Literature DB >> 24387502

Modality comparison for small animal radiotherapy: a simulation study.

Magdalena Bazalova1, Geoff Nelson1, John M Noll1, Edward E Graves1.   

Abstract

PURPOSE: Small animal radiation therapy has advanced significantly in recent years. Whereas in the past dose was delivered using a single beam and a lead shield for sparing of healthy tissue, conformal doses can be now delivered using more complex dedicated small animal radiotherapy systems with image guidance. The goal of this paper is to investigate dose distributions for three small animal radiation treatment modalities.
METHODS: This paper presents a comparison of dose distributions generated by the three approaches-a single-field irradiator with a 200 kV beam and no image guidance, a small animal image-guided conformal system based on a modified microCT scanner with a 120 kV beam developed at Stanford University, and a dedicated conformal system, SARRP, using a 220 kV beam developed at Johns Hopkins University. The authors present a comparison of treatment plans for the three modalities using two cases: a mouse with a subcutaneous tumor and a mouse with a spontaneous lung tumor. A 5 Gy target dose was calculated using the EGSnrc Monte Carlo codes.
RESULTS: All treatment modalities generated similar dose distributions for the subcutaneous tumor case, with the highest mean dose to the ipsilateral lung and bones in the single-field plan (0.4 and 0.4 Gy) compared to the microCT (0.1 and 0.2 Gy) and SARRP (0.1 and 0.3 Gy) plans. The lung case demonstrated that due to the nine-beam arrangements in the conformal plans, the mean doses to the ipsilateral lung, spinal cord, and bones were significantly lower in the microCT plan (2.0, 0.4, and 1.9 Gy) and the SARRP plan (1.5, 0.5, and 1.8 Gy) than in single-field irradiator plan (4.5, 3.8, and 3.3 Gy). Similarly, the mean doses to the contralateral lung and the heart were lowest in the microCT plan (1.5 and 2.0 Gy), followed by the SARRP plan (1.7 and 2.2 Gy), and they were highest in the single-field plan (2.5 and 2.4 Gy). For both cases, dose uniformity was greatest in the single-field irradiator plan followed by the SARRP plan due to the sensitivity of the lower energy microCT beam to target heterogeneities and image noise.
CONCLUSIONS: The two treatment planning examples demonstrate that modern small animal radiotherapy techniques employing image guidance, variable collimation, and multiple beam angles deliver superior dose distributions to small animal tumors as compared to conventional treatments using a single-field irradiator. For deep-seated mouse tumors, however, higher-energy conformal radiotherapy could result in higher doses to critical organs compared to lower-energy conformal radiotherapy. Treatment planning optimization for small animal radiotherapy should therefore be developed to take full advantage of the novel conformal systems.

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Year:  2014        PMID: 24387502      PMCID: PMC3888460          DOI: 10.1118/1.4842415

Source DB:  PubMed          Journal:  Med Phys        ISSN: 0094-2405            Impact factor:   4.071


  38 in total

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2.  Progress toward a microradiation therapy small animal conformal irradiator.

Authors:  Strahinja Stojadinovic; Daniel A Low; Milos Vicic; Sasa Mutic; Joseph O Deasy; Andrew J Hope; Parag J Parikh; Perry W Grigsby
Journal:  Med Phys       Date:  2006-10       Impact factor: 4.071

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4.  Tomotherapy: a new concept for the delivery of dynamic conformal radiotherapy.

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Journal:  Med Phys       Date:  1993 Nov-Dec       Impact factor: 4.071

5.  Regression of adjuvant-induced arthritis in rats following bone marrow transplantation.

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Journal:  Proc Natl Acad Sci U S A       Date:  1989-12       Impact factor: 11.205

6.  High-resolution, small animal radiation research platform with x-ray tomographic guidance capabilities.

Authors:  John Wong; Elwood Armour; Peter Kazanzides; Iulian Iordachita; Erik Tryggestad; Hua Deng; Mohammad Matinfar; Christopher Kennedy; Zejian Liu; Timothy Chan; Owen Gray; Frank Verhaegen; Todd McNutt; Eric Ford; Theodore L DeWeese
Journal:  Int J Radiat Oncol Biol Phys       Date:  2008-08-01       Impact factor: 7.038

7.  High throughput film dosimetry in homogeneous and heterogeneous media for a small animal irradiator.

Authors:  L Wack; W Ngwa; E Tryggestad; P Tsiamas; R Berbeco; S K Ng; J Hesser; P Zygmanski
Journal:  Phys Med       Date:  2013-03-17       Impact factor: 2.685

8.  Mechanism of retinoblastoma tumor cell death after focal chemotherapy, radiation, and vascular targeting therapy in a mouse model.

