Prompt gamma imaging with a slit camera for real-time range control in proton therapy

Treatments delivered by proton therapy are affected by uncertainties on the range of the beam within the patient. To reduce these margins and deliver safer treatments, different projects are currently investigating real-time range control by imaging prompt gammas emitted along the proton tracks in the patient. This study reports on the development and test of a prompt gamma camera using a slit collimator to obtain a 1-dimensional projection of the beam path on a scintillator detector. A first prototype slit camera using the HICAM gamma detector, originally developed for low-energy gamma-ray imaging in nuclear medicine and modified for this purpose, was tested successfully up to 230 MeV beam energy. Results now confirm the potential of this concept for real-time range monitoring with millimeter accuracy in pencil beam scanning mode for the whole range of clinical energies. With the experience gained, a new prototype is under study for clinical beam currents. In this work, we present both the profiles obtained at 230 MeV using HICAM and the description of the new gamma camera prototype design.

[1]  C. Eijk,et al.  Inorganic scintillators in medical imaging detectors , 2003 .

[2]  Denis Dauvergne,et al.  Design of a Compton camera for 3D prompt-γ imaging during ion beam therapy , 2011 .

[3]  M. Bajard,et al.  Monitoring the Bragg peak location of 73 MeV/u carbon ions by means of prompt γ-ray measurements , 2008, 0809.0185.

[4]  Wolfgang Enghardt,et al.  On the effectiveness of ion range determination from in-beam PET data , 2010, Physics in medicine and biology.

[5]  Chan Hyeong Kim,et al.  Simulation studies on the correlation of distal dose falloff of a 70-meV proton beam with a prompt gamma distribution , 2007 .

[6]  Katia Parodi,et al.  Patient study of in vivo verification of beam delivery and range, using positron emission tomography and computed tomography imaging after proton therapy. , 2007, International journal of radiation oncology, biology, physics.

[7]  M. Bajard,et al.  Monte Carlo Simulations of Prompt-Gamma Emission During Carbon Ion Irradiation , 2009, IEEE Transactions on Nuclear Science.

[8]  K. A. Van Riper,et al.  Building geometry models for Monte Carlo transport codes , 2007 .

[9]  H Paganetti,et al.  Monte Carlo patient study on the comparison of prompt gamma and PET imaging for range verification in proton therapy , 2011, Physics in medicine and biology.

[10]  A. Zoglauer,et al.  A Tracking Compton-Scattering Imaging System for Hadron Therapy Monitoring , 2010, IEEE Transactions on Nuclear Science.

[11]  L. Bombelli,et al.  A multi-channel ASIC for the readout of the HICAM gamma camera , 2008, 2008 IEEE Nuclear Science Symposium Conference Record.

[12]  Denis Dauvergne,et al.  Real-time monitoring of the Bragg-peak position in ion therapy by means of single photon detection , 2010, Radiation and environmental biophysics.

[13]  Chan Hyeong Kim,et al.  Determination of the distal dose edge in a human phantom by measuring the prompt gamma distribution: A monte carlo study , 2010 .

[14]  K. V. Van Riper Building geometry models for Monte Carlo transport codes , 2007, 2007 IEEE Nuclear Science Symposium Conference Record.

[15]  J. Herault,et al.  Spread-out Bragg peak and monitor units calculation with the Monte Carlo code MCNPX. , 2007, Medical physics.

[16]  Fons Rademakers,et al.  ROOT — An object oriented data analysis framework , 1997 .

[17]  Byung-Hwi Kang,et al.  Monte Carlo Design Study of a Gamma Detector System to Locate Distal Dose Falloff in Proton Therapy , 2009 .

[18]  F. Stichelbaut,et al.  Application of the HICAM camera for imaging of prompt gamma rays in measurements of proton beam range , 2011, 2011 IEEE Nuclear Science Symposium Conference Record.

[19]  Byung-Hwi Kang,et al.  Monte Carlo Design Study of a Gamma Detector System to Locate Distal Dose Falloff in Proton Therapy , 2009, IEEE Transactions on Nuclear Science.

[20]  C. Eijk,et al.  Inorganic scintillators in medical imaging. , 2002 .

[21]  H D Maccabee,et al.  Tissue activation studies with alpha-particle beams. , 1969, Physics in medicine and biology.

[22]  Hsiao-Ming Lu A point dose method for in vivo range verification in proton therapy , 2008, Physics in medicine and biology.

[23]  H. Soltau,et al.  The HICAM Gamma Camera , 2012, IEEE Transactions on Nuclear Science.

