Skip to main content
Top
Published in: Radiation Oncology 1/2017

Open Access 01-12-2017 | Review

Present state and issues in IORT Physics

Author: Frank W. Hensley

Published in: Radiation Oncology | Issue 1/2017

Login to get access

Abstract

Literature was reviewed to assess the physical aspects governing the present and emerging technologies used in intraoperative radiation therapy (IORT). Three major technologies were identified: treatment with electrons, treatment with external generators of kV X-rays and electronic brachytherapy. Although also used in IORT, literature on brachytherapy with radioactive sources is not systematically reviewed since an extensive own body of specialized literature and reviews exists in this field. A comparison with radioactive sources is made in the use of balloon catheters for partial breast irradiation where these are applied in almost an identical applicator technique as used with kV X-ray sources. The physical constraints of adaption of the dose distribution to the extended target in breast IORT are compared. Concerning further physical issues, the literature on radiation protection, commissioning, calibration, quality assurance (QA) and in-vivo dosimetry of the three technologies was reviewed. Several issues were found in the calibration and the use of dosimetry detectors and phantoms for low energy X-rays which require further investigation. The uncertainties in the different steps of dose determination were estimated, leading to an estimated total uncertainty of around 10-15% for IORT procedures. The dose inhomogeneity caused by the prescription of electrons at 90% and by the steep dose gradient of kV X-rays causes additional deviations from prescription dose which must be considered in the assessment of dose response in IORT.
Appendix
Available only for authorised users
Literature
1.
go back to reference Palta JR, Biggs PJ, Hazle JD, Huq MS, Dahl RA, Ochran TG, Soen J, Dobelbower Jr RR, McCullough EC. Intraoperative electron beam radiation therapy: technique, dosimetry, and dose specification: report of task force 48 of the Radiation Therapy Committee, American Association of Physicists in Medicine. Int J Radiat Oncol Biol Phys. 1995;33:725–46.PubMedCrossRef Palta JR, Biggs PJ, Hazle JD, Huq MS, Dahl RA, Ochran TG, Soen J, Dobelbower Jr RR, McCullough EC. Intraoperative electron beam radiation therapy: technique, dosimetry, and dose specification: report of task force 48 of the Radiation Therapy Committee, American Association of Physicists in Medicine. Int J Radiat Oncol Biol Phys. 1995;33:725–46.PubMedCrossRef
2.
go back to reference Beddar AS, Biggs PJ, Chang S, Ezzell GA, Faddegon BA, Hensley FW, Mills MD. Intraoperative radiation therapy using mobile electron linear accelerators: Report of AAPM Radiation Therapy Committee Task Group No. 72. Med Phys. 2006;33:1476–89.PubMedCrossRef Beddar AS, Biggs PJ, Chang S, Ezzell GA, Faddegon BA, Hensley FW, Mills MD. Intraoperative radiation therapy using mobile electron linear accelerators: Report of AAPM Radiation Therapy Committee Task Group No. 72. Med Phys. 2006;33:1476–89.PubMedCrossRef
3.
go back to reference Rosi A and Viti V (eds.). Guidelines for quality assurance in intra-operative radiation therapy (English version). Rapporti ISTISAN 03/1 EN 2003 Istituto Superiore di Sanità (Viale Regina Elena, 299 - 00161 Roma) Rosi A and Viti V (eds.). Guidelines for quality assurance in intra-operative radiation therapy (English version). Rapporti ISTISAN 03/1 EN 2003 Istituto Superiore di Sanità (Viale Regina Elena, 299 - 00161 Roma)
4.
go back to reference Soriani A, Felici G, Fantini M, Paolucci M, Borla O, Evangelisti G, Benassi M, Strigari L. Radiation protection measurements around a 12 MeV mobile dedicated IORT accelerator. Med Phys. 2010;37:995–1003.PubMedCrossRef Soriani A, Felici G, Fantini M, Paolucci M, Borla O, Evangelisti G, Benassi M, Strigari L. Radiation protection measurements around a 12 MeV mobile dedicated IORT accelerator. Med Phys. 2010;37:995–1003.PubMedCrossRef
5.
go back to reference National Council on Radiation Protection and Measurements. Neutron contamination from medical accelerators. NCRP Report No. 79. Bethesda: NCRP; 1984. National Council on Radiation Protection and Measurements. Neutron contamination from medical accelerators. NCRP Report No. 79. Bethesda: NCRP; 1984.
6.
go back to reference Loi G, Dominietto M, Cannillo B, Ciocca M, Krengli M, Mones E, Negri E, Brambilla M. Neutron production from a mobile linear accelerator operating in electron mode for intraoperative radiation therapy. Phys Med Biol. 2006;51:695–702.PubMedCrossRef Loi G, Dominietto M, Cannillo B, Ciocca M, Krengli M, Mones E, Negri E, Brambilla M. Neutron production from a mobile linear accelerator operating in electron mode for intraoperative radiation therapy. Phys Med Biol. 2006;51:695–702.PubMedCrossRef
7.
go back to reference Jaradat AK, Biggs PJ. Measurement of the neutron leakage from a dedicated intraoperative radiation therapy electron linear accelerator and a conventional linear accelerator for 9, 12, 15(16) and 18(20) MeV electron energies. Med Phys. 2008;35:1711–17.PubMedCrossRef Jaradat AK, Biggs PJ. Measurement of the neutron leakage from a dedicated intraoperative radiation therapy electron linear accelerator and a conventional linear accelerator for 9, 12, 15(16) and 18(20) MeV electron energies. Med Phys. 2008;35:1711–17.PubMedCrossRef
8.
go back to reference Hogstrom KR, Boyer AL, Shiu AS, Ochran TG, Kirsner SM, Krispel F, Rich T. Design of metallic electron beam cones for an intraoperative therapy linear accelerator. Int J Radiat Oncol Biol Phys. 1990;18:1223–32.PubMedCrossRef Hogstrom KR, Boyer AL, Shiu AS, Ochran TG, Kirsner SM, Krispel F, Rich T. Design of metallic electron beam cones for an intraoperative therapy linear accelerator. Int J Radiat Oncol Biol Phys. 1990;18:1223–32.PubMedCrossRef
9.
go back to reference Beddar AS, Krishnan S. Intraoperative radiotherapy using a mobile electron LINAC: A retroperitoneal sarcoma case. J Appl Clin Med Phys. 2005;6:95–107.PubMed Beddar AS, Krishnan S. Intraoperative radiotherapy using a mobile electron LINAC: A retroperitoneal sarcoma case. J Appl Clin Med Phys. 2005;6:95–107.PubMed
11.
go back to reference Shaw EG, Blackwell CR, McCullough EC, Gunderson LL. Matching intraoperative electron-beam fields: dosimetric and clinical considerations. Int J Radiat Oncol Biol Phys. 1987;13:1303–7.PubMedCrossRef Shaw EG, Blackwell CR, McCullough EC, Gunderson LL. Matching intraoperative electron-beam fields: dosimetric and clinical considerations. Int J Radiat Oncol Biol Phys. 1987;13:1303–7.PubMedCrossRef
12.
go back to reference Beddar AS, Briere TM, Ouzidane M. Intraoperative radiation therapy using a mobile electron linear accelerator: field matching for large-field electron irradiation. Phys Med Biol. 2006;51:N331–7.PubMedCrossRef Beddar AS, Briere TM, Ouzidane M. Intraoperative radiation therapy using a mobile electron linear accelerator: field matching for large-field electron irradiation. Phys Med Biol. 2006;51:N331–7.PubMedCrossRef
13.
go back to reference Esposito A, Sakellaris T, Limede P, Costa F, Cunha LT, Dias AG, Lencart J, Sarmento S, Carmelo Rosa C: Effects of shielding on pelvic and abdominal IORT dose distributions. Physica Medica 2016, in press. Esposito A, Sakellaris T, Limede P, Costa F, Cunha LT, Dias AG, Lencart J, Sarmento S, Carmelo Rosa C: Effects of shielding on pelvic and abdominal IORT dose distributions. Physica Medica 2016, in press.
