Literature DB >> 21775795

Motion in radiotherapy: particle therapy.

C Bert1, M Durante.   

Abstract

Charged particle beam radiotherapy requires dedicated measures to compensate for the dosimetric influence of inter- and intra-fractional target motion. Independent of the delivery technique, these measures have to incorporate the strong influence of the radiological depth on the delivered dose. For scanned beam delivery, interference effects of target motion and scanned beam can further cause under-dosage of the clinical target volume despite using margins. Within the scope of this review, published data with respect to motion management in scattered as well as scanned beam treatment delivery will be summarized. Based on a section covering the dosimetric impact of organ motion, motion management during treatment planning, patient positioning, treatment delivery and treatment validation will be summarized. For scattered beam delivery, the concepts and data are often based on clinical usage since treatment of moving tumors has been performed for several years. In the field of scanned beam delivery, the report focuses on the results of research on countermeasures of the interference effect. Clinical application of these techniques can be expected in the near future.

Entities:  

Mesh:

Year:  2011        PMID: 21775795     DOI: 10.1088/0031-9155/56/16/R01

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


  78 in total

1.  Optimization of an on-board imaging system for extremely rapid radiation therapy.

Authors:  Erica M Cherry Kemmerling; Meng Wu; He Yang; Peter G Maxim; Billy W Loo; Rebecca Fahrig
Journal:  Med Phys       Date:  2015-11       Impact factor: 4.071

Review 2.  Individualized radiotherapy by combining high-end irradiation and magnetic resonance imaging.

Authors:  Stephanie E Combs; Fridtjof Nüsslin; Jan J Wilkens
Journal:  Strahlenther Onkol       Date:  2016-02-06       Impact factor: 3.621

Review 3.  [Strategies for preoperative downsizing in patients with local nonresectable pancreatic cancer].

Authors:  S E Combs; D Habermehl; J Werner; M W Büchler; J Debus
Journal:  Chirurg       Date:  2011-11       Impact factor: 0.955

4.  Intensity modulated proton therapy.

Authors:  H M Kooy; C Grassberger
Journal:  Br J Radiol       Date:  2015-05-27       Impact factor: 3.039

5.  Effect of secondary particles on image quality of dynamic flat panels in carbon ion scanning beam treatment.

Authors:  S Mori; S Amano; T Furukawa; T Shirai; K Noda
Journal:  Br J Radiol       Date:  2014-12-23       Impact factor: 3.039

Review 6.  Treatment planning optimisation in proton therapy.

Authors:  S E McGowan; N G Burnet; A J Lomax
Journal:  Br J Radiol       Date:  2013-01       Impact factor: 3.039

Review 7.  Current status and future prospects of multi-dimensional image-guided particle therapy.

Authors:  Shinichiro Mori; Silvan Zenklusen; Antje-Christin Knopf
Journal:  Radiol Phys Technol       Date:  2013-02-19

8.  Implementation of a target volume design function for intrafractional range variation in a particle beam treatment planning system.

Authors:  S Mori; T Inaniwa; K Miki; T Shirai; K Noda
Journal:  Br J Radiol       Date:  2014-08-29       Impact factor: 3.039

Review 9.  Empowering Intensity Modulated Proton Therapy Through Physics and Technology: An Overview.

Authors:  Radhe Mohan; Indra J Das; Clifton C Ling
Journal:  Int J Radiat Oncol Biol Phys       Date:  2017-10-01       Impact factor: 7.038

Review 10.  Charged particle therapy--optimization, challenges and future directions.

Authors:  Jay S Loeffler; Marco Durante
Journal:  Nat Rev Clin Oncol       Date:  2013-05-21       Impact factor: 66.675

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