[24]  Wolfgang Enghardt,et al.  A Compton imager for in-vivo dosimetry of proton beams—A design study , 2011 .

[25]  H. Anger,et al.  CHAPTER 19 – RADIOISOTOPE CAMERAS , 1967 .

[26]  D Dauvergne,et al.  Design Guidelines for a Double Scattering Compton Camera for Prompt-$\gamma$ Imaging During Ion Beam Therapy: A Monte Carlo Simulation Study , 2011, IEEE Transactions on Nuclear Science.

[27]  H Paganetti,et al.  Systematic analysis of biological and physical limitations of proton beam range verification with offline PET/CT scans , 2009, Physics in medicine and biology.

[28]  Chan Hyeong Kim,et al.  Prompt gamma measurements for locating the dose falloff region in the proton therapy , 2006 .

[29]  H. Soltau,et al.  Silicon Drift Detectors arrays for the HICAM gamma camera , 2008, 2008 IEEE Nuclear Science Symposium Conference Record.

[30]  R. Mohan,et al.  Assessment of the accuracy of an MCNPX-based Monte Carlo simulation model for predicting three-dimensional absorbed dose distributions , 2008, Physics in medicine and biology.

[31]  Uwe Titt,et al.  Monte Carlo simulations of a nozzle for the treatment of ocular tumours with high-energy proton beams , 2005, Physics in medicine and biology.

[32]  Harald Paganetti,et al.  Relative biological effectiveness (RBE) values for proton beam therapy. , 2002, International journal of radiation oncology, biology, physics.

[33]  D Robertson,et al.  Optimizing a three-stage Compton camera for measuring prompt gamma rays emitted during proton radiotherapy , 2010, Physics in medicine and biology.

[34]  S Beddar,et al.  Measurement and calculation of characteristic prompt gamma ray spectra emitted during proton irradiation , 2009, Physics in medicine and biology.

[35]  Alfred R. Smith,et al.  Initial beam size study for passive scatter proton therapy. II. Changes in delivered depth dose profiles. , 2007, Medical physics.

[36]  Jong-Won Kim,et al.  Pinhole Camera Measurements of Prompt Gamma-rays for Detection of Beam Range Variation in Proton Therapy , 2009 .

[37]  Chan Hyeong Kim,et al.  Determination of distal dose edge location by measuring right-angled prompt-gamma rays from a 38 MeV proton beam , 2007 .

[38]  Chan Hyeong Kim,et al.  Development of an array-type prompt gamma detection system for the online measurement of the range of the proton beam in a patient: A Monte Carlo feasibility study , 2008 .

[39]  Freek Beekman,et al.  Real-time prompt gamma monitoring in spot-scanning proton therapy using imaging through a knife-edge-shaped slit , 2012, Physics in medicine and biology.

[40]  K. Lee,et al.  Monte-Carlo Simulations for Proton-beam-induced Prompt Radiations in Biological Tissue , 2011 .

[41]  F. Rademakers,et al.  ROOT — An object oriented data analysis framework , 1997 .

[42]  Reuven Ramaty,et al.  Nuclear Deexcitation Gamma-Ray Lines from Accelerated Particle Interactions , 2001 .

[43]  R. Cloutier Tissue Substitutes in Radiation Dosimetry and Measurement. , 1989 .

[44]  L Grevillot,et al.  GATE as a GEANT4-based Monte Carlo platform for the evaluation of proton pencil beam scanning treatment plans , 2012, Physics in medicine and biology.

[45]  R. Accorsi,et al.  Resolution- versus sensitivity-effective diameter in pinhole collimation: experimental verification , 2005, Physics in medicine and biology.

[46]  G. Lucignani,et al.  Applications of the HICAM gamma camera , 2010, IEEE Nuclear Science Symposuim & Medical Imaging Conference.

[47]  C Nauraye,et al.  Monte Carlo modelling of the treatment line of the Proton Therapy Center in Orsay , 2009, Physics in medicine and biology.

[48]  G Ciangaru,et al.  Prompt gamma-ray emission from biological tissues during proton irradiation: a preliminary study , 2009, Physics in medicine and biology.

[49]  Sam Beddar,et al.  Material efficiency studies for a Compton camera designed to measure characteristic prompt gamma rays emitted during proton beam radiotherapy , 2011, Physics in medicine and biology.

[50]  Denis Dauvergne,et al.  Dose profile monitoring with carbon ions by means of prompt-gamma measurements , 2009 .