14.
go back to reference Fraas BA, Miller RW, Kinsella TJ, Sindelar WF, Harrington FS, Yeakel K, van de Geijn J, Glatstein E. Intraoperative Radiation therapy at the National Cancer Institute: technical innovations and dosimetry. Int J Radiat Oncol Biol Phys. 1895;11:1299–311.CrossRef Fraas BA, Miller RW, Kinsella TJ, Sindelar WF, Harrington FS, Yeakel K, van de Geijn J, Glatstein E. Intraoperative Radiation therapy at the National Cancer Institute: technical innovations and dosimetry. Int J Radiat Oncol Biol Phys. 1895;11:1299–311.CrossRef
15.
go back to reference Soriani A, Iaccarino GG, Ciccotelli A, Pinnarò P, Carolina Giordano C, Benassi M, D’Andrea M, Bellesi L, Lidia Strigari L. Development and optimization of a beam shaper device for a mobile dedicated IOERT accelerator. Med Phys. 2012;39:6080–89.PubMedCrossRef Soriani A, Iaccarino GG, Ciccotelli A, Pinnarò P, Carolina Giordano C, Benassi M, D’Andrea M, Bellesi L, Lidia Strigari L. Development and optimization of a beam shaper device for a mobile dedicated IOERT accelerator. Med Phys. 2012;39:6080–89.PubMedCrossRef
16.
go back to reference Dinsmore M, Harte KJ, Sliski AP, Smith DO, Nomikos PM, Dalterio MJ, Boom AJ, Leonard WF, Oettinger PE, Yanch JC. A new miniature x-ray source for interstitial radiosurgery: device description. Med Phys. 1996;23:45–52.PubMedCrossRef Dinsmore M, Harte KJ, Sliski AP, Smith DO, Nomikos PM, Dalterio MJ, Boom AJ, Leonard WF, Oettinger PE, Yanch JC. A new miniature x-ray source for interstitial radiosurgery: device description. Med Phys. 1996;23:45–52.PubMedCrossRef
17.
go back to reference Beatty J, Biggs PJ, Gall K, Okunieff P, Pardo FS, Harte KJ, Dalterio MJ, Sliski AP. A new miniature x-ray device for interstitial radiosurgery: dosimetry. Med Phys. 1996;23:53–62.PubMedCrossRef Beatty J, Biggs PJ, Gall K, Okunieff P, Pardo FS, Harte KJ, Dalterio MJ, Sliski AP. A new miniature x-ray device for interstitial radiosurgery: dosimetry. Med Phys. 1996;23:53–62.PubMedCrossRef
20.
go back to reference Douglas RM, Beatty J, Gall K, Valenzuela RF, Biggs P, Okunieff P, Pardo FS. Dosimetric results from a feasibility study of a novel radiosurgical source for irradiation of intracranial metastases. Int J Radiat Oncol Biol Phys. 1996;36:443–50.PubMedCrossRef Douglas RM, Beatty J, Gall K, Valenzuela RF, Biggs P, Okunieff P, Pardo FS. Dosimetric results from a feasibility study of a novel radiosurgical source for irradiation of intracranial metastases. Int J Radiat Oncol Biol Phys. 1996;36:443–50.PubMedCrossRef
21.
go back to reference Vaidya JS, Baum M, Tobias JS, Morgan S, D'Souza D. The novel technique of delivering targeted intraoperative radiotherapy (Targit) for early breast cancer. Eur J Surg Oncol. 2002;28(4):447–54.PubMedCrossRef Vaidya JS, Baum M, Tobias JS, Morgan S, D'Souza D. The novel technique of delivering targeted intraoperative radiotherapy (Targit) for early breast cancer. Eur J Surg Oncol. 2002;28(4):447–54.PubMedCrossRef
22.
go back to reference Vaidya JS, Joseph DJ, Tobias JS, Bulsara M, Wenz F, Saunders C, Alvarado M, Flyger HL, Massarut S, Eiermann W, Keshtgar M, Dewar J, Kraus-Tiefenbacher U, Sütterlin M, Esserman L, Holtveg HM, Roncadin M, Pigorsch S, Metaxas M, Falzon M, Matthews A, Corica T, Williams NR, Baum M. Targeted intraoperative radiotherapy versus whole breast radiotherapy for breast cancer (TARGIT-A trial): an international, prospective, randomised, non-inferiority phase 3 trial. Lancet. 2010;376:91–102. doi:10.1016/S0140-6736(10)60837-9. Erratum in: Lancet 2010, 376: 90.PubMedCrossRef Vaidya JS, Joseph DJ, Tobias JS, Bulsara M, Wenz F, Saunders C, Alvarado M, Flyger HL, Massarut S, Eiermann W, Keshtgar M, Dewar J, Kraus-Tiefenbacher U, Sütterlin M, Esserman L, Holtveg HM, Roncadin M, Pigorsch S, Metaxas M, Falzon M, Matthews A, Corica T, Williams NR, Baum M. Targeted intraoperative radiotherapy versus whole breast radiotherapy for breast cancer (TARGIT-A trial): an international, prospective, randomised, non-inferiority phase 3 trial. Lancet. 2010;376:91–102. doi:10.​1016/​S0140-6736(10)60837-9. Erratum in: Lancet 2010, 376: 90.PubMedCrossRef
23.
go back to reference Vaidya JS, Wenz F, Bulsara M, Tobias JS, Joseph DJ, Keshtgar M, Flyger HL, Massarut S, Alvarado M, Saunders C, Eiermann W, Metaxas M, Sperk E, Sütterlin M, Brown D, Esserman L, Roncadin M, Thompson A, Dewar JA, Holtveg HM, Pigorsch S, Falzon M, Harris E, Matthews A, Brew-Graves C, Potyka I, Corica T, Williams NR, Baum M, TARGIT trialists' group. Risk-adapted targeted intraoperative radiotherapy versus whole-breast radiotherapy for breast cancer: 5-year results for local control and overall survival from the TARGIT-A randomised trial. Lancet. 2014;383:603–13. doi:10.1016/S0140-6736(13)61950-9. Epub 2013 Nov 11. Erratum in: Lancet 2014, 383: 602.PubMedCrossRef Vaidya JS, Wenz F, Bulsara M, Tobias JS, Joseph DJ, Keshtgar M, Flyger HL, Massarut S, Alvarado M, Saunders C, Eiermann W, Metaxas M, Sperk E, Sütterlin M, Brown D, Esserman L, Roncadin M, Thompson A, Dewar JA, Holtveg HM, Pigorsch S, Falzon M, Harris E, Matthews A, Brew-Graves C, Potyka I, Corica T, Williams NR, Baum M, TARGIT trialists' group. Risk-adapted targeted intraoperative radiotherapy versus whole-breast radiotherapy for breast cancer: 5-year results for local control and overall survival from the TARGIT-A randomised trial. Lancet. 2014;383:603–13. doi:10.​1016/​S0140-6736(13)61950-9. Epub 2013 Nov 11. Erratum in: Lancet 2014, 383: 602.PubMedCrossRef
24.
go back to reference Vaidya JS, Baum M, Tobias JS, Wenz F, Massarut S, Keshtgar M, Hilaris B, Saunders C, Williams NR, Brew-Graves C, Corica T, Roncadin M, Kraus-Tiefenbacher U, Sütterlin M, Bulsara M, Joseph D. Long-term results of targeted intraoperative radiotherapy (Targit) boost during breast-conserving surgery. Int J Radiat Oncol Biol Phys. 2011;81:1091–7. doi:10.1016/j.ijrobp.2010.07.1996.PubMedCrossRef Vaidya JS, Baum M, Tobias JS, Wenz F, Massarut S, Keshtgar M, Hilaris B, Saunders C, Williams NR, Brew-Graves C, Corica T, Roncadin M, Kraus-Tiefenbacher U, Sütterlin M, Bulsara M, Joseph D. Long-term results of targeted intraoperative radiotherapy (Targit) boost during breast-conserving surgery. Int J Radiat Oncol Biol Phys. 2011;81:1091–7. doi:10.​1016/​j.​ijrobp.​2010.​07.​1996.PubMedCrossRef
25.
go back to reference Schneider F, Clausen S, Thölking J, Wenz F, Abo-Madyan Y. A novel approach for superficial intraoperative radiotherapy (IORT) using a 50 kV X-ray source: a technical and case report. J Appl Clin Med Phys. 2014;15:4502. doi:10.1120/jacmp.v15i1.4502.PubMedCrossRef Schneider F, Clausen S, Thölking J, Wenz F, Abo-Madyan Y. A novel approach for superficial intraoperative radiotherapy (IORT) using a 50 kV X-ray source: a technical and case report. J Appl Clin Med Phys. 2014;15:4502. doi:10.​1120/​jacmp.​v15i1.​4502.PubMedCrossRef
27.
go back to reference Schneider F, Greineck F, Clausen S, Mai S, Obertacke U, Reis T, Wenz F. Development of a novel method for intraoperative radiotherapy during kyphoplasty for spinal metastases (Kypho-IORT). Int J Radiat Oncol Biol Phys. 2011;81:1114–9.PubMedCrossRef Schneider F, Greineck F, Clausen S, Mai S, Obertacke U, Reis T, Wenz F. Development of a novel method for intraoperative radiotherapy during kyphoplasty for spinal metastases (Kypho-IORT). Int J Radiat Oncol Biol Phys. 2011;81:1114–9.PubMedCrossRef
28.
go back to reference Croce O, Hachem S, Franchisseur E, Marcié S, Gérard J-P, Bordy J-M. Contact radiotherapy using a 50kVX-ray system: Evaluation of relative dose distribution with the Monte Carlo code PENELOPE and comparison with measurements. Radiat Phys Chem. 2012;81:609–17.CrossRef Croce O, Hachem S, Franchisseur E, Marcié S, Gérard J-P, Bordy J-M. Contact radiotherapy using a 50kVX-ray system: Evaluation of relative dose distribution with the Monte Carlo code PENELOPE and comparison with measurements. Radiat Phys Chem. 2012;81:609–17.CrossRef
29.
