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Updated: Aug 13, 2026

Growth, Purification, and Titration of Oncolytic Herpes Simplex Virus
Published on: May 13, 2021
Effect of chemotherapy-induced DNA repair on oncolytic herpes simplex viral replication
Manish Aghi1, Samuel Rabkin, Robert L Martuza
1Department of Neurosurgery, Massachusetts General Hospital, Harvard Medical School, Boston, MA, USA. maghi@partners.org
Background:
Gliomas treated with the alkylating agent temozolomide have incomplete responses in part because of tumoral repair of chemotherapy-induced DNA damage. Data from phase I trials suggest that G207, an oncolytic herpes simplex virus (HSV) with mutated ribonucleotide reductase (RR) and gamma34.5 genes, is safe but needs greater viral oncolysis to be effective. We hypothesized that temozolomide and G207 treatment limitations could be jointly addressed using temozolomide-induced tumor-protective DNA repair pathways to enhance viral replication.
Methods:
Human glioblastoma cells (U87, T98, and U373) and U87 cells transfected with the gene for the DNA repair enzyme O6-methylguanine DNA methyltransferase (MGMT) were treated with G207 and/or temozolomide. Drug interactions, expression of the growth arrest DNA damage 34 (GADD34) and RR transcripts before and after their knockdown with short interfering RNAs, DNA strand breaks, and apoptosis were measured using Chou-Talalay analysis, real-time reverse transcription-polymerase chain reaction, the comet assay, and flow cytometry, respectively. Survival of mice (groups of ten) with intracranial U87 xenograft tumors treated with temozolomide and/or G207 was analyzed using Kaplan-Meier analysis.
Results:
Temozolomide exhibited strong synergy with G207 in both MGMT-negative and the MGMT inhibitor O6-benzylguanine-treated MGMT-expressing gliomas (Chou-Talalay combination indices = 0.005 to 0.39) and induced GADD34 expression primarily in nonapoptotic MGMT-negative U87 glioma cells (fold difference = 16, 95% confidence interval [CI] = 12.6 to 20.4, compared with untreated cells). MGMT-expressing T98 and U87/MGMT cells treated with temozolomide plus O6-benzylguanine had higher RR expression than untreated cells (fold difference =14.9, 95% CI = 10.1 to 22.0 [T98]; 9.9, 95% CI = 7.0 to 13.8 [U87/MGMT]). GADD34 and RR knockdown increased temozolomide-induced DNA damage and inhibited the synergy of G207 and temozolomide in U87 and O6-benzylguanine-treated U87/MGMT cells. Mice bearing intracranial U87 tumors survived longer after combination therapy (100% survival at 90 days) than after single-agent therapy (median survival = 46 and 48 days with G207 and temozolomide treatment, respectively).
Conclusions:
Temozolomide-induced DNA repair pathways vary with MGMT expression and enhance HSV-mediated oncolysis in glioma cells. These findings unveil the potential of HSV to target cells surviving temozolomide treatment.
Insights
Combining temozolomide with oncolytic herpes simplex virus (HSV) G207 enhances glioma cell killing. This combination therapy leverages temozolomide-induced DNA repair pathways to boost viral replication and improve survival in preclinical models.
Area of Science:
- Oncology
- Virology
- Genetics
Background:
- Temozolomide (TMZ) treatment for gliomas shows incomplete responses due to tumor DNA repair mechanisms.
- Oncolytic herpes simplex virus (HSV) G207 demonstrates safety but requires enhanced viral oncolysis for efficacy.
- A combination strategy is proposed to leverage TMZ-induced DNA repair pathways to augment G207 viral replication.
Purpose of the Study:
- To investigate the synergistic potential of combining temozolomide (TMZ) and oncolytic herpes simplex virus (HSV) G207 against glioma cells.
- To elucidate the role of DNA repair pathways, including O6-methylguanine DNA methyltransferase (MGMT), growth arrest DNA damage 34 (GADD34), and ribonucleotide reductase (RR), in the combined therapy's efficacy.
- To evaluate the in vivo efficacy of the combination therapy in a preclinical glioma model.
Main Methods:
- Human glioblastoma cell lines (U87, T98, U373) and MGMT-transfected U87 cells were treated with G207 and/or TMZ.
- Drug interactions were assessed using Chou-Talalay analysis.
- Gene expression of GADD34 and RR was quantified via real-time RT-PCR after short interfering RNA (siRNA) knockdown.
- DNA damage and apoptosis were measured using comet assays and flow cytometry, respectively.
- In vivo efficacy was evaluated in mice with intracranial U87 xenografts using Kaplan-Meier survival analysis.
Main Results:
- Temozolomide demonstrated significant synergy with G207 in both MGMT-negative and MGMT-expressing gliomas.
- TMZ induced GADD34 expression in nonapoptotic MGMT-negative cells and increased RR expression in MGMT-expressing cells.
- Knockdown of GADD34 and RR diminished the synergistic effect of G207 and TMZ and increased DNA damage.
- Combination therapy resulted in 100% survival at 90 days in mice with intracranial U87 tumors, significantly outperforming single-agent therapies.
Conclusions:
- Temozolomide-induced DNA repair pathways are differentially regulated by MGMT expression and can enhance HSV-mediated oncolysis in glioma cells.
- The combination of TMZ and G207 offers a promising strategy to overcome treatment resistance by targeting cells that survive TMZ therapy.
- This study highlights the potential of oncolytic HSV as a therapeutic agent in combination with chemotherapy for glioma treatment.
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