Literature DB >> 28922140

A point kernel algorithm for microbeam radiation therapy.

Charlotte Debus1, Uwe Oelfke, Stefan Bartzsch.   

Abstract

Microbeam radiation therapy (MRT) is a treatment approach in radiation therapy where the treatment field is spatially fractionated into arrays of a few tens of micrometre wide planar beams of unusually high peak doses separated by low dose regions of several hundred micrometre width. In preclinical studies, this treatment approach has proven to spare normal tissue more effectively than conventional radiation therapy, while being equally efficient in tumour control. So far dose calculations in MRT, a prerequisite for future clinical applications are based on Monte Carlo simulations. However, they are computationally expensive, since scoring volumes have to be small. In this article a kernel based dose calculation algorithm is presented that splits the calculation into photon and electron mediated energy transport, and performs the calculation of peak and valley doses in typical MRT treatment fields within a few minutes. Kernels are analytically calculated depending on the energy spectrum and material composition. In various homogeneous materials peak, valley doses and microbeam profiles are calculated and compared to Monte Carlo simulations. For a microbeam exposure of an anthropomorphic head phantom calculated dose values are compared to measurements and Monte Carlo calculations. Except for regions close to material interfaces calculated peak dose values match Monte Carlo results within 4% and valley dose values within 8% deviation. No significant differences are observed between profiles calculated by the kernel algorithm and Monte Carlo simulations. Measurements in the head phantom agree within 4% in the peak and within 10% in the valley region. The presented algorithm is attached to the treatment planning platform VIRTUOS. It was and is used for dose calculations in preclinical and pet-clinical trials at the biomedical beamline ID17 of the European synchrotron radiation facility in Grenoble, France.

Entities:  

Mesh:

Year:  2017        PMID: 28922140     DOI: 10.1088/1361-6560/aa8d63

Source DB:  PubMed          Journal:  Phys Med Biol        ISSN: 0031-9155            Impact factor:   3.609


  6 in total

Review 1.  Artificial intelligence in radiotherapy.

Authors:  Sarkar Siddique; James C L Chow
Journal:  Rep Pract Oncol Radiother       Date:  2020-05-06

2.  Non-conventional Ultra-High Dose Rate (FLASH) Microbeam Radiotherapy Provides Superior Normal Tissue Sparing in Rat Lung Compared to Non-conventional Ultra-High Dose Rate (FLASH) Radiotherapy.

Authors:  Michael D Wright; Pantaleo Romanelli; Alberto Bravin; Geraldine Le Duc; Elke Brauer-Krisch; Herwig Requardt; Stefan Bartzsch; Ruslan Hlushchuk; Jean-Albert Laissue; Valentin Djonov
Journal:  Cureus       Date:  2021-11-06

3.  Synchrotron-generated microbeams induce hippocampal transections in rats.

Authors:  Erminia Fardone; Benoît Pouyatos; Elke Bräuer-Krisch; Stefan Bartzsch; Hervè Mathieu; Herwig Requardt; Domenico Bucci; Giacomo Barbone; Paola Coan; Giuseppe Battaglia; Geraldine Le Duc; Alberto Bravin; Pantaleo Romanelli
Journal:  Sci Rep       Date:  2018-01-09       Impact factor: 4.379

4.  Hybrid dose calculation: a dose calculation algorithm for microbeam radiation therapy.

Authors:  Mattia Donzelli; Elke Bräuer-Krisch; Uwe Oelfke; Jan J Wilkens; Stefan Bartzsch
Journal:  Phys Med Biol       Date:  2018-02-13       Impact factor: 3.609

5.  Simulation of Gamma-Ray Transmission Buildup Factors for Stratified Spherical Layers.

Authors:  Abdulrahman A Alfuraih
Journal:  Dose Response       Date:  2022-02-17       Impact factor: 2.658

6.  A high-resolution dose calculation engine for X-ray microbeams radiation therapy.

Authors:  Sarvenaz Keshmiri; Sylvan Brocard; Raphaël Serduc; Jean-François Adam
Journal:  Med Phys       Date:  2022-04-12       Impact factor: 4.506

  6 in total

北京卡尤迪生物科技股份有限公司 © 2022-2023.