go back to reference White Paper on Papillon Sytem WP-1-06-15. Ariane Medical Systems, 15 Handyside Drive, Derby DE1 3BY, UK White Paper on Papillon Sytem WP-1-06-15. Ariane Medical Systems, 15 Handyside Drive, Derby DE1 3BY, UK
30.
go back to reference Park CC, Yom SS, Podgorsak MB, Harris E, Price RA JR, Bevan A, Pouliot J, Konski AA, Wallner PE. Electronic Brachytherapy Working Group. American Society for Therapeutic Radiology and Oncology (ASTRO) Emerging Technology Committee Report on Electronic Brachytherapy. Int J Radiat Oncol Biol Phys. 2010;76:963–72.PubMedCrossRef Park CC, Yom SS, Podgorsak MB, Harris E, Price RA JR, Bevan A, Pouliot J, Konski AA, Wallner PE. Electronic Brachytherapy Working Group. American Society for Therapeutic Radiology and Oncology (ASTRO) Emerging Technology Committee Report on Electronic Brachytherapy. Int J Radiat Oncol Biol Phys. 2010;76:963–72.PubMedCrossRef
31.
go back to reference Rivard MJ, DeWerd L, Coursey BM, DeWerd LA, Hanson WF, Huq MS, Ibbott GS, Mitch MG, NAth R, Williamson JF. Update of AAPM Task Group No. 43 Report: A revised AAPM protocol for brachytherapy dose calculations. Med Phys. 2004;31:633–74.PubMedCrossRef Rivard MJ, DeWerd L, Coursey BM, DeWerd LA, Hanson WF, Huq MS, Ibbott GS, Mitch MG, NAth R, Williamson JF. Update of AAPM Task Group No. 43 Report: A revised AAPM protocol for brachytherapy dose calculations. Med Phys. 2004;31:633–74.PubMedCrossRef
32.
go back to reference Rivard MJ, Davis SD, DeWerd LA, Rush T, Axelrod S. Calculated and measured brachytherapy dosimetry parameters in water for the Xoft Axxent X-ray source: an electronic brachytherapy source. Med Phys. 2006;33:4020–32.CrossRef Rivard MJ, Davis SD, DeWerd LA, Rush T, Axelrod S. Calculated and measured brachytherapy dosimetry parameters in water for the Xoft Axxent X-ray source: an electronic brachytherapy source. Med Phys. 2006;33:4020–32.CrossRef
34.
35.
go back to reference Holland R, Veling SHJ, Mravunac M, Hendriks JHCL. Histologic Multifocality of Tis, T I -2 Breast Carcinomas. Implications for Clinical Trials of Breast-Conserving Surgery. Cancer. 1985;56:979–90.PubMedCrossRef Holland R, Veling SHJ, Mravunac M, Hendriks JHCL. Histologic Multifocality of Tis, T I -2 Breast Carcinomas. Implications for Clinical Trials of Breast-Conserving Surgery. Cancer. 1985;56:979–90.PubMedCrossRef
38.
go back to reference Intra M, Luini A, Gatti G, Ciocca M, Gentilini OD, Viana AAC, Chagas EM, Berrettini A, Schuh F, Scarpa D, Orecchia R, Veronesi. Surgical technique of intraoperative radiation therapy with electrons (ELIOT) in breast cancer: A lesson learned by over 1000 patients. Surgery. 2006;140:467–71.PubMedCrossRef Intra M, Luini A, Gatti G, Ciocca M, Gentilini OD, Viana AAC, Chagas EM, Berrettini A, Schuh F, Scarpa D, Orecchia R, Veronesi. Surgical technique of intraoperative radiation therapy with electrons (ELIOT) in breast cancer: A lesson learned by over 1000 patients. Surgery. 2006;140:467–71.PubMedCrossRef
39.
go back to reference Veronesi U, Gatti G, Luini A, Intra M, Orecchia R, Borgen P, Zelefsky M, NcCormick B, Sacchini V. Intraoperative Radiation Therapy for Breast Cancer: Technical notes. Breast J. 2003;9:106–12.PubMedCrossRef Veronesi U, Gatti G, Luini A, Intra M, Orecchia R, Borgen P, Zelefsky M, NcCormick B, Sacchini V. Intraoperative Radiation Therapy for Breast Cancer: Technical notes. Breast J. 2003;9:106–12.PubMedCrossRef
40.
go back to reference Martigniano A, Menegotti L, Veronesi A. Monte Carlo investigation of breast intraoperative radiation therapy with metal attenuator plates. Med Phys. 2007;34:4578–84.CrossRef Martigniano A, Menegotti L, Veronesi A. Monte Carlo investigation of breast intraoperative radiation therapy with metal attenuator plates. Med Phys. 2007;34:4578–84.CrossRef
41.
go back to reference Oshima T, Aoyama Y, Shimozato T, Sawaki M, Imai T, Ito Y, Tabushi K. An experimental attenuation plate to improve the dose distribution in intraoperative electron beam radiotherapy for breast cancer. Phys Med Bio. 2009;54:3491–500.CrossRef Oshima T, Aoyama Y, Shimozato T, Sawaki M, Imai T, Ito Y, Tabushi K. An experimental attenuation plate to improve the dose distribution in intraoperative electron beam radiotherapy for breast cancer. Phys Med Bio. 2009;54:3491–500.CrossRef
42.
go back to reference Ebert MA, Carruthers B. Dosimetric characteristics of a low-kV intra-operative x-ray source: Implications for use in a clinical trial for treatment of low-risk breast cancer. Med Phys. 2003;30:2424–31.PubMedCrossRef Ebert MA, Carruthers B. Dosimetric characteristics of a low-kV intra-operative x-ray source: Implications for use in a clinical trial for treatment of low-risk breast cancer. Med Phys. 2003;30:2424–31.PubMedCrossRef
46.
go back to reference White SA, Landry G, Fonseca GP, Holt R, Rusch T, Beaulieu L, Verhaegen F, Reniers B. Comparison of TG-43 and TG-186 in breast irradiation using a low energy electronic brachytherapy source. Med Phys. 2014;41:061701. doi:10.1118/1.4873319.PubMedCrossRef White SA, Landry G, Fonseca GP, Holt R, Rusch T, Beaulieu L, Verhaegen F, Reniers B. Comparison of TG-43 and TG-186 in breast irradiation using a low energy electronic brachytherapy source. Med Phys. 2014;41:061701. doi:10.​1118/​1.​4873319.PubMedCrossRef
47.
go back to reference Sadeghi A, Prestidge B, Lee JM, Rosenthal A. Evaluation of the surface radiation dose and dose gradient in early stage breast cancer using high-dose-rate brachytherapy MammoSite applicator. Brachytherapy. 2006;5:230–4.PubMedCrossRef Sadeghi A, Prestidge B, Lee JM, Rosenthal A. Evaluation of the surface radiation dose and dose gradient in early stage breast cancer using high-dose-rate brachytherapy MammoSite applicator. Brachytherapy. 2006;5:230–4.PubMedCrossRef
48.
go back to reference Andreoli S, Moretti R, Catalano M, and Locatelli F: Simulated versus realistic IORT treatment in operating room: from knowledge of stray radiation to action. Internal Report to Ospedale di Bergamo on stray radiation of Novac 7, Bergamo 2006. Andreoli S, Moretti R, Catalano M, and Locatelli F: Simulated versus realistic IORT treatment in operating room: from knowledge of stray radiation to action. Internal Report to Ospedale di Bergamo on stray radiation of Novac 7, Bergamo 2006.