Authors:  Maria-Elena Jockovich; Fernando Suarez; Armando Alegret; Yolanda Piña; Brandy Hayden; Colleen Cebulla; William Feuer; Timothy G Murray
Journal:  Invest Ophthalmol Vis Sci       Date:  2007-12       Impact factor: 4.799

9.  Late toxicity of total body irradiation with bone marrow transplantation in a rat model.

Authors:  J E Moulder; B L Fish
Journal:  Int J Radiat Oncol Biol Phys       Date:  1989-06       Impact factor: 7.038

10.  A survival curve for mammalian leukaemia cells irradiated in vivo (implications for the treatment of mouse leukaemia by whole-body irradiation).

Authors:  H B HEWITT; C W WILSON
Journal:  Br J Cancer       Date:  1959-03       Impact factor: 7.640

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  11 in total

1.  Scattered Dose Calculations and Measurements in a Life-Like Mouse Phantom.

Authors:  David Welch; Leah Turner; Michael Speiser; Gerhard Randers-Pehrson; David J Brenner
Journal:  Radiat Res       Date:  2017-01-31       Impact factor: 2.841

2.  Semi-automatic cone beam CT segmentation of in vivo pre-clinical subcutaneous tumours provides an efficient non-invasive alternative for tumour volume measurements.

Authors:  N P Brodin; J Tang; K Skalina; T J Quinn; I Basu; C Guha; W A Tomé
Journal:  Br J Radiol       Date:  2015-03-31       Impact factor: 3.039

3.  MRI-based high-precision irradiation in an orthotopic pancreatic tumor mouse model : A treatment planning study.

Authors:  S Dobiasch; S Kampfer; D Habermehl; M N Duma; K Felix; A Strauss; D Schilling; J J Wilkens; S E Combs
Journal:  Strahlenther Onkol       Date:  2018-06-11       Impact factor: 3.621

4.  Dosimetry Formalism and Implementation of a Homogenous Irradiation Protocol to Improve the Accuracy of Small Animal Whole-Body Irradiation Using a 137Cs Irradiator.

Authors:  N Patrik Brodin; Yong Chen; Ravindra Yaparpalvi; Chandan Guha; Wolfgang A Tomé
Journal:  Health Phys       Date:  2016-02       Impact factor: 1.316

5.  Proposal for a Simple and Efficient Monthly Quality Management Program Assessing the Consistency of Robotic Image-Guided Small Animal Radiation Systems.

Authors:  N Patrik Brodin; Chandan Guha; Wolfgang A Tomé
Journal:  Health Phys       Date:  2015-11       Impact factor: 1.316

6.  Impact of backscatter material thickness on the depth dose of orthovoltage irradiators for radiobiology research.

Authors:  Quan Chen; Janelle Molloy; Tadahide Izumi; Edmond Sterpin
Journal:  Phys Med Biol       Date:  2019-02-20       Impact factor: 4.174

7.  18F-EF5 PET Is Predictive of Response to Fractionated Radiotherapy in Preclinical Tumor Models.

Authors:  Rehan Ali; Sandeep Apte; Marta Vilalta; Murugesan Subbarayan; Zheng Miao; Frederick T Chin; Edward E Graves
Journal:  PLoS One       Date:  2015-10-02       Impact factor: 3.240

8.  A Model for Precise and Uniform Pelvic- and Limb-Sparing Abdominal Irradiation to Study the Radiation-Induced Gastrointestinal Syndrome in Mice Using Small Animal Irradiation Systems.

Authors:  N Patrik Brodin; Anna Velcich; Chandan Guha; Wolfgang A Tomé
Journal:  Dose Response       Date:  2017-01-04       Impact factor: 2.658

9.  A kernel-based dose calculation algorithm for kV photon beams with explicit handling of energy and material dependencies.

Authors:  Anna Merle Reinhart; Martin F Fast; Peter Ziegenhein; Simeon Nill; Uwe Oelfke
Journal:  Br J Radiol       Date:  2016-10-27       Impact factor: 3.039

10.  Use of a Small Animal Radiation Research Platform (SARRP) facilitates analysis of systemic versus targeted radiation effects in the mouse ovary.

Authors:  Allison R Grover; Bruce F Kimler; Francesca E Duncan
Journal:  J Ovarian Res       Date:  2018-08-30       Impact factor: 4.234

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