Theranostic nanoparticles enhance the response of glioblastomas to radiation

诊疗纳米粒子增强胶质母细胞瘤对放射的反应

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作者:Wei Wu, Jessica L Klockow, Suchismita Mohanty, Kimberly S Ku, Maryam Aghighi, Stavros Melemenidis, Zixin Chen, Kai Li, Goreti Ribeiro Morais, Ning Zhao, Jürgen Schlegel, Edward E Graves, Jianghong Rao, Paul M Loadman, Robert A Falconer, Sudip Mukherjee, Frederick T Chin, Heike E Daldrup-Link

Conclusion

Our data shows additive anti-tumor effects of CLIO-ICT nanoparticles in combination with radiotherapy. The combination therapy proposed here could potentially be a clinically translatable strategy for treating GBMs.

Methods

NSG™ mice bearing human GBMs and C57BL/6J mice bearing murine GBMs received CLIO-ICT, radiation, or combination treatment. The mice underwent pre- and post-treatment magnetic resonance imaging (MRI) scans, bioluminescence imaging (BLI), and histological analysis. Tumor nanoparticle enhancement, tumor flux, microvessel density, GIC, and apoptosis markers were compared between different groups using a one-way ANOVA and two-tailed Mann-Whitney test. Additional NSG™ mice underwent survival analyses with Kaplan-Meier curves and a log rank (Mantel-Cox) test.

Results

At 2 weeks post-treatment, BLI and MRI scans revealed significant reduction in tumor size for CLIO-ICT plus radiation treated tumors compared to monotherapy or vehicle-treated tumors. Combining CLIO-ICT with radiation therapy significantly decreased microvessel density, decreased GICs, increased caspase-3 expression, and prolonged the survival of GBM-bearing mice. CLIO-ICT delivery to GBM could be monitored with MRI. and was not significantly different before and after radiation. There was no significant caspase-3 expression in normal brain at therapeutic doses of CLIO-ICT administered.

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