49.
go back to reference Ciocca M, Pedroli G, Orecchia R, Guido A, Cattani F, Cambria R, Veronesi U. Radiation survey around a Liac mobile electron linear accelerator for intraoperative radiation therapy. J Appl Clin Med Phys. 2009;10:131–8.CrossRef Ciocca M, Pedroli G, Orecchia R, Guido A, Cattani F, Cambria R, Veronesi U. Radiation survey around a Liac mobile electron linear accelerator for intraoperative radiation therapy. J Appl Clin Med Phys. 2009;10:131–8.CrossRef
50.
go back to reference Daves, Mills MD. Shielding assessment of a mobile electron accelerator for intraoperative radiotherapy. J Appl Clin Med Phys. 2001;2:165–73.PubMedCrossRef Daves, Mills MD. Shielding assessment of a mobile electron accelerator for intraoperative radiotherapy. J Appl Clin Med Phys. 2001;2:165–73.PubMedCrossRef
51.
go back to reference Krechetov AS, Goer D, Dikeman K, Daves JL, Mills MD. Shielding assessment of a mobile electron accelerator for intra-operative radiotherapy. J Appl Clin Med Phys. 2010;11:3151.PubMedCrossRef Krechetov AS, Goer D, Dikeman K, Daves JL, Mills MD. Shielding assessment of a mobile electron accelerator for intra-operative radiotherapy. J Appl Clin Med Phys. 2010;11:3151.PubMedCrossRef
52.
go back to reference NCRP Report No. 49: Structural Shielding Design and Evaluation for Medical Use of X-Rays and Gamma Rays up tp 10 MeV. National Council on Radiation Protection and Measurements. 7910 Woodmont Avenue, Bethesda MD 20814, USA 1998 NCRP Report No. 49: Structural Shielding Design and Evaluation for Medical Use of X-Rays and Gamma Rays up tp 10 MeV. National Council on Radiation Protection and Measurements. 7910 Woodmont Avenue, Bethesda MD 20814, USA 1998
53.
go back to reference DIN 6847-2 (2008): Medizinische Elektronenbeschleuniger-Anlagen – Teil2: Regeln für die Auslegung des baulichen Strahlenschutzes. DIN Deutsches Institut für Normung, Berlin DIN 6847-2 (2008): Medizinische Elektronenbeschleuniger-Anlagen – Teil2: Regeln für die Auslegung des baulichen Strahlenschutzes. DIN Deutsches Institut für Normung, Berlin
54.
go back to reference Zutz H, Hupe O. Ambient dose and dose rate measurements in the vicinity of Elekta Precise accelerators for radiation therapy. Rad Prot Dosim. 2014;162:431–7.CrossRef Zutz H, Hupe O. Ambient dose and dose rate measurements in the vicinity of Elekta Precise accelerators for radiation therapy. Rad Prot Dosim. 2014;162:431–7.CrossRef
57.
go back to reference Sutton DG, Williams JR. Radiation shielding for diagnostic x-rays. London: British Institute of Radiology; 2000. Sutton DG, Williams JR. Radiation shielding for diagnostic x-rays. London: British Institute of Radiology; 2000.
58.
go back to reference Hensley FW. Dose consumption for quality assurance and maintenance at a dedicated IORT accelerator. J Appl Clin Med Phys. 2009;10:2292.PubMedCrossRef Hensley FW. Dose consumption for quality assurance and maintenance at a dedicated IORT accelerator. J Appl Clin Med Phys. 2009;10:2292.PubMedCrossRef
59.
go back to reference Pimpinella M, Mihailescu D, Guerra AS, Laitano RF. Dosimetric characteristics of electron beams produced by a mobile accelerator for IORT. Phys Med Biol. 2007;52:6197–214.PubMedCrossRef Pimpinella M, Mihailescu D, Guerra AS, Laitano RF. Dosimetric characteristics of electron beams produced by a mobile accelerator for IORT. Phys Med Biol. 2007;52:6197–214.PubMedCrossRef
60.
go back to reference Righi S, Karaj E, Felici G, Di Martino F. Dosimetric characteristics of electron beams produced by two mobile accelerators, Novac7 and Liac, for intraoperative radiation therapy through Monte Carlo Calculations. J Appl Cin Med Phys. 2013;14:6–18.CrossRef Righi S, Karaj E, Felici G, Di Martino F. Dosimetric characteristics of electron beams produced by two mobile accelerators, Novac7 and Liac, for intraoperative radiation therapy through Monte Carlo Calculations. J Appl Cin Med Phys. 2013;14:6–18.CrossRef
61.
go back to reference Iaccarino G, Strigari L, D’Andrea M, Bellest L, Felici G, Ciccotelli A, Benassi M, Soriani A. Monte Carlo simulation of electron beams generated by a 12 MeV dedicated mobile IORT accelerator. Phys Med Biol. 2011;56:4579–96.PubMedCrossRef Iaccarino G, Strigari L, D’Andrea M, Bellest L, Felici G, Ciccotelli A, Benassi M, Soriani A. Monte Carlo simulation of electron beams generated by a 12 MeV dedicated mobile IORT accelerator. Phys Med Biol. 2011;56:4579–96.PubMedCrossRef
62.
go back to reference Runz A, Wagenknecht K, Echner G, Roeder F, Timke C, Hensley F. A positioning tool for reproducible measurements of beveled IORT applicators on accelerators without room-related position indicators. Radiother Oncol. 2011;99 Suppl 1:S24. Runz A, Wagenknecht K, Echner G, Roeder F, Timke C, Hensley F. A positioning tool for reproducible measurements of beveled IORT applicators on accelerators without room-related position indicators. Radiother Oncol. 2011;99 Suppl 1:S24.
63.
go back to reference International Atomic Energy Agency: Absorbed Dose Determination in External Beam Radiotherapy Based on Absorbed-Dose-to-Water Standards: An International Code of Practice for Dosimetry. IAEA, Technical Report Series No. 398. IAEA, Vienna, 2000 International Atomic Energy Agency: Absorbed Dose Determination in External Beam Radiotherapy Based on Absorbed-Dose-to-Water Standards: An International Code of Practice for Dosimetry. IAEA, Technical Report Series No. 398. IAEA, Vienna, 2000
64.
go back to reference Almond PR, Biggs PJ, Hanson WF, Huq MS, Nath R, Rogers DWO. AAPM’s TG-51 protocol for clinical reference dosimetry of high-energy photon and electron beams. Med Phys. 1999;26:1847–70.PubMedCrossRef Almond PR, Biggs PJ, Hanson WF, Huq MS, Nath R, Rogers DWO. AAPM’s TG-51 protocol for clinical reference dosimetry of high-energy photon and electron beams. Med Phys. 1999;26:1847–70.PubMedCrossRef
65.
go back to reference DIN 6800-2 (2008): Dosismessverfahren nach der Sondenmethode für Photonen- und Elektronenstrahlung — Teil 2: Dosimetrie hochenergetischer Photonen- und Elektronenstrahlung mit Ionisationskammern. DIN Deutsches Institut für Normung, Berlin DIN 6800-2 (2008): Dosismessverfahren nach der Sondenmethode für Photonen- und Elektronenstrahlung — Teil 2: Dosimetrie hochenergetischer Photonen- und Elektronenstrahlung mit Ionisationskammern. DIN Deutsches Institut für Normung, Berlin
66.
go back to reference International Atomic Energy Agency: The Use of Plane-parallel Ionization Chambers in High-energy Electron and Photon Beams. An International Code of Practice for Dosimetry, Technical Reports Series No. 381, IAEA, Vienna (1997). International Atomic Energy Agency: The Use of Plane-parallel Ionization Chambers in High-energy Electron and Photon Beams. An International Code of Practice for Dosimetry, Technical Reports Series No. 381, IAEA, Vienna (1997).
67.
go back to reference Boag JW. Ionization measurements at very high intensities. I. Pulsed radiation Beams. Brit J Radiol. 1950;23:601.PubMedCrossRef Boag JW. Ionization measurements at very high intensities. I. Pulsed radiation Beams. Brit J Radiol. 1950;23:601.PubMedCrossRef
68.
go back to reference Boag JW. Ionization Chambers. In: Attix FH, Roesch WC, editors. Radiation Dosimetry Second Edition, Vol II: Instrumentation. New York: Academic Press; 1966. Boag JW. Ionization Chambers. In: Attix FH, Roesch WC, editors. Radiation Dosimetry Second Edition, Vol II: Instrumentation. New York: Academic Press; 1966.
69.
go back to reference Boag JW, Currant J. Current collection and ionic recombination in small cylindrical ionization chambers exposed to pulsed radiation. Brit J Radiol. 1980;53:471.PubMedCrossRef Boag JW, Currant J. Current collection and ionic recombination in small cylindrical ionization chambers exposed to pulsed radiation. Brit J Radiol. 1980;53:471.PubMedCrossRef
70.
go back to reference Weinhouse MS, Meli JA. Determining Pion, the correction factor for recombination losses in an ionization chamber. Med Phys. 1984;11:846–9.CrossRef Weinhouse MS, Meli JA. Determining Pion, the correction factor for recombination losses in an ionization chamber. Med Phys. 1984;11:846–9.CrossRef
71.
go back to reference Piermattei A, delle Canne S, Azario L, Russo A, Fidanzio A, Miceli R, Soriani A, Orvieto A, Fantini M. The saturation loss for plane parallel ionization chambers at high dose per pulse values. Phys Med Biol. 2000;45:1869–83.PubMedCrossRef Piermattei A, delle Canne S, Azario L, Russo A, Fidanzio A, Miceli R, Soriani A, Orvieto A, Fantini M. The saturation loss for plane parallel ionization chambers at high dose per pulse values. Phys Med Biol. 2000;45:1869–83.PubMedCrossRef
72.
go back to reference Di Martino F, Giannelli M, Traino AC, Lazzeri M. Ion recombination correction for very high dose-per-pulse high-energy electron beams. Med Phys. 2005;32:2204–10.CrossRef Di Martino F, Giannelli M, Traino AC, Lazzeri M. Ion recombination correction for very high dose-per-pulse high-energy electron beams. Med Phys. 2005;32:2204–10.CrossRef
73.
