Real time transit dosimetry for the breath-hold radiotherapy technique: An initial experience

Introduction. The breath-hold is one of the techniques to obtain the dose escalation for lung tumors. However, the change of the patient's breath pattern can influence the stability of the inhaled air volume, IAV, used in this work as a surrogate parameter to assure the tumor position reproducibility during dose delivery.Materials. and methodIn this paper, an Elekta active breathing coordinator has been used for lung tumor irradiation. This device is not an absolute spirometer and the feasibility study here presented developed (i) the possibility to select a specific range ε of IAV values comfortable for the patient and (ii) the ability of a transit signal rate , obtained by a small ion-chamber positioned on the portal image device, to supply in real time the in vivo isocenter dose reproducibility. Indeed, while the selection of the IAV range depends on the patient's ability to follow instructions for breath-hold, the monitoring can supply to the radiation therapist a surrogate of the tumor irradiation reproducibility.Results. The detection of the in real time during breath-hold was used to determine the interfraction isocenter dose variations due to the reproducibility of the patient's breathing pattern. The agreement between the reconstructed and planned isocenter dose in breath-hold at the interfraction level was well within 1.5%, while in free breathing a disagreement up to 8% was observed. The standard deviation of the in breath-hold observed at the intrafraction level is a bit higher than the one obtained without the patient and this can be justified by the presence of a small residual tumor motion as heartbeat.Conclusion. The technique is simple and can be implemented for routine use in a busy clinic.

[1]  Steve B. Jiang,et al.  The management of respiratory motion in radiation oncology report of AAPM Task Group 76. , 2006, Medical physics.

[2]  Savino Cilla,et al.  Epid cine acquisition mode for in vivo dosimetry in dynamic arc radiation therapy , 2008 .

[3]  L. Azario,et al.  Dynamic conformal arc therapy: transmitted signal in vivo dosimetry. , 2008, Medical physics.

[4]  Jean-Claude Latombe,et al.  Image-Guided Robotic Radiosurgery , 1994, Modelling and Planning for Sensor Based Intelligent Robot Systems.

[5]  J. Wong,et al.  The use of active breathing control (ABC) to reduce margin for breathing motion. , 1999, International journal of radiation oncology, biology, physics.

[6]  Marcel van Herk,et al.  Short-term and long-term reproducibility of lung tumor position using active breathing control (ABC). , 2006, International journal of radiation oncology, biology, physics.

[7]  G J Kutcher,et al.  Deep inspiration breath-hold technique for lung tumors: the potential value of target immobilization and reduced lung density in dose escalation. , 1999, International journal of radiation oncology, biology, physics.

[8]  J. Petersen,et al.  Internal movement, set-up accuracy and margins for stereotactic body radiotherapy using a stereotactic body frame , 2006, Acta oncologica.

[9]  Savino Cilla,et al.  Application of a practical method for the isocenter point in vivo dosimetry by a transit signal , 2007, Physics in medicine and biology.

[10]  Jean-Philippe Pignol,et al.  Correlation of lung tumor motion with external surrogate indicators of respiration. , 2004, International journal of radiation oncology, biology, physics.

[11]  R. Mohan,et al.  Differential pencil beam dose computation model for photons. , 1986, Medical physics.

[12]  S. Vedam,et al.  Management of respiratory motion in radiation oncology , 2003 .

[13]  Geoffrey D Hugo,et al.  Population and patient-specific target margins for 4D adaptive radiotherapy to account for intra- and inter-fraction variation in lung tumour position , 2007, Physics in medicine and biology.

[14]  R K Ten Haken,et al.  Estimation of tumor control probability model parameters from 3-D dose distributions of non-small cell lung cancer patients. , 1999, Lung cancer.

[15]  Steve B. Jiang Radiotherapy of mobile tumors. , 2006, Seminars in radiation oncology.