Literature DB >> 24969790

A GSK-3β inhibitor protects against radiation necrosis in mouse brain.

Xiaoyu Jiang1, Carlos J Perez-Torres2, Dinesh Thotala3, John A Engelbach2, Liya Yuan4, Jeremy Cates3, Feng Gao5, Robert E Drzymala6, Keith M Rich6, Robert E Schmidt7, Joseph J H Ackerman8, Dennis E Hallahan9, Joel R Garbow10.   

Abstract

PURPOSE: To quantify the effectiveness of SB415286, a specific inhibitor of GSK-3β, as a neuroprotectant against radiation-induced central nervous system (brain) necrosis in a mouse model. METHODS AND MATERIALS: Cohorts of mice were treated with SB415286 or dimethyl sulfoxide (DMSO) prior to irradiation with a single 45-Gy fraction targeted to the left hemisphere (brain) using a gamma knife machine. The onset and progression of radiation necrosis (RN) were monitored longitudinally by noninvasive in vivo small-animal magnetic resonance imaging (MRI) beginning 13 weeks postirradiation. MRI-derived necrotic volumes for SB415286- and DMSO-treated mice were compared. MRI results were supported by correlative histology.
RESULTS: Mice treated with SB415286 showed significant protection from radiation-induced necrosis, as determined by in vivo MRI with histologic validation. MRI-derived necrotic volumes were significantly smaller at all postirradiation time points in SB415286-treated animals. Although the irradiated hemispheres of the DMSO-treated mice demonstrated many of the classic histologic features of RN, including fibrinoid vascular necrosis, vascular telangiectasia, hemorrhage, and tissue loss, the irradiated hemispheres of the SB415286-treated mice consistently showed only minimal tissue damage. These studies confirmed that treatment with a GSK-3β inhibitor dramatically reduced delayed time-to-onset necrosis in irradiated brain.
CONCLUSIONS: The unilateral cerebral hemispheric stereotactic radiation surgery mouse model in concert with longitudinal MRI monitoring provided a powerful platform for studying the onset and progression of RN and for developing and testing new neuroprotectants. Effectiveness of SB415286 as a neuroprotectant against necrosis motivates potential clinical trials of it or other GSK-3β inhibitors.
Copyright © 2014 Elsevier Inc. All rights reserved.

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Year:  2014        PMID: 24969790      PMCID: PMC4307920          DOI: 10.1016/j.ijrobp.2014.04.018

Source DB:  PubMed          Journal:  Int J Radiat Oncol Biol Phys        ISSN: 0360-3016            Impact factor:   7.038


  33 in total

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Authors:  Carlos J Perez-Torres; John A Engelbach; Jeremy Cates; Dinesh Thotala; Liya Yuan; Robert E Schmidt; Keith M Rich; Robert E Drzymala; Joseph J H Ackerman; Joel R Garbow
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7.  Inhibitors of HIF-1α and CXCR4 Mitigate the Development of Radiation Necrosis in Mouse Brain.

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8.  Can Dexmedetomidine Be Effective in the Protection of Radiotherapy-Induced Brain Damage in the Rat?

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9.  A Gamma-Knife-Enabled Mouse Model of Cerebral Single-Hemisphere Delayed Radiation Necrosis.

Authors:  Xiaoyu Jiang; Liya Yuan; John A Engelbach; Jeremy Cates; Carlos J Perez-Torres; Feng Gao; Dinesh Thotala; Robert E Drzymala; Robert E Schmidt; Keith M Rich; Dennis E Hallahan; Joseph J H Ackerman; Joel R Garbow
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10.  Irradiation-Modulated Murine Brain Microenvironment Enhances GL261-Tumor Growth and Inhibits Anti-PD-L1 Immunotherapy.

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