go back to reference Laitano RF, Guerra AS, Pimpinella M, Caporali C, Petrucci A. Charge collection efficiency in ionization chambers exposed to electron beams with high dose per pulse. Phys Med Biol. 2006;51:6419–36.PubMedCrossRef Laitano RF, Guerra AS, Pimpinella M, Caporali C, Petrucci A. Charge collection efficiency in ionization chambers exposed to electron beams with high dose per pulse. Phys Med Biol. 2006;51:6419–36.PubMedCrossRef
74.
go back to reference Cella L, Liuzzi R, Salvatore M. The Italian affair: The employment of parallel-plate ionization chambers for dose measurements in high dose-per-pulse IORT electron beams. Med Phys. 2010;37:2918–24.CrossRef Cella L, Liuzzi R, Salvatore M. The Italian affair: The employment of parallel-plate ionization chambers for dose measurements in high dose-per-pulse IORT electron beams. Med Phys. 2010;37:2918–24.CrossRef
75.
go back to reference Ghorbanpour Besheli M, Simiantonakis I, Zink K, Budach W. Determination of the ion recombination correction factor for intraoperative electron beams. Z Med Phys. 2016;26:35–44.PubMedCrossRef Ghorbanpour Besheli M, Simiantonakis I, Zink K, Budach W. Determination of the ion recombination correction factor for intraoperative electron beams. Z Med Phys. 2016;26:35–44.PubMedCrossRef
76.
go back to reference Bruggmoser G, Saum R, Schmachtenberg A, Schmid F, Schüle E. Determination of the recombination correction factor kS for some specific plane-parallel and cylindrical ionization chambers in pulsed photon and electron beams. Phys Med Biol. 2007;52:N35–50.PubMedCrossRef Bruggmoser G, Saum R, Schmachtenberg A, Schmid F, Schüle E. Determination of the recombination correction factor kS for some specific plane-parallel and cylindrical ionization chambers in pulsed photon and electron beams. Phys Med Biol. 2007;52:N35–50.PubMedCrossRef
77.
go back to reference Burns DT, McEwan MR. Ion recombination corrections for the NACP parallel-plate chamber in a pulsed electron beam. Phys Med Biol. 1998;43:2033–45.PubMedCrossRef Burns DT, McEwan MR. Ion recombination corrections for the NACP parallel-plate chamber in a pulsed electron beam. Phys Med Biol. 1998;43:2033–45.PubMedCrossRef
81.
go back to reference Beddar AS. Stability of a mobile electron linear accelerator system for intraoperative radiation therapy. Med Phys. 2005;32:3128–31.PubMedCrossRef Beddar AS. Stability of a mobile electron linear accelerator system for intraoperative radiation therapy. Med Phys. 2005;32:3128–31.PubMedCrossRef
82.
go back to reference Mattsson LO, Svensson H. Charge Build-Up Effects in Insulating Phantom Materials. Acta Radiologica: Oncology. 1984;23:393–9.CrossRef Mattsson LO, Svensson H. Charge Build-Up Effects in Insulating Phantom Materials. Acta Radiologica: Oncology. 1984;23:393–9.CrossRef
83.
go back to reference Galbraith DM, Rawlinson JA, Munro P. Dose errors due to charge storage in electron irradiated plastic phantoms. Med Phys. 1984;11:197–203.PubMedCrossRef Galbraith DM, Rawlinson JA, Munro P. Dose errors due to charge storage in electron irradiated plastic phantoms. Med Phys. 1984;11:197–203.PubMedCrossRef
84.
go back to reference Rawlinson JA, Bielajew AF, Munro P, Galbraith DM. Theoretical and experimental investigation of dose enhancement due to charge storage in electron‐irradiated phantoms. Med Phys. 1894;11:814–21.CrossRef Rawlinson JA, Bielajew AF, Munro P, Galbraith DM. Theoretical and experimental investigation of dose enhancement due to charge storage in electron‐irradiated phantoms. Med Phys. 1894;11:814–21.CrossRef
85.
go back to reference Ho AK, Paliwal BR, Attix FH. Charge storage in electron‐irradiated phantom materials. Med Phys. 1986;13:99–100.PubMedCrossRef Ho AK, Paliwal BR, Attix FH. Charge storage in electron‐irradiated phantom materials. Med Phys. 1986;13:99–100.PubMedCrossRef
86.
go back to reference Agostinelli S, Gusinu M, Cavagnetto F, Garelli S, Zeverino M, Guenzi M, Corvò R, Taccini G. On-line optimization of intraoperative electron beam radiotherapy of the breast. Radiother Oncol. 2012;103:188–92.PubMedCrossRef Agostinelli S, Gusinu M, Cavagnetto F, Garelli S, Zeverino M, Guenzi M, Corvò R, Taccini G. On-line optimization of intraoperative electron beam radiotherapy of the breast. Radiother Oncol. 2012;103:188–92.PubMedCrossRef
87.
go back to reference Ma C-M,(Chair), Coffey CW, DeWerd LA, Liu C, Nath R, Seltzer SM, Seuntjens JP: AAPM protocol for 40–300 kV x-ray beam dosimetry in radiotherapy and radiobiology. Med Phys 2001, 28: 868-93 Ma C-M,(Chair), Coffey CW, DeWerd LA, Liu C, Nath R, Seltzer SM, Seuntjens JP: AAPM protocol for 40–300 kV x-ray beam dosimetry in radiotherapy and radiobiology. Med Phys 2001, 28: 868-93
88.
go back to reference Klevenhagen SC (Chair), Aukett RJ, Harrison RM, Moretti C, Nahum AE, Rosser KE: The IPEMB code of practice for the determination of absorbed dose for x-rays below 300 kV generating potential (0.035 mm Al–4 mm Cu HVL; 10–300 kV generating potential). Phys Med Biol 1996, 41: 2605–25 Klevenhagen SC (Chair), Aukett RJ, Harrison RM, Moretti C, Nahum AE, Rosser KE: The IPEMB code of practice for the determination of absorbed dose for x-rays below 300 kV generating potential (0.035 mm Al–4 mm Cu HVL; 10–300 kV generating potential). Phys Med Biol 1996, 41: 2605–25
89.
go back to reference DIN 6809-4 (1998): Kinische Dosimetrie. Anwendung von Röntgenstrahlung mit Röhrenspannungen von 10 bis 100 kV in der Strahlentherapie und in der Weichteildiagnostik DIN 6809 Teil 4. Deutsches Institut für Normung (DIN). Berlin 1998. (A revised version of DIN 6809-4 is presently under preparation.) DIN 6809-4 (1998): Kinische Dosimetrie. Anwendung von Röntgenstrahlung mit Röhrenspannungen von 10 bis 100 kV in der Strahlentherapie und in der Weichteildiagnostik DIN 6809 Teil 4. Deutsches Institut für Normung (DIN). Berlin 1998. (A revised version of DIN 6809-4 is presently under preparation.)
90.
go back to reference Carl Zeiss Meditec: Intrabeam Dosimetry . Brochure EN_30_010_15II . Jena, Carl Zeiss Meditec AG. Goeschwitzer Str. 51-52, Zeiss 2011 Carl Zeiss Meditec: Intrabeam Dosimetry . Brochure EN_30_010_15II . Jena, Carl Zeiss Meditec AG. Goeschwitzer Str. 51-52, Zeiss 2011
91.
go back to reference Aukett RJ (Chair), Burns JE, Greener AG, Harrison RM, Moretti C, Nahum AE and Rosser KE: Addendum to the IPEMB code of practice for the determination of absorbed dose for x-rays below 300 kV generating potential (0.035 mmAl -4 mmCu HVL). Phys Med Biol 2005, 50: 2739-48 Aukett RJ (Chair), Burns JE, Greener AG, Harrison RM, Moretti C, Nahum AE and Rosser KE: Addendum to the IPEMB code of practice for the determination of absorbed dose for x-rays below 300 kV generating potential (0.035 mmAl -4 mmCu HVL). Phys Med Biol 2005, 50: 2739-48
92.
go back to reference Carl Zeiss Meditec: Acceptence test report for Intrabeam system. SM-30-8023-A40-en, Version 10.0. Jena, Carl Zeiss Meditec AG. Goeschwitzer Str. 51-52, Zeiss 2012 Carl Zeiss Meditec: Acceptence test report for Intrabeam system. SM-30-8023-A40-en, Version 10.0. Jena, Carl Zeiss Meditec AG. Goeschwitzer Str. 51-52, Zeiss 2012
93.
go back to reference Schneider T, Radeck D, Solc J: Development of a new primary standard fort he realization of the absorbed does to water for Electronic Brachytherapy x-ray Sources. American Brachytherapy Society: World Congress of Brachytherapy. Eposter 376. San Francisco, CA 27.-29.07.2016. Schneider T, Radeck D, Solc J: Development of a new primary standard fort he realization of the absorbed does to water for Electronic Brachytherapy x-ray Sources. American Brachytherapy Society: World Congress of Brachytherapy. Eposter 376. San Francisco, CA 27.-29.07.2016.
