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High-Precision Radiosurgical Dose Delivery by Interlaced Microbeam Arrays of High-Flux Low-Energy Synchrotron X-Rays

Microbeam Radiation Therapy (MRT) is a preclinical form of radiosurgery dedicated to brain tumor treatment. It uses micrometer-wide synchrotron-generated X-ray beams on the basis of spatial beam fractionation. Due to the radioresistance of normal brain vasculature to MRT, a continuous blood supply c...

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Autores principales: Serduc, Raphaël, Bräuer-Krisch, Elke, Siegbahn, Erik A., Bouchet, Audrey, Pouyatos, Benoit, Carron, Romain, Pannetier, Nicolas, Renaud, Luc, Berruyer, Gilles, Nemoz, Christian, Brochard, Thierry, Rémy, Chantal, Barbier, Emmanuel L., Bravin, Alberto, Le Duc, Géraldine, Depaulis, Antoine, Estève, François, Laissue, Jean A.
Formato: Texto
Lenguaje:English
Publicado: Public Library of Science 2010
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC2815784/
https://www.ncbi.nlm.nih.gov/pubmed/20140254
http://dx.doi.org/10.1371/journal.pone.0009028
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author Serduc, Raphaël
Bräuer-Krisch, Elke
Siegbahn, Erik A.
Bouchet, Audrey
Pouyatos, Benoit
Carron, Romain
Pannetier, Nicolas
Renaud, Luc
Berruyer, Gilles
Nemoz, Christian
Brochard, Thierry
Rémy, Chantal
Barbier, Emmanuel L.
Bravin, Alberto
Le Duc, Géraldine
Depaulis, Antoine
Estève, François
Laissue, Jean A.
author_facet Serduc, Raphaël
Bräuer-Krisch, Elke
Siegbahn, Erik A.
Bouchet, Audrey
Pouyatos, Benoit
Carron, Romain
Pannetier, Nicolas
Renaud, Luc
Berruyer, Gilles
Nemoz, Christian
Brochard, Thierry
Rémy, Chantal
Barbier, Emmanuel L.
Bravin, Alberto
Le Duc, Géraldine
Depaulis, Antoine
Estève, François
Laissue, Jean A.
author_sort Serduc, Raphaël
collection PubMed
description Microbeam Radiation Therapy (MRT) is a preclinical form of radiosurgery dedicated to brain tumor treatment. It uses micrometer-wide synchrotron-generated X-ray beams on the basis of spatial beam fractionation. Due to the radioresistance of normal brain vasculature to MRT, a continuous blood supply can be maintained which would in part explain the surprising tolerance of normal tissues to very high radiation doses (hundreds of Gy). Based on this well described normal tissue sparing effect of microplanar beams, we developed a new irradiation geometry which allows the delivery of a high uniform dose deposition at a given brain target whereas surrounding normal tissues are irradiated by well tolerated parallel microbeams only. Normal rat brains were exposed to 4 focally interlaced arrays of 10 microplanar beams (52 µm wide, spaced 200 µm on-center, 50 to 350 keV in energy range), targeted from 4 different ports, with a peak entrance dose of 200Gy each, to deliver an homogenous dose to a target volume of 7 mm(3) in the caudate nucleus. Magnetic resonance imaging follow-up of rats showed a highly localized increase in blood vessel permeability, starting 1 week after irradiation. Contrast agent diffusion was confined to the target volume and was still observed 1 month after irradiation, along with histopathological changes, including damaged blood vessels. No changes in vessel permeability were detected in the normal brain tissue surrounding the target. The interlacing radiation-induced reduction of spontaneous seizures of epileptic rats illustrated the potential pre-clinical applications of this new irradiation geometry. Finally, Monte Carlo simulations performed on a human-sized head phantom suggested that synchrotron photons can be used for human radiosurgical applications. Our data show that interlaced microbeam irradiation allows a high homogeneous dose deposition in a brain target and leads to a confined tissue necrosis while sparing surrounding tissues. The use of synchrotron-generated X-rays enables delivery of high doses for destruction of small focal regions in human brains, with sharper dose fall-offs than those described in any other conventional radiation therapy.
