metabolism over glycolysis, with the highest synergistic effect in KMS12 cells. Mechanistically, U-13C-labeled glucose flux, extracellular flux analysis, multiplex proteomics, and cell death assays revealed that the reovirus + FK866 combination caused mitochondrial dysfunction and energy depletion, leading to enhanced autophagic cell death in KMS12 cells. Finally, the combination of reovirus and NAD+ depletion achieved greater antitumor effects in KMS12 tumors in vivo and patient-derived CD138+ multiple myeloma cells. These findings identify NAD+ depletion as a potential combinatorial strategy to enhance the efficacy of oncolytic virus-based therapies in multiple myeloma.
Insights
Depleting NAD+ levels enhances oncolytic virus therapy in multiple myeloma. Combining reovirus with NAMPT inhibition (FK866) boosts cancer cell killing by disrupting mitochondrial function and energy production.
Area of Science:
- Oncology
- Virology
- Metabolomics
Background:
- Cancer cell metabolism influences oncolytic virus therapy efficacy.
- Multiple myeloma metabolism's role in reovirus oncolysis is not fully understood.
Purpose of the Study:
- To investigate the link between multiple myeloma metabolism and reovirus oncolysis.
- To identify metabolic vulnerabilities that can enhance oncolytic virotherapy.
Main Methods:
- Semi-targeted mass spectrometry-based metabolomics on 12 multiple myeloma cell lines.
- Pharmacological inhibition of NAMPT (nicotinamide phosphoribosyltransferase) using FK866.
- U-13C-labeled glucose flux, extracellular flux analysis, and cell death assays.
Main Results:
- Lower NAD+ levels and NAMPT activity correlated with increased susceptibility to reovirus oncolysis.
- FK866 sensitized multiple myeloma cells to reovirus, particularly those with functional p53 and favoring mitochondrial metabolism.
- The combination therapy induced mitochondrial dysfunction, energy depletion, and enhanced autophagic cell death in KMS12 cells.
Conclusions:
- NAD+ depletion is a viable strategy to enhance oncolytic virus efficacy in multiple myeloma.
- The reovirus + FK866 combination demonstrated significant antitumor effects in vivo and in patient-derived cells.
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