Literature DB >> 20932689

Preferential effect of synchrotron microbeam radiation therapy on intracerebral 9L gliosarcoma vascular networks.

Audrey Bouchet1, Benjamin Lemasson, Géraldine Le Duc, Cécile Maisin, Elke Bräuer-Krisch, Erik Albert Siegbahn, Luc Renaud, Enam Khalil, Chantal Rémy, Cathy Poillot, Alberto Bravin, Jean A Laissue, Emmanuel L Barbier, Raphaël Serduc.   

Abstract

PURPOSE: Synchrotron microbeam radiation therapy (MRT) relies on spatial fractionation of the incident photon beam into parallel micron-wide beams. Our aim was to analyze the effects of MRT on normal brain and 9L gliosarcoma tissues, particularly on blood vessels. METHODS AND MATERIALS: Responses to MRT (two arrays, one lateral, one anteroposterior (2 × 400 Gy), intersecting orthogonally in the tumor region) were studied during 6 weeks using MRI, immunohistochemistry, and vascular endothelial growth factor Western blot.
RESULTS: MRT increased the median survival time of irradiated rats (×3.25), significantly increased blood vessel permeability, and inhibited tumor growth; a cytotoxic effect on 9L cells was detected 5 days after irradiation. Significant decreases in tumoral blood volume fraction and vessel diameter were measured from 8 days after irradiation, due to loss of endothelial cells in tumors as detected by immunochemistry. Edema was observed in the normal brain exposed to both crossfired arrays about 6 weeks after irradiation. This edema was associated with changes in blood vessel morphology and an overexpression of vascular endothelial growth factor. Conversely, vascular parameters and vessel morphology in brain regions exposed to one of the two arrays were not damaged, and there was no loss of vascular endothelia.
CONCLUSIONS: We show for the first time that preferential damage of MRT to tumor vessels versus preservation of radioresistant normal brain vessels contributes to the efficient palliation of 9L gliosarcomas in rats. Molecular pathways of repair mechanisms in normal and tumoral vascular networks after MRT may be essential for the improvement of such differential effects on the vasculature.
Copyright © 2010 Elsevier Inc. All rights reserved.

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Year:  2010        PMID: 20932689     DOI: 10.1016/j.ijrobp.2010.06.021

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


  42 in total

1.  Interactions between synchrotron radiation X-ray and biological tissues - theoretical and clinical significance.

Authors:  Heyu Chen; Xin He; Caibin Sheng; Yingxin Ma; Hui Nie; Weiliang Xia; Weihai Ying
Journal:  Int J Physiol Pathophysiol Pharmacol       Date:  2011-10-11

2.  NAD(+) administration significantly attenuates synchrotron radiation X-ray-induced DNA damage and structural alterations of rodent testes.

Authors:  Caibin Sheng; Heyu Chen; Ban Wang; Tengyuan Liu; Yunyi Hong; Jiaxiang Shao; Xin He; Yingxin Ma; Hui Nie; Na Liu; Weiliang Xia; Weihai Ying
Journal:  Int J Physiol Pathophysiol Pharmacol       Date:  2012-03-01

3.  Dose-rate plays a significant role in synchrotron radiation X-ray-induced damage of rodent testes.

Authors:  Heyu Chen; Ban Wang; Caixia Wang; Wei Cao; Jie Zhang; Yingxin Ma; Yunyi Hong; Shen Fu; Fan Wu; Weihai Ying
Journal:  Int J Physiol Pathophysiol Pharmacol       Date:  2016-12-25

Review 4.  Spatially fractionated proton minibeams.

Authors:  Juergen Meyer; John Eley; Thomas E Schmid; Stephanie E Combs; Remi Dendale; Yolanda Prezado
Journal:  Br J Radiol       Date:  2018-11-07       Impact factor: 3.039

5.  Characterization of the 9L gliosarcoma implanted in the Fischer rat: an orthotopic model for a grade IV brain tumor.

Authors:  Audrey Bouchet; Marie Bidart; Imen Miladi; Céline Le Clec'h; Raphaël Serduc; Charles Coutton; Pierrick Regnard; Enam Khalil; Sandrine Dufort; Benjamin Lemasson; Jean Laissue; Laurent Pelletier; Géraldine Le Duc
Journal:  Tumour Biol       Date:  2014-03-16

6.  Pilot study for compact microbeam radiation therapy using a carbon nanotube field emission micro-CT scanner.

Authors:  Mike Hadsell; Guohua Cao; Jian Zhang; Laurel Burk; Torsten Schreiber; Eric Schreiber; Sha Chang; Jianping Lu; Otto Zhou
Journal:  Med Phys       Date:  2014-06       Impact factor: 4.071

7.  Microbeam radiation therapy alters vascular architecture and tumor oxygenation and is enhanced by a galectin-1 targeted anti-angiogenic peptide.

Authors:  Robert J Griffin; Nathan A Koonce; Ruud P M Dings; Eric Siegel; Eduardo G Moros; Elke Bräuer-Krisch; Peter M Corry
Journal:  Radiat Res       Date:  2012-05-18       Impact factor: 2.841

8.  Image-guided microbeam irradiation to brain tumour bearing mice using a carbon nanotube x-ray source array.

Authors:  Lei Zhang; Hong Yuan; Laurel M Burk; Christy R Inscoe; Michael J Hadsell; Pavel Chtcheprov; Yueh Z Lee; Jianping Lu; Sha Chang; Otto Zhou
Journal:  Phys Med Biol       Date:  2014-02-20       Impact factor: 3.609

9.  Physiologically gated microbeam radiation using a field emission x-ray source array.

Authors:  Pavel Chtcheprov; Laurel Burk; Hong Yuan; Christina Inscoe; Rachel Ger; Michael Hadsell; Jianping Lu; Lei Zhang; Sha Chang; Otto Zhou
Journal:  Med Phys       Date:  2014-08       Impact factor: 4.071

10.  Roles of oxidative stress in synchrotron radiation X-ray-induced testicular damage of rodents.

Authors:  Yingxin Ma; Hui Nie; Caibin Sheng; Heyu Chen; Ban Wang; Tengyuan Liu; Jiaxiang Shao; Xin He; Tingting Zhang; Chaobo Zheng; Weiliang Xia; Weihai Ying
Journal:  Int J Physiol Pathophysiol Pharmacol       Date:  2012-06-27
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