Related Experiment Video
Updated: Jan 3, 2026

Genome-wide RNAi Screening to Identify Host Factors That Modulate Oncolytic Virus Therapy
Published on: April 3, 2018
Polymorphisms in the Most Oncolytic Reovirus Strain Confer Enhanced Cell Attachment, Transcription, and Single-Step
Adil Mohamed1, James R Smiley1, Maya Shmulevitz2
1Department of Medical Microbiology and Immunology, Li Ka Shing Institute of Virology, University of Alberta, Edmonton, Alberta, Canada.
Abstract:
Reovirus serotype 3 Dearing (T3D) replicates preferentially in transformed cells and is in clinical trials as a cancer therapy. Laboratory strains of T3D, however, exhibit differences in plaque size on cancer cells and differences in oncolytic activity in vivo This study aimed to determine why the most oncolytic T3D reovirus lab strain, the Patrick Lee laboratory strain (T3DPL), replicates more efficiently in cancer cells than other commonly used laboratory strains, the Kevin Coombs laboratory strain (T3DKC) and Terence Dermody laboratory (T3DTD) strain. In single-step growth curves, T3DPL titers increased at higher rates and produced ∼9-fold higher burst size. Furthermore, the number of reovirus antigen-positive cells increased more rapidly for T3DPL than for T3DTD In conclusion, the most oncolytic T3DPL possesses replication advantages in a single round of infection. Two specific mechanisms for enhanced infection by T3DPL were identified. First, T3DPL exhibited higher cell attachment, which was attributed to a higher proportion of virus particles with insufficient (≤3) σ1 cell attachment proteins. Second, T3DPL transcribed RNA at rates superior to those of the less oncolytic T3D strains, which is attributed to polymorphisms in M1-encoding μ2 protein, as confirmed in an in vitro transcription assay, and which thus demonstrates that T3DPL has an inherent transcription advantage that is cell type independent. Accordingly, T3DPL established rapid onset of viral RNA and protein synthesis, leading to more rapid kinetics of progeny virus production, larger virus burst size, and higher levels of cell death. Together, these results emphasize the importance of paying close attention to genomic divergence between virus laboratory strains and, mechanistically, reveal the importance of the rapid onset of infection for reovirus oncolysis.IMPORTANCE Reovirus serotype 3 Dearing (T3D) is in clinical trials for cancer therapy. Recently, it was discovered that highly related laboratory strains of T3D exhibit large differences in their abilities to replicate in cancer cells in vitro, which correlates with oncolytic activity in a murine model of melanoma. The current study reveals two mechanisms for the enhanced efficiency of T3DPL in cancer cells. Due to polymorphisms in two viral genes, within the first round of reovirus infection, T3DPL binds to cells more efficiency and more rapidly produces viral RNAs; this increased rate of infection relative to that of the less oncolytic strains gives T3DPL a strong inherent advantage that culminates in higher virus production, more cell death, and higher virus spread.
Insights
The most effective reovirus serotype 3 Dearing (T3D) strain for cancer therapy, T3DPL, shows superior replication in cancer cells due to enhanced attachment and faster RNA transcription. These advantages lead to increased virus production and cell death.
Area of Science:
- Virology
- Oncology
- Molecular Biology
Background:
- Reovirus serotype 3 Dearing (T3D) is a promising cancer therapy agent currently in clinical trials.
- Laboratory strains of T3D display significant variations in plaque size and in vivo oncolytic activity.
- Understanding these differences is crucial for optimizing T3D as a cancer therapeutic.
Purpose of the Study:
- To investigate the mechanisms behind the enhanced replication efficiency of the T3DPL strain in cancer cells compared to other T3D strains.
- To identify specific viral factors contributing to the superior oncolytic activity of T3DPL.
- To elucidate the role of early infection events in reovirus oncolysis.
Main Methods:
- Single-step growth curves were performed to compare replication kinetics and burst sizes of different T3D strains.
- Reovirus antigen-positive cell counts were monitored over time to assess infection rates.
- Cell attachment assays were conducted to evaluate viral binding efficiency.
- In vitro transcription assays were used to analyze RNA synthesis rates, focusing on polymorphisms in the M1 gene encoding μ2 protein.
Main Results:
- T3DPL demonstrated significantly higher replication rates and a ~9-fold greater burst size compared to T3DTD.
- The number of reovirus antigen-positive cells increased more rapidly with T3DPL infection.
- T3DPL exhibited enhanced cell attachment, linked to a higher proportion of virus particles with fewer σ1 attachment proteins.
- Polymorphisms in the M1 gene (μ2 protein) in T3DPL resulted in superior RNA transcription rates, independent of cell type.
Conclusions:
- The T3DPL strain possesses inherent replication advantages in cancer cells, stemming from enhanced attachment and superior RNA transcription.
- These early-stage infection efficiencies contribute to rapid viral RNA and protein synthesis, leading to increased progeny virus production and cell death.
- Genomic divergence among laboratory reovirus strains significantly impacts oncolytic efficacy, highlighting the importance of rapid infection onset for therapeutic success.
Related Concept Videos
Viral Recombination
Viral Mutations
Rous Sarcoma Virus (RSV) and Cancer
RSV is a retrovirus that contains two copies of a plus-strand RNA genome. Its genome consists of four main open...
Retrovirus Life Cycles
Conservative Site-specific Recombination and Phase Variation
The recognition sites for Cre recombinase called LoxP...
Mechanisms of Retrovirus-induced Cancers