94.
go back to reference Ma C-M, Seuntjens JP JP. Correction factors for water-proofing sleeves in kilovoltage x-ray beams. Med Phys. 1997;24:1507–13.PubMedCrossRef Ma C-M, Seuntjens JP JP. Correction factors for water-proofing sleeves in kilovoltage x-ray beams. Med Phys. 1997;24:1507–13.PubMedCrossRef
95.
go back to reference Avanzo M, Rink A, Dassie A, Massarut S, Roncadin M, Borsatti E, Capra E. In vivo dosimetry with radiochromic films in low-voltage intraoperative radiotherapy of the breast. Med Phy. 2012;39:2359–68.CrossRef Avanzo M, Rink A, Dassie A, Massarut S, Roncadin M, Borsatti E, Capra E. In vivo dosimetry with radiochromic films in low-voltage intraoperative radiotherapy of the breast. Med Phy. 2012;39:2359–68.CrossRef
96.
go back to reference Price C, Pederson A, Frazier C, Duttenhaver J. In vivo dosimetry with optically stimulated dosimeters and RTQA2 radiochromic film for intraoperative radiotherapy of the breast. Med Phys. 2013;40:091716. doi:10.1118/1.4819825.PubMedCrossRef Price C, Pederson A, Frazier C, Duttenhaver J. In vivo dosimetry with optically stimulated dosimeters and RTQA2 radiochromic film for intraoperative radiotherapy of the breast. Med Phys. 2013;40:091716. doi:10.​1118/​1.​4819825.PubMedCrossRef
97.
go back to reference Armoogum K, Watson C. A dosimetry intercomparison phantom for intraoperative radiotherapy. Z Med Phys. 2008;18:120–7.PubMedCrossRef Armoogum K, Watson C. A dosimetry intercomparison phantom for intraoperative radiotherapy. Z Med Phys. 2008;18:120–7.PubMedCrossRef
98.
go back to reference Carver A, Gately A, Clements R, Nahum A. Monte Carlo dosimetry for the Papillon P50 contact radiotherapy and IORT device. Radiother Oncol. 2013;109:367–9.PubMedCrossRef Carver A, Gately A, Clements R, Nahum A. Monte Carlo dosimetry for the Papillon P50 contact radiotherapy and IORT device. Radiother Oncol. 2013;109:367–9.PubMedCrossRef
99.
go back to reference Schönfeld AA, Harder D, Poppe B, Chofor N. Water equivalent phantom materials for 192Ir brachytherapy. Phys Med Biol. 2015;60:9403–20.CrossRef Schönfeld AA, Harder D, Poppe B, Chofor N. Water equivalent phantom materials for 192Ir brachytherapy. Phys Med Biol. 2015;60:9403–20.CrossRef
100.
go back to reference Chofor N, Harder D, Selbach H-J, Poppe B: The mean photon energy ĒF at the point of measurement determines the detector-specific radiation quality correction factor kQ,M in 192Ir brachytherapy dosimetry. Z Med Phys 2015;17. doi:10.1016/j.zemedi.2015.08.002. [Epub ahead of print] Chofor N, Harder D, Selbach H-J, Poppe B: The mean photon energy ĒF at the point of measurement determines the detector-specific radiation quality correction factor kQ,M in 192Ir brachytherapy dosimetry. Z Med Phys 2015;17. doi:10.​1016/​j.​zemedi.​2015.​08.​002. [Epub ahead of print]
101.
go back to reference Ebert MA, Asad AH, Salim A, Siddiqui SA. Suitability of radiochromic films for dosimetry of low energy X-rays. J Appl Clin Med Phys. 2009;10:232–40.CrossRef Ebert MA, Asad AH, Salim A, Siddiqui SA. Suitability of radiochromic films for dosimetry of low energy X-rays. J Appl Clin Med Phys. 2009;10:232–40.CrossRef
102.
go back to reference Krengli M, Terrone C, Ballarè A, Loi G, Tarabuzzi R, Marchioro G, Beldì D, Mones E, Bolchini C, Volpe A, Frea B. Intraoperative radiotherapy during radical prostatectomy for locally advanced prostate cancer: technical and dosimetric aspects. Int J Radiat Oncol Biol Phys. 2010;76:1073–7.PubMedCrossRef Krengli M, Terrone C, Ballarè A, Loi G, Tarabuzzi R, Marchioro G, Beldì D, Mones E, Bolchini C, Volpe A, Frea B. Intraoperative radiotherapy during radical prostatectomy for locally advanced prostate cancer: technical and dosimetric aspects. Int J Radiat Oncol Biol Phys. 2010;76:1073–7.PubMedCrossRef
103.
go back to reference Bekerat H, Devic S, DeBlois F, Singh K, Sarfehnia A, Seuntjens J, Shih S, Yu X, and Lewis D: Improving the energy response of external beam therapy (EBT) GafChromicTM dosimetry films at low energies (≤100 keV): Med Phys 2014;41:022101. doi:10.1118/1.4860157 Bekerat H, Devic S, DeBlois F, Singh K, Sarfehnia A, Seuntjens J, Shih S, Yu X, and Lewis D: Improving the energy response of external beam therapy (EBT) GafChromicTM dosimetry films at low energies (≤100 keV): Med Phys 2014;41:022101. doi:10.​1118/​1.​4860157
104.
go back to reference Chiu-Tsao S-T, Ho Y, Shankar R, Wang L, Harrison LB. Energy dependence of response of new high sensitivity radiochromic films for megavoltage and kilovoltage radiation energies. Med Phys. 2005;32:3350–4.PubMedCrossRef Chiu-Tsao S-T, Ho Y, Shankar R, Wang L, Harrison LB. Energy dependence of response of new high sensitivity radiochromic films for megavoltage and kilovoltage radiation energies. Med Phys. 2005;32:3350–4.PubMedCrossRef
105.
go back to reference Niromaand-Rad A, Chair, Blackwell CR, Coursey BM, Gall KP, Galvin JM, McLaughlin WL, Meigooni AS, Nath R, Rodgers JE, Soares CG: Radiochromic film dosimetry: Recommendations of AAPM Radiation Therapy Committee Task Group 55. Med Phys 1998, 25: 2093-2115 Niromaand-Rad A, Chair, Blackwell CR, Coursey BM, Gall KP, Galvin JM, McLaughlin WL, Meigooni AS, Nath R, Rodgers JE, Soares CG: Radiochromic film dosimetry: Recommendations of AAPM Radiation Therapy Committee Task Group 55. Med Phys 1998, 25: 2093-2115
106.
go back to reference Ciocca M, Orecchia R, Garibaldi C, Rondi E, Luini A, Gatti G, Intra M, Veronesi P, Lazzari R, Tosi G, Veronesi U. In vivo dosimetry using radiochromic films during intraoperative electron beam radiation therapy in early-stage breast cancer. Radiother Oncol. 2003;69:285–9.PubMedCrossRef Ciocca M, Orecchia R, Garibaldi C, Rondi E, Luini A, Gatti G, Intra M, Veronesi P, Lazzari R, Tosi G, Veronesi U. In vivo dosimetry using radiochromic films during intraoperative electron beam radiation therapy in early-stage breast cancer. Radiother Oncol. 2003;69:285–9.PubMedCrossRef
107.
go back to reference Severgnini M, de Denaro M, Bortul M, Vidali C, Beorchia A. In vivo dosimetry and shielding disk alignment verification by EBT3 GAFCHROMIC film in breast IOERT treatment. J Appl Clin Med Phys. 2014;16:5065. doi:10.1120/jacmp.v16i1.5065.PubMed Severgnini M, de Denaro M, Bortul M, Vidali C, Beorchia A. In vivo dosimetry and shielding disk alignment verification by EBT3 GAFCHROMIC film in breast IOERT treatment. J Appl Clin Med Phys. 2014;16:5065. doi:10.​1120/​jacmp.​v16i1.​5065.PubMed
108.
go back to reference Soares C, Drupieski C, Wingert B, Pritchett G, Pagonis V, O'Brien M, Sliski A, Bilski P, Olko P. Absorbed dose measurements of a handheld 50 kVP X-ray source in water with thermoluminescence dosemeters. Radiat Prot Dosimetry. 2006;120(1-4):78–82.PubMedCrossRef Soares C, Drupieski C, Wingert B, Pritchett G, Pagonis V, O'Brien M, Sliski A, Bilski P, Olko P. Absorbed dose measurements of a handheld 50 kVP X-ray source in water with thermoluminescence dosemeters. Radiat Prot Dosimetry. 2006;120(1-4):78–82.PubMedCrossRef
109.
go back to reference Eaton DJ, Best B, Brew-Graves C, Duck S, Ghaus T, Gonzalez R, Pigott K, Reynolds C, Williams NR, Keshtgar MRS. In Vivo Dosimetry for Single-Fraction Targeted Intraoperative Radiotherapy (TARGIT) for Breast Cancer. Int J Radiat Oncol Biol Phys. 2012;82:e819–24.PubMedCrossRef Eaton DJ, Best B, Brew-Graves C, Duck S, Ghaus T, Gonzalez R, Pigott K, Reynolds C, Williams NR, Keshtgar MRS. In Vivo Dosimetry for Single-Fraction Targeted Intraoperative Radiotherapy (TARGIT) for Breast Cancer. Int J Radiat Oncol Biol Phys. 2012;82:e819–24.PubMedCrossRef
110.
