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Targeting HSV-1 virions for specific binding to epidermal growth factor receptor-vIII-bearing tumor cells
P Grandi1, J Fernandez, O Szentirmai
1Department of Neurology, Harvard Medical School, Boston, MA, USA. pag24@mgb.pitt.edu
Abstract:
Oncolytic herpes simplex virus (HSV) vectors have been used in early phase human clinical trials as a therapy for recurrent malignant glioblastoma. This treatment proved safe but limited improvements in patient survival were observed. The potency of these vectors might be enhanced by targeting vector infectivity to tumor cells. Glioma tumors often express a mutant form (vIII) of the epidermal growth factor receptor (EGFR) resulting in the presence of a novel epitope on the cell surface. This epitope is specifically recognized by a single-chain antibody designated MR1-1. HSV-1 infection involves initial binding to heparan sulfate (HS) on the cell surface mediated primarily by the viral envelope, glycoprotein C (gC). Here we joined the MR1-1 single-chain antibody (scFv) to the gC sequence deleted for the HS-binding domain as a means of targeting viral attachment to EGFRvIII on glial tumor cells. Virions bearing MR1-1-modified gC had fivefold increased infectivity for EGFRvIII-bearing human glioma U87 cells compared to mutant receptor-deficient cells. Further, MR1-1/EGFRvIII-mediated infection was more efficient for EGFRvIII-positive cells than was wild-type virus for either positive or negative cells. Sustained infection of EGFRvIII+ glioma cells by MR1-1-modified gC-bearing oncolytic virus, as compared to wild-type gC oncolytic virus, was also shown in subcutaneous tumors in vivo using firefly luciferase as a reporter of infection. These data show that HSV tropism can be manipulated so that virions recognize a cell-specific binding site with increased infectivity for the target cell. The retargeting of HSV infection to tumor cells should enhance vector specificity, tumor cell killing and vector safety.
Insights
Researchers engineered oncolytic herpes simplex virus (HSV) to target glioblastoma cells expressing EGFRvIII. This retargeted virus showed increased infectivity and sustained tumor cell killing, improving oncolytic virotherapy potential.
Area of Science:
- Oncolytic virotherapy
- Molecular engineering
- Cancer biology
Background:
- Oncolytic herpes simplex virus (HSV) therapy shows safety but limited efficacy for glioblastoma.
- Targeting vector infectivity to tumor cells can enhance oncolytic virotherapy potency.
- EGFRvIII is a tumor-specific antigen present on glioma cells.
Purpose of the Study:
- To engineer HSV vectors to specifically target and infect glioblastoma cells expressing EGFRvIII.
- To enhance the infectivity and tumor-killing capacity of oncolytic HSV by retargeting its binding mechanism.
- To evaluate the efficacy of the modified HSV in vitro and in vivo.
Main Methods:
- The MR1-1 single-chain antibody (scFv) was fused to the glycoprotein C (gC) of HSV-1, with the heparan sulfate (HS)-binding domain deleted.
- The modified HSV was tested for infectivity against EGFRvIII-positive and negative human glioma cells (U87).
- In vivo efficacy was assessed in subcutaneous tumor models using firefly luciferase to monitor viral infection.
Main Results:
- Virions with MR1-1-modified gC exhibited a fivefold increase in infectivity for EGFRvIII-positive glioma cells compared to EGFRvIII-negative cells.
- The MR1-1/EGFRvIII-mediated infection was more efficient than wild-type HSV infection in EGFRvIII-positive cells.
- Sustained infection of EGFRvIII+ glioma cells was observed in vivo with the modified oncolytic virus.
Conclusions:
- HSV tropism can be successfully manipulated to achieve cell-specific binding and enhanced infectivity.
- Retargeting HSV infection to tumor cells holds promise for improving vector specificity, tumor cell killing, and safety in glioblastoma treatment.
- This strategy represents a significant advancement in the development of targeted oncolytic virotherapy.
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