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Updated: May 6, 2026

Growth, Purification, and Titration of Oncolytic Herpes Simplex Virus
Published on: May 13, 2021
The potential application of a transcriptionally regulated oncolytic herpes simplex virus for human cancer therapy
1Laboratory of Cancer Gene Therapy, Cellular and Molecular Research Division, Humphrey Oei Institute of Cancer Research, National Cancer Centre, Singapore 169610, Singapore.
Background:
Emerging studies have shown the potential benefit of arming oncolytic viruses with therapeutic genes. However, most of these therapeutic genes are placed under the regulation of ubiquitous viral promoters. Our goal is to generate a safer yet potent oncolytic herpes simplex virus type-1 (HSV-1) for cancer therapy.
Methods:
Using bacterial artificial chromosome (BAC) recombineering, a cell cycle-regulatable luciferase transgene cassette was replaced with the infected cell protein 6 (ICP6) coding region (encoded for UL39 or large subunit of ribonucleotide reductase) of the HSV-1 genome. These recombinant viruses, YE-PC8, were further tested for its proliferation-dependent luciferase gene expression.
Results:
The ability of YE-PC8 to confer proliferation-dependent transgene expression was demonstrated by injecting similar amount of viruses into the tumour-bearing region of the brain and the contralateral normal brain parenchyma of the same mouse. The results showed enhanced levels of luciferase activities in the tumour region but not in the normal brain parenchyma. Similar findings were observed in YE-PC8-infected short-term human brain patient-derived glioma cells compared with normal human astrocytes. intratumoural injection of YE-PC8 viruses resulted in 77% and 80% of tumour regression in human glioma and human hepatocellular carcinoma xenografts, respectively.
Conclusion:
YE-PC8 viruses confer tumour selectivity in proliferating cells and may be developed further as a feasible approach to treat human cancers.
Insights
Researchers engineered herpes simplex virus type-1 (HSV-1) oncolytic viruses to selectively target cancer cells. This novel approach enhances therapeutic gene expression in tumors while sparing healthy tissue, offering a safer cancer treatment strategy.
Area of Science:
- Oncolytic virotherapy
- Gene therapy
- Cancer research
Background:
- Therapeutic genes are often expressed using ubiquitous viral promoters in oncolytic viruses.
- This can lead to toxicity in healthy tissues.
- Developing safer, potent oncolytic viruses is crucial for cancer therapy.
Purpose of the Study:
- To engineer a safer and more potent oncolytic herpes simplex virus type-1 (HSV-1) for cancer therapy.
- To achieve tumor-selective gene expression using a cell cycle-regulatable promoter.
Main Methods:
- Utilized bacterial artificial chromosome (BAC) recombineering to replace the infected cell protein 6 (ICP6) coding region in the HSV-1 genome.
- Inserted a cell cycle-regulatable luciferase transgene cassette.
- Generated recombinant viruses named YE-PC8.
Main Results:
- YE-PC8 demonstrated proliferation-dependent luciferase gene expression.
- Higher luciferase activity was observed in tumor tissue compared to normal brain parenchyma after intratumoral injection.
- YE-PC8 infection of glioma cells showed enhanced luciferase expression compared to normal astrocytes.
- Intratumoral injection led to significant tumor regression in human glioma (77%) and hepatocellular carcinoma (80%) xenografts.
Conclusions:
- YE-PC8 viruses exhibit tumor selectivity by targeting proliferating cells.
- This engineered oncolytic virus shows potential for treating human cancers.
- Further development may lead to a feasible and safer cancer treatment approach.
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