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

Abstract

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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