Abstract

Purpose: Local failure and toxicity to adjacent critical structures is a significant problem in radiation therapy of cancers of the head and neck. We are developing a gene therapy based method of sensitizing head/neck squamous cell carcinoma (HNSCC) to radiation treatment. As patients with the rare hereditary disorder, Nijmegen breakage syndrome show radiation sensitivity we hypothesized that tumor−specific disruption of the function of the Nbs1 protein would lead to enhanced cellular sensitivity to ionizing radiation. In order to test this hypothesis we have devised recombinant adenoviruses expressing various portions of the Nbs1 protein and assessed the ability of these viruses to increase the radiation sensitivity of HNSCC cells. Materials and Methods: We constructed two recombinant adenoviruses by cloning the full-length Nbs1 cDNA as well as the C-terminal 300 amino acids of Nbs1(Nbs1-300, aa453 to aa754) into an adenovirus backbone under the control of a CMV promoter. The resulting adenoviruses were used to infect HNSCC cell line 011. These cells were evaluated for expression of the viral based constructs and assayed for growth rate and clonogenic survival following radiation exposure. Results: A constitutively expressed GFP gene in the viral backbone confirmed efficient uptake of the virus into the 011 cell line and Western blot confirmed the presence of the virally expressed Nbs1 and Nbs1-300. Following exposure to ionizing radiation cells infected with the Nbs1-300 virus showed a significant reduction in growth rate relative to cells infected with control virus. Surprisingly, this effect was even stronger with the full-length wild-type Nbs1 protein. Examination of clonogenic survival also demonstrated statistically significant sensitization, however the effects of the two constructs were distinct as Nbs1-300 expression resulted in reduction of the shoulder while expression of the full-length Nbs1 showed a change in the slope of the survival curve. Conclusion: Dominant negative constructs of the Nbs1 protein are able to sensitize cells to ionizing radiation exposure. Surprisingly expression of the full-length Nbs1 protein results in enhanced sensitivity as well. These results provide a proof of principle that disruption of Nbs1 function may provide a means of enhancing the radiosensitivity of head and neck tumors.

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