Literature DB >> 26782211

Approaching Oxygen-Guided Intensity-Modulated Radiation Therapy.

Boris Epel1,2, Gage Redler1,2, Charles Pelizzari1,2, Victor M Tormyshev1,3, Howard J Halpern4,5.   

Abstract

The outcome of cancer radiation treatment is strongly correlated with tumor oxygenation. The aim of this study is to use oxygen tension distributions in tumors obtained using Electron Paramagnetic Resonance (EPR) imaging to devise better tumor radiation treatment. The proposed radiation plan is delivered in two steps. In the first step, a uniform 50% tumor control dose (TCD50) is delivered to the whole tumor. For the second step an additional dose boost is delivered to radioresistant, hypoxic tumor regions. FSa fibrosarcomas grown in the gastrocnemius of the legs of C3H mice were used. Oxygen tension images were obtained using a 250 MHz pulse imager and injectable partially deuterated trityl OX63 (OX71) spin probe. Radiation was delivered with a novel animal intensity modulated radiation therapy (IMRT) XRAD225Cx microCT/radiation therapy delivery system. In a simplified scheme for boost dose delivery, the boost area is approximated by a sphere, whose radius and position are determined using an EPR O2 image. The sphere that irradiates the largest fraction of hypoxic voxels in the tumor was chosen using an algorithm based on Receiver Operator Characteristic (ROC) analysis. We used the fraction of irradiated hypoxic volume as the true positive determinant and the fraction of irradiated normoxic volume as the false positive determinant in the terms of that analysis. The most efficient treatment is the one that demonstrates the shortest distance from the ROC curve to the upper left corner of the ROC plot. The boost dose corresponds to the difference between TCD90 and TCD50 values. For the control experiment an identical radiation dose to the normoxic tumor area is delivered.

Entities:  

Keywords:  EPR imaging; Oxygen guided therapy; Oxygen imaging; Radiation therapy

Mesh:

Substances:

Year:  2016        PMID: 26782211      PMCID: PMC4747097          DOI: 10.1007/978-1-4939-3023-4_23

Source DB:  PubMed          Journal:  Adv Exp Med Biol        ISSN: 0065-2598            Impact factor:   2.622


  9 in total

1.  Accurate condensed history Monte Carlo simulation of electron transport. I. EGSnrc, the new EGS4 version.

Authors:  I Kawrakow
Journal:  Med Phys       Date:  2000-03       Impact factor: 4.071

2.  Basic principles of ROC analysis.

Authors:  C E Metz
Journal:  Semin Nucl Med       Date:  1978-10       Impact factor: 4.446

Review 3.  Towards multidimensional radiotherapy (MD-CRT): biological imaging and biological conformality.

Authors:  C C Ling; J Humm; S Larson; H Amols; Z Fuks; S Leibel; J A Koutcher
Journal:  Int J Radiat Oncol Biol Phys       Date:  2000-06-01       Impact factor: 7.038

4.  Immobilization Using Dental Material Casts Facilitates Accurate Serial and Multimodality Small Animal Imaging.

Authors:  Chad R Haney; Xiaobing Fan; Adrian D Parasca; Gregory S Karczmar; Howard J Halpern; Charles A Pelizzari
Journal:  Concepts Magn Reson Part B Magn Reson Eng       Date:  2008-04       Impact factor: 1.176

5.  Efficient photon beam dose calculations using DOSXYZnrc with BEAMnrc.

Authors:  I Kawrakow; B R B Walters
Journal:  Med Phys       Date:  2006-08       Impact factor: 4.071

6.  Absolute oxygen R1e imaging in vivo with pulse electron paramagnetic resonance.

Authors:  Boris Epel; Michael K Bowman; Colin Mailer; Howard J Halpern
Journal:  Magn Reson Med       Date:  2013-09-04       Impact factor: 4.668

7.  BEAM: a Monte Carlo code to simulate radiotherapy treatment units.

Authors:  D W Rogers; B A Faddegon; G X Ding; C M Ma; J We; T R Mackie
Journal:  Med Phys       Date:  1995-05       Impact factor: 4.071

8.  A Versatile High Speed 250 MHz Pulse Imager for Biomedical Applications.

Authors:  Boris Epel; Subramanian V Sundramoorthy; Colin Mailer; Howard J Halpern
Journal:  Concepts Magn Reson Part B Magn Reson Eng       Date:  2008-07-10       Impact factor: 1.176

9.  EPR oxygen images predict tumor control by a 50% tumor control radiation dose.

Authors:  Martyna Elas; Jessica M Magwood; Brandi Butler; Chanel Li; Rona Wardak; Rebekah DeVries; Eugene D Barth; Boris Epel; Samuel Rubinstein; Charles A Pelizzari; Ralph R Weichselbaum; Howard J Halpern
Journal:  Cancer Res       Date:  2013-07-16       Impact factor: 12.701

  9 in total
  4 in total

Review 1.  In Vivo pO2 Imaging of Tumors: Oxymetry with Very Low-Frequency Electron Paramagnetic Resonance.

Authors:  Boris Epel; Howard J Halpern
Journal:  Methods Enzymol       Date:  2015-09-26       Impact factor: 1.600

Review 2.  In Vivo Molecular Electron Paramagnetic Resonance-Based Spectroscopy and Imaging of Tumor Microenvironment and Redox Using Functional Paramagnetic Probes.

Authors:  Valery V Khramtsov
Journal:  Antioxid Redox Signal       Date:  2017-12-20       Impact factor: 8.401

3.  Trityl-based alkoxyamines as NMP controllers and spin-labels.

Authors:  Gérard Audran; Elena G Bagryanskaya; Paul Brémond; Mariya V Edeleva; Sylvain R A Marque; Dmitriy A Parkhomenko; Olga Yu Rogozhnikova; Victor M Tormyshev; Evgeny V Tretyakov; Dmitry V Trukhin; Svetlana I Zhivetyeva
Journal:  Polym Chem       Date:  2016-10-12       Impact factor: 5.582

4.  Small Animal IMRT Using 3D-Printed Compensators.

Authors:  Gage Redler; Erik Pearson; Xinmin Liu; Inna Gertsenshteyn; Boris Epel; Charles Pelizzari; Bulent Aydogan; Ralph Weichselbaum; Howard J Halpern; Rodney D Wiersma
Journal:  Int J Radiat Oncol Biol Phys       Date:  2020-12-26       Impact factor: 8.013

  4 in total

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