Experimental optimisation of the X-ray energy in microbeam radiation therapy.
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[1] G. Hildebrandt,et al. Microbeam radiation therapy — grid therapy and beyond: a clinical perspective , 2017, The British journal of radiology.
[2] A. Stevenson,et al. Preclinical radiotherapy at the Australian Synchrotron's Imaging and Medical Beamline: instrumentation, dosimetry and a small-animal feasibility study. , 2017, Journal of synchrotron radiation.
[3] A. Stevenson,et al. Characterization of a synthetic single crystal diamond detector for dosimetry in spatially fractionated synchrotron x-ray fields. , 2016, Medical physics.
[4] J. Laissue,et al. Effects of microbeam radiation therapy on normal and tumoral blood vessels. , 2015, Physica medica : PM : an international journal devoted to the applications of physics to medicine and biology : official journal of the Italian Association of Biomedical Physics.
[5] J. Laissue,et al. Microbeam radiation therapy: Clinical perspectives. , 2015, Physica medica : PM : an international journal devoted to the applications of physics to medicine and biology : official journal of the Italian Association of Biomedical Physics.
[6] A. Stevenson,et al. An Evaluation of Dose Equivalence between Synchrotron Microbeam Radiation Therapy and Conventional Broadbeam Radiation Using Clonogenic and Cell Impedance Assays , 2014, PloS one.
[7] E. Barbier,et al. Synchrotron microbeam radiation therapy induces hypoxia in intracerebral gliosarcoma but not in the normal brain. , 2013, Radiotherapy and oncology : journal of the European Society for Therapeutic Radiology and Oncology.
[8] Y Prezado,et al. Monte Carlo-based treatment planning system calculation engine for microbeam radiation therapy. , 2012, Medical physics.
[9] J. Sempau,et al. Development and commissioning of a Monte Carlo photon beam model for the forthcoming clinical trials in microbeam radiation therapy. , 2011, Medical physics.
[10] Alberto Bravin,et al. Preferential effect of synchrotron microbeam radiation therapy on intracerebral 9L gliosarcoma vascular networks. , 2010, International journal of radiation oncology, biology, physics.
[11] J. Sempau,et al. Monte Carlo dosimetry for forthcoming clinical trials in x-ray microbeam radiation therapy , 2010, Physics in medicine and biology.
[12] A Bravin,et al. Effects of pulsed, spatially fractionated, microscopic synchrotron X-ray beams on normal and tumoral brain tissue. , 2010, Mutation research.
[13] A. Depaulis,et al. High-Precision Radiosurgical Dose Delivery by Interlaced Microbeam Arrays of High-Flux Low-Energy Synchrotron X-Rays , 2010, PloS one.
[14] Alberto Bravin,et al. Synchrotron microbeam radiation therapy for rat brain tumor palliation-influence of the microbeam width at constant valley dose. , 2009, Physics in medicine and biology.
[15] A. Bravin,et al. Gadolinium dose enhancement studies in microbeam radiation therapy. , 2009, Medical physics.
[16] C. Segebarth,et al. Characterization and quantification of cerebral edema induced by synchrotron x-ray microbeam radiation therapy , 2008, Physics in medicine and biology.
[17] P. Randaccio,et al. Geant4 simulations for microbeam radiation therapy (MRT) dosimetry , 2007, 2007 IEEE Nuclear Science Symposium Conference Record.
[18] H. Blattmann,et al. Prospects for microbeam radiation therapy of brain tumours in children to reduce neurological sequelae , 2007, Developmental medicine and child neurology.
[19] A. Bravin,et al. Determination of dosimetrical quantities used in microbeam radiation therapy (MRT) with Monte Carlo simulations. , 2006, Medical physics.
[20] Cedric X. Yu,et al. Feasibility of delivering grid therapy using a multileaf collimator. , 2005, Medical physics.
[21] F. Dilmanian,et al. Dose distribution from x-ray microbeam arrays applied to radiation therapy: An EGS4 Monte Carlo study. , 2005, Medical physics.
[22] H. Blattmann,et al. Characterization of a tungsten/gas multislit collimator for microbeam radiation therapy at the European Synchrotron Radiation Facility , 2005 .
[23] Alberto Bravin,et al. Weanling piglet cerebellum: a surrogate for tolerance to MRT (microbeam radiation therapy) in pediatric neuro-oncology , 2001, Optics + Photonics.
[24] N Lynnerup,et al. Cranial thickness in relation to age, sex and general body build in a Danish forensic sample. , 2001, Forensic science international.
[25] M. Di Michiel,et al. Physics study of microbeam radiation therapy with PSI-version of Monte Carlo code GEANT as a new computational tool. , 2000, Medical physics.
[26] David W. Archer,et al. Microbeam radiation therapy , 1999, Optics & Photonics.
[27] G S Ibbott,et al. High-dose spatially-fractionated radiation (GRID): a new paradigm in the management of advanced cancers. , 1999, International journal of radiation oncology, biology, physics.
[28] Marianne Geiser,et al. Neuropathology of ablation of rat gliosarcomas and contiguous brain tissues using a microplanar beam of synchrotron‐wiggler‐generated X rays , 1998, International journal of cancer.
[29] D N Slatkin,et al. Subacute neuropathological effects of microplanar beams of x-rays from a synchrotron wiggler. , 1995, Proceedings of the National Academy of Sciences of the United States of America.
[30] J. Hendry,et al. Lack of late skin necrosis in man after high-dose irradiation using small field sizes: experiences of grid therapy. , 1990, The British journal of radiology.
[31] C. P. Baker,et al. Histopathologic effect of high-energy-particle microbeams on the visual cortex of the mouse brain. , 1961, Radiation research.
[32] Jeffrey C Crosbie,et al. Quantitative characterization of the X-ray beam at the Australian Synchrotron Imaging and Medical Beamline (IMBL). , 2017, Journal of synchrotron radiation.
[33] K. Shinohara,et al. Optimization of X-ray microplanar beam radiation therapy for deep-seated tumors by a simulation study. , 2014, Journal of X-ray science and technology.
[34] Ravinder Nath,et al. AAPM Code of Practice for Radiotherapy Accelerators , 2000 .
[35] H. Curtis. The use of deuteron microbeam for simulating the biological effects of heavy cosmic-ray particles. , 1967, Radiation research. Supplement.