go back to reference Seltzer SM, O’Brian M, Mitch MG. New National Air-Kerma Standard for Low-Energy Electronic Brachytherapy Sources. J Res Nat Inst Stand Technol. 2014;119:554–74.CrossRef Seltzer SM, O’Brian M, Mitch MG. New National Air-Kerma Standard for Low-Energy Electronic Brachytherapy Sources. J Res Nat Inst Stand Technol. 2014;119:554–74.CrossRef
111.
go back to reference DeWerd LA, Culberson WS, Micka JA, Simiele SJ. A modified dose calculation formalism for electronic brachytherapy sources. Brachytherapy. 2015;14:405–8.PubMedCrossRef DeWerd LA, Culberson WS, Micka JA, Simiele SJ. A modified dose calculation formalism for electronic brachytherapy sources. Brachytherapy. 2015;14:405–8.PubMedCrossRef
112.
go back to reference Liu D, Poon E, Bazalova M, Reniers B, Evans M, Rusch T, Verhaegen F. Spectroscopic characterization of a novel electronic brachytherapy system. Phys Med Biol. 2008;53:61–75.PubMedCrossRef Liu D, Poon E, Bazalova M, Reniers B, Evans M, Rusch T, Verhaegen F. Spectroscopic characterization of a novel electronic brachytherapy system. Phys Med Biol. 2008;53:61–75.PubMedCrossRef
113.
go back to reference Ciocca M, Piazzi V, Lazzari R, Vavassori A, Luini A, Veronesi P, Galimberti V, Intra M, Guido A, Tosi G, Veronesi U, Orecchia R. Real-time in vivo dosimetry using micro-MOSFET detectors during intraoperative electron beam radiation therapy in early-stage breast cancer. Radiother Oncol. 2006;78:213–6.PubMedCrossRef Ciocca M, Piazzi V, Lazzari R, Vavassori A, Luini A, Veronesi P, Galimberti V, Intra M, Guido A, Tosi G, Veronesi U, Orecchia R. Real-time in vivo dosimetry using micro-MOSFET detectors during intraoperative electron beam radiation therapy in early-stage breast cancer. Radiother Oncol. 2006;78:213–6.PubMedCrossRef
114.
go back to reference Soriani A, Landoni V, Marzi S, Iaccarino G, Saracino B, Arcangeli G, Benassi M. Setup verification and in vivo dosimetry during intraoperative radiation therapy (IORT) for prostate cancer. Med Phys. 2007;34:3205–10.PubMedCrossRef Soriani A, Landoni V, Marzi S, Iaccarino G, Saracino B, Arcangeli G, Benassi M. Setup verification and in vivo dosimetry during intraoperative radiation therapy (IORT) for prostate cancer. Med Phys. 2007;34:3205–10.PubMedCrossRef
115.
go back to reference Consorti R, Petrucci A, Fortunato F, Soriani A, Marzi S, Iaccarino G, Landoni V, Benassi M. In Vivo Dosimetry with Mosfets: Dosimetric characterization and First Clinical Results in Intraoperative Radiotherapy. Int J Radiat Oncol Biol Phys. 2005;63:952–60.PubMedCrossRef Consorti R, Petrucci A, Fortunato F, Soriani A, Marzi S, Iaccarino G, Landoni V, Benassi M. In Vivo Dosimetry with Mosfets: Dosimetric characterization and First Clinical Results in Intraoperative Radiotherapy. Int J Radiat Oncol Biol Phys. 2005;63:952–60.PubMedCrossRef
116.
go back to reference López-Tarjuelo J, Bouché-Babiloni A, Morillo-Macías V, de Marco-Blancas N, Santos-Serra A, Quirós-Higueras JD, Ferrer-Albiach C. In vivo dosimetry in intraoperative electron radiotherapy: microMOSFETs, radiochromic films and a general-purpose linac. Strahlenther Onkol. 2014;190:1060–5.PubMedCrossRef López-Tarjuelo J, Bouché-Babiloni A, Morillo-Macías V, de Marco-Blancas N, Santos-Serra A, Quirós-Higueras JD, Ferrer-Albiach C. In vivo dosimetry in intraoperative electron radiotherapy: microMOSFETs, radiochromic films and a general-purpose linac. Strahlenther Onkol. 2014;190:1060–5.PubMedCrossRef
118.
go back to reference López-Tarjuelo J, Morillo-Macías V, Bouché-Babiloni A, Ferrer-Albiach C, Santos-Serra A. Defining Action Levels for In Vivo Dosimetry in Intraoperative Electron Radiotherapy. Technol Cancer Res Treat. 2016;152:453–9. doi:10.1177/1533034615588196.CrossRef López-Tarjuelo J, Morillo-Macías V, Bouché-Babiloni A, Ferrer-Albiach C, Santos-Serra A. Defining Action Levels for In Vivo Dosimetry in Intraoperative Electron Radiotherapy. Technol Cancer Res Treat. 2016;152:453–9. doi:10.​1177/​1533034615588196​.CrossRef
119.
go back to reference Tabarelli De Fatis P, Liotta M, Fissi S, De Simone L, Regolo L, Scoccia E, Ivaldi GB. In vivo dosimetry with Gafchromic films during intraoperative radiation therapy (IORT): a good practice for quality assurance. Phys Med. 2012;32:e65.CrossRef Tabarelli De Fatis P, Liotta M, Fissi S, De Simone L, Regolo L, Scoccia E, Ivaldi GB. In vivo dosimetry with Gafchromic films during intraoperative radiation therapy (IORT): a good practice for quality assurance. Phys Med. 2012;32:e65.CrossRef
120.
go back to reference Galimberti V, Ciocca M, Leonardi MC, Zanagnolo V, Baratella P, Sargenti M, Cecilio Sahium R, Lazzari R, Gentilini O, Peccatori F, Veronesi U, Orecchia R. Is Electron Beam Intraoperative Radiotherapy (ELIOT) Safe in Pregnant Women with Early Breast Cancer? In Vivo Dosimetry to Assess Fetal Dose. Ann Surg Oncol. 2008;16:100–5.PubMedCrossRef Galimberti V, Ciocca M, Leonardi MC, Zanagnolo V, Baratella P, Sargenti M, Cecilio Sahium R, Lazzari R, Gentilini O, Peccatori F, Veronesi U, Orecchia R. Is Electron Beam Intraoperative Radiotherapy (ELIOT) Safe in Pregnant Women with Early Breast Cancer? In Vivo Dosimetry to Assess Fetal Dose. Ann Surg Oncol. 2008;16:100–5.PubMedCrossRef
121.
go back to reference Lemanski C, Azira D, Gourgou-Bourgade S, Ailleres N, Pastant A, Rouanet P, Fenoglietto P, Dubois J-B, Gutowski M. Electrons for intraoperative radiotherapy in selected breast cancer patients. Late results of the Montpellier phase II trial Radiat Oncol. 2013;8:191.PubMed Lemanski C, Azira D, Gourgou-Bourgade S, Ailleres N, Pastant A, Rouanet P, Fenoglietto P, Dubois J-B, Gutowski M. Electrons for intraoperative radiotherapy in selected breast cancer patients. Late results of the Montpellier phase II trial Radiat Oncol. 2013;8:191.PubMed
122.
go back to reference Bloemen-van Gurp EJ, Minken AWH, Mijnheer BJ, Dehing-Oberye CJG, Lambin P. Clinical implementation of MOSFET detectors for dosimetry in electron beams. Radiother Oncol. 2006;80:288–95.PubMedCrossRef Bloemen-van Gurp EJ, Minken AWH, Mijnheer BJ, Dehing-Oberye CJG, Lambin P. Clinical implementation of MOSFET detectors for dosimetry in electron beams. Radiother Oncol. 2006;80:288–95.PubMedCrossRef
123.
go back to reference Fogg P, Das KR, Kron T, Fox C, Chua B, Hagekyriakou J. Thermoluminescence dosimetry for skin dose assessment during intraoperative radiotherapy for early breast cancer. Australas Phys Eng Sci Med. 2010;33(2):211–4. doi:10.1007/s13246-010-0019-3. Epub 2010 Jul 9.PubMedCrossRef Fogg P, Das KR, Kron T, Fox C, Chua B, Hagekyriakou J. Thermoluminescence dosimetry for skin dose assessment during intraoperative radiotherapy for early breast cancer. Australas Phys Eng Sci Med. 2010;33(2):211–4. doi:10.​1007/​s13246-010-0019-3. Epub 2010 Jul 9.PubMedCrossRef
124.
go back to reference Dong L, O’Daniel J: In-room imaging: Conventional CT. In: Curran BH, Balter J, Chetty IJ. 2006 AAPM Summer School. Integrating New Technologies into the Clinic: Monte Carlo and Image-Guided Radiation Therapy. Madison, WI 2006 Medical Physics Publishing. Dong L, O’Daniel J: In-room imaging: Conventional CT. In: Curran BH, Balter J, Chetty IJ. 2006 AAPM Summer School. Integrating New Technologies into the Clinic: Monte Carlo and Image-Guided Radiation Therapy. Madison, WI 2006 Medical Physics Publishing.
