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

PURPOSE: To develop a Gamma Knife-based mouse model of late time-to-onset, cerebral radiation necrosis (RN) with serial evaluation by magnetic resonance imaging (MRI) and histology. METHODS AND MATERIALS: Mice were irradiated with the Leksell Gamma Knife(®) (GK) Perfexion(TM) (Elekta AB; Stockholm,...

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Autores principales: Jiang, Xiaoyu, Yuan, Liya, Engelbach, John A., Cates, Jeremy, Perez-Torres, Carlos J., Gao, Feng, Thotala, Dinesh, Drzymala, Robert E., Schmidt, Robert E., Rich, Keith M., Hallahan, Dennis E., Ackerman, Joseph J. H., Garbow, Joel R.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Public Library of Science 2015
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4595209/
https://www.ncbi.nlm.nih.gov/pubmed/26440791
http://dx.doi.org/10.1371/journal.pone.0139596
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author Jiang, Xiaoyu
Yuan, Liya
Engelbach, John A.
Cates, Jeremy
Perez-Torres, Carlos J.
Gao, Feng
Thotala, Dinesh
Drzymala, Robert E.
Schmidt, Robert E.
Rich, Keith M.
Hallahan, Dennis E.
Ackerman, Joseph J. H.
Garbow, Joel R.
author_facet Jiang, Xiaoyu
Yuan, Liya
Engelbach, John A.
Cates, Jeremy
Perez-Torres, Carlos J.
Gao, Feng
Thotala, Dinesh
Drzymala, Robert E.
Schmidt, Robert E.
Rich, Keith M.
Hallahan, Dennis E.
Ackerman, Joseph J. H.
Garbow, Joel R.
author_sort Jiang, Xiaoyu
collection PubMed
description PURPOSE: To develop a Gamma Knife-based mouse model of late time-to-onset, cerebral radiation necrosis (RN) with serial evaluation by magnetic resonance imaging (MRI) and histology. METHODS AND MATERIALS: Mice were irradiated with the Leksell Gamma Knife(®) (GK) Perfexion(TM) (Elekta AB; Stockholm, Sweden) with total single-hemispheric radiation doses (TRD) of 45- to 60-Gy, delivered in one to three fractions. RN was measured using T2-weighted MR images, while confirmation of tissue damage was assessed histologically by hematoxylin & eosin, trichrome, and PTAH staining. RESULTS: MRI measurements demonstrate that TRD is a more important determinant of both time-to-onset and progression of RN than fractionation. The development of RN is significantly slower in mice irradiated with 45-Gy than 50- or 60-Gy, where RN development is similar. Irradiated mouse brains demonstrate all of the pathologic features observed clinically in patients with confirmed RN. A semi-quantitative (0 to 3) histologic grading system, capturing both the extent and severity of injury, is described and illustrated. Tissue damage, as assessed by a histologic score, correlates well with total necrotic volume measured by MRI (correlation coefficient = 0.948, with p<0.0001), and with post-irradiation time (correlation coefficient = 0.508, with p<0.0001). CONCLUSIONS: Following GK irradiation, mice develop late time-to-onset cerebral RN histology mirroring clinical observations. MR imaging provides reliable quantification of the necrotic volume that correlates well with histologic score. This mouse model of RN will provide a platform for mechanism of action studies, the identification of imaging biomarkers of RN, and the development of clinical studies for improved mitigation and neuroprotection.
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spelling pubmed-45952092015-10-09 A Gamma-Knife-Enabled Mouse Model of Cerebral Single-Hemisphere Delayed Radiation Necrosis Jiang, Xiaoyu Yuan, Liya Engelbach, John A. Cates, Jeremy Perez-Torres, Carlos J. Gao, Feng Thotala, Dinesh Drzymala, Robert E. Schmidt, Robert E. Rich, Keith M. Hallahan, Dennis E. Ackerman, Joseph J. H. Garbow, Joel R. PLoS One Research Article PURPOSE: To develop a Gamma Knife-based mouse model of late time-to-onset, cerebral radiation necrosis (RN) with serial evaluation by magnetic resonance imaging (MRI) and histology. METHODS AND MATERIALS: Mice were irradiated with the Leksell Gamma Knife(®) (GK) Perfexion(TM) (Elekta AB; Stockholm, Sweden) with total single-hemispheric radiation doses (TRD) of 45- to 60-Gy, delivered in one to three fractions. RN was measured using T2-weighted MR images, while confirmation of tissue damage was assessed histologically by hematoxylin & eosin, trichrome, and PTAH staining. RESULTS: MRI measurements demonstrate that TRD is a more important determinant of both time-to-onset and progression of RN than fractionation. The development of RN is significantly slower in mice irradiated with 45-Gy than 50- or 60-Gy, where RN development is similar. Irradiated mouse brains demonstrate all of the pathologic features observed clinically in patients with confirmed RN. A semi-quantitative (0 to 3) histologic grading system, capturing both the extent and severity of injury, is described and illustrated. Tissue damage, as assessed by a histologic score, correlates well with total necrotic volume measured by MRI (correlation coefficient = 0.948, with p<0.0001), and with post-irradiation time (correlation coefficient = 0.508, with p<0.0001). CONCLUSIONS: Following GK irradiation, mice develop late time-to-onset cerebral RN histology mirroring clinical observations. MR imaging provides reliable quantification of the necrotic volume that correlates well with histologic score. This mouse model of RN will provide a platform for mechanism of action studies, the identification of imaging biomarkers of RN, and the development of clinical studies for improved mitigation and neuroprotection. Public Library of Science 2015-10-06 /pmc/articles/PMC4595209/ /pubmed/26440791 http://dx.doi.org/10.1371/journal.pone.0139596 Text en © 2015 Jiang et al http://creativecommons.org/licenses/by/4.0/ This is an open-access article distributed under the terms of the Creative Commons Attribution License, which permits unrestricted use, distribution, and reproduction in any medium, provided the original author and source are properly credited.
spellingShingle Research Article
Jiang, Xiaoyu
Yuan, Liya
Engelbach, John A.
Cates, Jeremy
Perez-Torres, Carlos J.
Gao, Feng
Thotala, Dinesh
Drzymala, Robert E.
Schmidt, Robert E.
Rich, Keith M.
Hallahan, Dennis E.
Ackerman, Joseph J. H.
Garbow, Joel R.
A Gamma-Knife-Enabled Mouse Model of Cerebral Single-Hemisphere Delayed Radiation Necrosis
title A Gamma-Knife-Enabled Mouse Model of Cerebral Single-Hemisphere Delayed Radiation Necrosis
title_full A Gamma-Knife-Enabled Mouse Model of Cerebral Single-Hemisphere Delayed Radiation Necrosis
title_fullStr A Gamma-Knife-Enabled Mouse Model of Cerebral Single-Hemisphere Delayed Radiation Necrosis
title_full_unstemmed A Gamma-Knife-Enabled Mouse Model of Cerebral Single-Hemisphere Delayed Radiation Necrosis
title_short A Gamma-Knife-Enabled Mouse Model of Cerebral Single-Hemisphere Delayed Radiation Necrosis
title_sort gamma-knife-enabled mouse model of cerebral single-hemisphere delayed radiation necrosis
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4595209/
https://www.ncbi.nlm.nih.gov/pubmed/26440791
http://dx.doi.org/10.1371/journal.pone.0139596
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