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G207, modified herpes simplex virus type 1, kills human pancreatic cancer cells in vitro
J H Lee1, H J Federoff, L O Schoeniger
1Departments of Surgery, University of Rochester Medical Center, Rochester, New York 14642, USA.
Abstract:
Pancreatic cancer is often fatal, and further effective therapeutic options are needed. This study was designed to assess whether the replication-restricted herpes simplex virus, G207, was effective in killing human pancreatic cancer cells in vitro. G207, a multimutated strain of herpes simplex virus type 1 carrying lacZ reporter gene, is capable of efficient cytolytic growth in many dividing cells, including certain tumor cells, but not in nondividing cells. Three human pancreatic cell lines, AsPC-1, MIA PaCa-2, and BxPC-3, were infected with G207 at different multiplicities of infection. After 24 hours, expression of the lacZ reporter gene was tested using a histochemical X-gal assay. In addition, cell lines were infected with G207 for 24 to 48 hours; then the virus obtained from cell pellets and media supernatant was used to infect Vero cells to obtain G207 titers by plaque assay. To assess whether increasing viral immediate early gene expression would improve cytolysis and virus production, similar experiments were performed with the addition of 0.5 mmol/L of hexamethylene bisacetamide (HMBA) 1 hour after viral infection. Finally, MTS cell viability assays were performed to measure viable cells at 24 to 96 hours post infection. The X-gal assay data revealed a viral dose-dependent b-galactosidase expression, indicating G207 infectivity and expression of the lacZ reporter gene. Plaque assays demonstrated a viral dose-dependent increase in plaque formation, indicating viral production from all three cell lines. In addition, HMBA data indicated a modest increase in viral production. The MTS assay data indicated a dose-dependent cytotoxicity for G207 in the cell lines tested. G207 infects, replicates in, and is cytotoxic to the above-listed human pancreatic cell lines in vitro and warrants therapeutic evaluation in models of pancreatic cancer.
Insights
The replication-restricted herpes simplex virus G207 effectively infects, replicates in, and kills human pancreatic cancer cells in vitro. This oncolytic virus shows dose-dependent cytotoxicity, warranting further therapeutic evaluation.
Area of Science:
- Oncolytic virology
- Cancer therapeutics
- Molecular virology
Background:
- Pancreatic cancer presents a significant therapeutic challenge due to its high fatality rate.
- Novel treatment strategies are urgently required to improve patient outcomes.
- Oncolytic viruses represent a promising approach for cancer treatment.
Purpose of the Study:
- To evaluate the efficacy of the replication-restricted herpes simplex virus G207 against human pancreatic cancer cells in vitro.
- To assess G207's infectivity, replication, and cytolytic potential in pancreatic cancer cell lines.
- To determine if enhancing viral gene expression improves G207's therapeutic effects.
Main Methods:
- Infection of human pancreatic cell lines (AsPC-1, MIA PaCa-2, BxPC-3) with G207 at varying multiplicities.
- Assay of lacZ reporter gene expression using histochemical X-gal staining.
- Quantification of viral production via plaque assays on Vero cells.
- Assessment of cell viability using MTS assays post-infection.
- Evaluation of hexamethylene bisacetamide (HMBA) on viral replication and cytotoxicity.
Main Results:
- G207 demonstrated dose-dependent infectivity and lacZ reporter gene expression in pancreatic cancer cells.
- Viral replication and production were observed in all tested cell lines, increasing with viral dose.
- Hexamethylene bisacetamide (HMBA) showed a modest increase in viral production.
- MTS assays confirmed dose-dependent G207-induced cytotoxicity in the pancreatic cancer cell lines.
Conclusions:
- The oncolytic virus G207 effectively infects, replicates within, and induces cell death in human pancreatic cancer cells in vitro.
- G207 exhibits dose-dependent cytotoxicity, supporting its potential as a therapeutic agent.
- These findings warrant further investigation of G207 in preclinical models for pancreatic cancer treatment.