125.
go back to reference Ma CM, Paskalev K. In-room CT techniques for image-guided radiation therapy. Med Dosim. 2006;31:30–9.PubMedCrossRef Ma CM, Paskalev K. In-room CT techniques for image-guided radiation therapy. Med Dosim. 2006;31:30–9.PubMedCrossRef
126.
go back to reference Siewerdson JH. Cone-beam CT with a flat panel detector: from image science to image-guided surgery. Nucl Instr Meth in Phys Res A. 2011;648:S241–50.CrossRef Siewerdson JH. Cone-beam CT with a flat panel detector: from image science to image-guided surgery. Nucl Instr Meth in Phys Res A. 2011;648:S241–50.CrossRef
127.
go back to reference Deutschmann H, Neuner M, Steininger P, Pinzger M, Buck M, Sedlmayer F. Robotic positioning and imaging. Strahlenther Onkol. 2013;189:185. Deutschmann H, Neuner M, Steininger P, Pinzger M, Buck M, Sedlmayer F. Robotic positioning and imaging. Strahlenther Onkol. 2013;189:185.
128.
go back to reference Steininger P, Weichenberger H, Neuner M, Mooslechner M, Mitterlechner B, Pinzger M, Böhler A, Mehrwald M, Rottensteiner F, Teichmeister M, Meier R, Zechner A, Gaisberger C, Ematinger J, Ginzinger F, Deutschmann J,S. Huber S, Ruzicka T, Winklinger K, Buck M, Lakhdhar I, Raiss S, Sedlmayer F, Deutschmann H. Proof of Concept: PAIR – Patient Alignment Imaging Ring. http://open-radart.org/cms/Links/POCPAIR.pdf. Accessed 31 Jan 2017. Steininger P, Weichenberger H, Neuner M, Mooslechner M, Mitterlechner B, Pinzger M, Böhler A, Mehrwald M, Rottensteiner F, Teichmeister M, Meier R, Zechner A, Gaisberger C, Ematinger J, Ginzinger F, Deutschmann J,S. Huber S, Ruzicka T, Winklinger K, Buck M, Lakhdhar I, Raiss S, Sedlmayer F, Deutschmann H. Proof of Concept: PAIR – Patient Alignment Imaging Ring. http://​open-radart.​org/​cms/​Links/​POCPAIR.​pdf. Accessed 31 Jan 2017.
129.
go back to reference Schneidery U, Pedroniz E, Lomax A. The calibration of CT Hounsfield units for radiotherapy treatment planning. Phys Med Biol. 1996;41:111–24.CrossRef Schneidery U, Pedroniz E, Lomax A. The calibration of CT Hounsfield units for radiotherapy treatment planning. Phys Med Biol. 1996;41:111–24.CrossRef
131.
go back to reference Seet KYT, Barghi A, Yartsev S, Van Dyk J. The effects of field-of-view and patient size on CT numbers from cone-beam computed tomography. Phys Med Biol. 2009;54:6251–62.PubMedCrossRef Seet KYT, Barghi A, Yartsev S, Van Dyk J. The effects of field-of-view and patient size on CT numbers from cone-beam computed tomography. Phys Med Biol. 2009;54:6251–62.PubMedCrossRef
132.
go back to reference Hatton J, McCurdy B, Greer PB. Cone beam computerized tomography: the effect of calibration of the Hounsfield unit number to electron density on dose calculation accuracy for adaptive radiation therapy. Phys Med Biol. 2009;54:N329–46.PubMedCrossRef Hatton J, McCurdy B, Greer PB. Cone beam computerized tomography: the effect of calibration of the Hounsfield unit number to electron density on dose calculation accuracy for adaptive radiation therapy. Phys Med Biol. 2009;54:N329–46.PubMedCrossRef
133.
go back to reference Skrzyński W, Zielińska-Dabrowska, Wachowicz M, Ślusarczyk-Kacprzyk W, Kukołowicz PF, Wojciech Bulski W. Computed Tomography as a Source of Electron Density Information for Radiation Treatment Planning. Strahlenther Onkol. 2010;186:327–33.PubMedCrossRef Skrzyński W, Zielińska-Dabrowska, Wachowicz M, Ślusarczyk-Kacprzyk W, Kukołowicz PF, Wojciech Bulski W. Computed Tomography as a Source of Electron Density Information for Radiation Treatment Planning. Strahlenther Onkol. 2010;186:327–33.PubMedCrossRef
134.
go back to reference Yang Y, Schreibmann E, Li T, Wang C, Xing L. Evaluation of on-board kV cone beam CT (CBCT)-based dose calculation. Phys Med Biol. 2007;52:685–705.PubMedCrossRef Yang Y, Schreibmann E, Li T, Wang C, Xing L. Evaluation of on-board kV cone beam CT (CBCT)-based dose calculation. Phys Med Biol. 2007;52:685–705.PubMedCrossRef
135.
go back to reference Valdivieso-Casique MF, Rodríguez R, Rodríguez-Bescós S, Lardíes D, Guerra P, Ledesma MJ, Santos A, Ibáñez P, Vidal M, Udías JM, Otaduy MA, Calama JA, López-Tarjuelo J, Santos-Miranda JA, Desco M, García-Vázquez V, Marinetto E, Pascau J, Felipe Calvo F, Illana C. RADIANCE—A planning software for intra-operative radiation therapy. Transl Cancer Res. 2015;4:196–209. Valdivieso-Casique MF, Rodríguez R, Rodríguez-Bescós S, Lardíes D, Guerra P, Ledesma MJ, Santos A, Ibáñez P, Vidal M, Udías JM, Otaduy MA, Calama JA, López-Tarjuelo J, Santos-Miranda JA, Desco M, García-Vázquez V, Marinetto E, Pascau J, Felipe Calvo F, Illana C. RADIANCE—A planning software for intra-operative radiation therapy. Transl Cancer Res. 2015;4:196–209.
136.
go back to reference Vidal M, Ibáñez PJ, González C, Guerra P, Udías JM JM. Hybrid Monte Carlo dose algorithm for low energy X-rays intraoperative radiation therapy. Radiother Oncol. 2014;111(Suppl1):S106–7.CrossRef Vidal M, Ibáñez PJ, González C, Guerra P, Udías JM JM. Hybrid Monte Carlo dose algorithm for low energy X-rays intraoperative radiation therapy. Radiother Oncol. 2014;111(Suppl1):S106–7.CrossRef
137.
go back to reference Herskind c, Steil V, Kraus-Tiefnbacher U, Wenz F. Radiobiological Aspects of Intraoperative Radiotherapy (IORT) with Isotropic Low-Energy X Rays for Early-Stage Breast Cancer. Rad Res. 2005;163:208–15.CrossRef Herskind c, Steil V, Kraus-Tiefnbacher U, Wenz F. Radiobiological Aspects of Intraoperative Radiotherapy (IORT) with Isotropic Low-Energy X Rays for Early-Stage Breast Cancer. Rad Res. 2005;163:208–15.CrossRef
138.
go back to reference Herskind C, Griebel J, Kraus-Tiefenbacher U, Wenz F. Sphere of Equivalence – A Novel Target Volume Concept for Intraoperative Radiotherapy Using Low-Energy X Rays. Int J Rad Onc Biol Phys. 2008;72:1575–81.CrossRef Herskind C, Griebel J, Kraus-Tiefenbacher U, Wenz F. Sphere of Equivalence – A Novel Target Volume Concept for Intraoperative Radiotherapy Using Low-Energy X Rays. Int J Rad Onc Biol Phys. 2008;72:1575–81.CrossRef
139.
go back to reference Herskind C, Wenz F. Radiobiological Comparison of Hypofractionated Accelerated Partial-Breast Irradiation (APBI) and Single-Dose Intraoperative Radiotherapy (IORT) with 50-kV X-Rays. Strahlenther Oncol. 2010;186:444–51.CrossRef Herskind C, Wenz F. Radiobiological Comparison of Hypofractionated Accelerated Partial-Breast Irradiation (APBI) and Single-Dose Intraoperative Radiotherapy (IORT) with 50-kV X-Rays. Strahlenther Oncol. 2010;186:444–51.CrossRef
Metadata
Title
Present state and issues in IORT Physics
Author
Frank W. Hensley
Publication date
01-12-2017
Publisher
BioMed Central
Published in
Radiation Oncology / Issue 1/2017
Electronic ISSN: 1748-717X
DOI
https://doi.org/10.1186/s13014-016-0754-z

Other articles of this Issue 1/2017

Radiation Oncology 1/2017 Go to the issue