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spelling pubmed-28157842010-02-07 High-Precision Radiosurgical Dose Delivery by Interlaced Microbeam Arrays of High-Flux Low-Energy Synchrotron X-Rays Serduc, Raphaël Bräuer-Krisch, Elke Siegbahn, Erik A. Bouchet, Audrey Pouyatos, Benoit Carron, Romain Pannetier, Nicolas Renaud, Luc Berruyer, Gilles Nemoz, Christian Brochard, Thierry Rémy, Chantal Barbier, Emmanuel L. Bravin, Alberto Le Duc, Géraldine Depaulis, Antoine Estève, François Laissue, Jean A. PLoS One Research Article Microbeam Radiation Therapy (MRT) is a preclinical form of radiosurgery dedicated to brain tumor treatment. It uses micrometer-wide synchrotron-generated X-ray beams on the basis of spatial beam fractionation. Due to the radioresistance of normal brain vasculature to MRT, a continuous blood supply can be maintained which would in part explain the surprising tolerance of normal tissues to very high radiation doses (hundreds of Gy). Based on this well described normal tissue sparing effect of microplanar beams, we developed a new irradiation geometry which allows the delivery of a high uniform dose deposition at a given brain target whereas surrounding normal tissues are irradiated by well tolerated parallel microbeams only. Normal rat brains were exposed to 4 focally interlaced arrays of 10 microplanar beams (52 µm wide, spaced 200 µm on-center, 50 to 350 keV in energy range), targeted from 4 different ports, with a peak entrance dose of 200Gy each, to deliver an homogenous dose to a target volume of 7 mm(3) in the caudate nucleus. Magnetic resonance imaging follow-up of rats showed a highly localized increase in blood vessel permeability, starting 1 week after irradiation. Contrast agent diffusion was confined to the target volume and was still observed 1 month after irradiation, along with histopathological changes, including damaged blood vessels. No changes in vessel permeability were detected in the normal brain tissue surrounding the target. The interlacing radiation-induced reduction of spontaneous seizures of epileptic rats illustrated the potential pre-clinical applications of this new irradiation geometry. Finally, Monte Carlo simulations performed on a human-sized head phantom suggested that synchrotron photons can be used for human radiosurgical applications. Our data show that interlaced microbeam irradiation allows a high homogeneous dose deposition in a brain target and leads to a confined tissue necrosis while sparing surrounding tissues. The use of synchrotron-generated X-rays enables delivery of high doses for destruction of small focal regions in human brains, with sharper dose fall-offs than those described in any other conventional radiation therapy. Public Library of Science 2010-02-03 /pmc/articles/PMC2815784/ /pubmed/20140254 http://dx.doi.org/10.1371/journal.pone.0009028 Text en Serduc 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
Serduc, Raphaël
Bräuer-Krisch, Elke
Siegbahn, Erik A.
Bouchet, Audrey
Pouyatos, Benoit
Carron, Romain
Pannetier, Nicolas
Renaud, Luc
Berruyer, Gilles
Nemoz, Christian
Brochard, Thierry
Rémy, Chantal
Barbier, Emmanuel L.
Bravin, Alberto
Le Duc, Géraldine
Depaulis, Antoine
Estève, François
Laissue, Jean A.
High-Precision Radiosurgical Dose Delivery by Interlaced Microbeam Arrays of High-Flux Low-Energy Synchrotron X-Rays
title High-Precision Radiosurgical Dose Delivery by Interlaced Microbeam Arrays of High-Flux Low-Energy Synchrotron X-Rays
title_full High-Precision Radiosurgical Dose Delivery by Interlaced Microbeam Arrays of High-Flux Low-Energy Synchrotron X-Rays
title_fullStr High-Precision Radiosurgical Dose Delivery by Interlaced Microbeam Arrays of High-Flux Low-Energy Synchrotron X-Rays
title_full_unstemmed High-Precision Radiosurgical Dose Delivery by Interlaced Microbeam Arrays of High-Flux Low-Energy Synchrotron X-Rays
title_short High-Precision Radiosurgical Dose Delivery by Interlaced Microbeam Arrays of High-Flux Low-Energy Synchrotron X-Rays
title_sort high-precision radiosurgical dose delivery by interlaced microbeam arrays of high-flux low-energy synchrotron x-rays
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC2815784/
https://www.ncbi.nlm.nih.gov/pubmed/20140254
http://dx.doi.org/10.1371/journal.pone.0009028
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