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N-acetylcysteine Amide Augments the Therapeutic Effect of Neural Stem Cell-based Antiglioma Oncolytic Virotherapy

Overview
Journal Mol Ther
Publisher Cell Press
Date 2013 Jul 26
PMID 23883863
Citations 15
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Abstract

Current research has evaluated the intrinsic tumor-tropic properties of stem cell carriers for targeted anticancer therapy. Our laboratory has been extensively studying in the preclinical setting, the role of neural stem cells (NSCs) as delivery vehicles of CRAd-S-pk7, a gliomatropic oncolytic adenovirus (OV). However, the mediated toxicity of therapeutic payloads, such as oncolytic adenoviruses, toward cell carriers has significantly limited this targeted delivery approach. Following this rationale, in this study, we assessed the role of a novel antioxidant thiol, N-acetylcysteine amide (NACA), to prevent OV-mediated toxicity toward NSC carriers in an orthotropic glioma xenograft mouse model. Our results show that the combination of NACA and CRAd-S-pk7 not only increases the viability of these cell carriers by preventing reactive oxygen species (ROS)-induced apoptosis of NSCs, but also improves the production of viral progeny in HB1.F3.CD NSCs. In an intracranial xenograft mouse model, the combination treatment of NACA and NSCs loaded with CRAd-S-pk7 showed enhanced CRAd-S-pk7 production and distribution in malignant tissues, which improves the therapeutic efficacy of NSC-based targeted antiglioma oncolytic virotherapy. These data demonstrate that the combination of NACA and NSCs loaded with CRAd-S-pk7 may be a desirable strategy to improve the therapeutic efficacy of antiglioma oncolytic virotherapy.

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References
1.
Hu S, Sheng W, Schachtele S, Lokensgard J . Reactive oxygen species drive herpes simplex virus (HSV)-1-induced proinflammatory cytokine production by murine microglia. J Neuroinflammation. 2011; 8:123. PMC: 3192693. DOI: 10.1186/1742-2094-8-123. View

2.
Kornblith P, Welch W, Bradley M . The future of therapy for glioblastoma. Surg Neurol. 1993; 39(6):538-43. DOI: 10.1016/0090-3019(93)90041-x. View

3.
Yoo J, Pradarelli J, Haseley A, Wojton J, Kaka A, Bratasz A . Copper chelation enhances antitumor efficacy and systemic delivery of oncolytic HSV. Clin Cancer Res. 2012; 18(18):4931-41. PMC: 3784008. DOI: 10.1158/1078-0432.CCR-12-0697. View

4.
Yang W, Lun X, Palmer C, Wilcox M, Muzik H, Shi Z . Efficacy and safety evaluation of human reovirus type 3 in immunocompetent animals: racine and nonhuman primates. Clin Cancer Res. 2004; 10(24):8561-76. DOI: 10.1158/1078-0432.CCR-04-0940. View

5.
Kim J, Wong P . Loss of ATM impairs proliferation of neural stem cells through oxidative stress-mediated p38 MAPK signaling. Stem Cells. 2009; 27(8):1987-98. DOI: 10.1002/stem.125. View