Experimental validation of stochastic microdosimetric kinetic model for multi-ion therapy treatment planning with helium-, carbon-, oxygen-, and neon-ion beams

被引:35
作者
Inaniwa, Taku [1 ]
Suzuki, Masao [2 ]
Lee, Sung Hyun [1 ]
Mizushima, Kota [1 ]
Iwata, Yoshiyuki [1 ]
Kanematsu, Nobuyuki [1 ]
Shirai, Toshiyuki [1 ]
机构
[1] QST, Dept Accelerator & Med Phys, Natl Inst Radiol Sci, Inage Ku, 4-9-1 Anagawa, Chiba 2638555, Japan
[2] QST, Dept Basic Med Sci Radiat Damages, Natl Inst Radiol Sci, Inage Ku, 4-9-1 Anagawa, Chiba 2638555, Japan
关键词
charged-particle therapy; biological model; relative biological effectiveness; multi-ion therapy; CELL-SURVIVAL FRACTIONS; BIOLOGICAL EFFECTIVENESS; DOSE DISTRIBUTIONS; ENHANCEMENT RATIO; SCANNING SYSTEM; TIME STRUCTURE; RADIOTHERAPY; RADIATION; IMPLEMENTATION; IRRADIATION;
D O I
10.1088/1361-6560/ab6eba
中图分类号
R318 [生物医学工程];
学科分类号
0831 ;
摘要
The National Institute of Radiological Sciences (NIRS) has initiated a development project for hypo-fractionated multi-ion therapy. In the treatment, heavy ions up to neon ions will be used as a primary beam, which is a high linear energy transfer (LET) radiation. The fractionated dose of the treatment will be 10 Gy or more. The microdosimetric kinetic (MK) model overestimates the biological effectiveness of high-LET and high-dose radiations. To address this issue, the stochastic microdosimetric kinetic (SMK) model has been developed as an extension of the MK model. By taking the stochastic nature of domain-specific and cell nucleus-specific energies into account, the SMK model could estimate the biological effectiveness of radiations with wide LET and dose ranges. Previously, the accuracy of the SMK model was examined by comparison of estimated and reported survival fractions of human cells exposed to pristine helium-, carbon-, and neon-ion beams. In this study, we verified the SMK model in treatment planning of scanned helium-, carbon-, oxygen-, and neon-ion beams as well as their combinations through the irradiations of human undifferentiated carcinoma and human pancreatic cancer cells. Treatment plans were made with the ion-species beams to achieve a uniform 10% survival of the cells within a cuboid target. The planned survival fractions were reasonably reproduced by the measured survival fractions in the whole region from the plateau to the fragment tail for all planned irradiations. The SMK model offers the accuracy and simplicity required in hypo-fractionated multi-ion therapy treatment planning.
引用
收藏
页数:11
相关论文
共 41 条
[31]   Rapid calculation of biological effects in ion radiotherapy [J].
Krämer, M ;
Scholz, M .
PHYSICS IN MEDICINE AND BIOLOGY, 2006, 51 (08) :1959-1970
[32]   First experimental-based characterization of oxygen ion beam depth dose distributions at the Heidelberg Ion-Beam Therapy Center [J].
Kurz, C. ;
Mairani, A. ;
Parodi, K. .
PHYSICS IN MEDICINE AND BIOLOGY, 2012, 57 (15) :5017-5034
[33]   A Monte Carlo approach to the microdosimetric kinetic model to account for dose rate time structure effects in ion beam therapy with application in treatment planning simulations [J].
Manganaro, Lorenzo ;
Russo, Germano ;
Cirio, Roberto ;
Dalmasso, Federico ;
Giordanengo, Simona ;
Monaco, Vincenzo ;
Muraro, Silvia ;
Sacchi, Roberto ;
Vignati, Anna ;
Attili, Andrea .
MEDICAL PHYSICS, 2017, 44 (04) :1577-1589
[34]   Carbon ion radiotherapy for stage I non-small cell lung cancer [J].
Miyamoto, T ;
Yamamoto, N ;
Nishimura, H ;
Koto, M ;
Tsujii, H ;
Mizoe, J ;
Kamada, T ;
Kato, H ;
Yamada, S ;
Morita, S ;
Yoshikawa, K ;
Kandatsu, S ;
Fujisawa, T .
RADIOTHERAPY AND ONCOLOGY, 2003, 66 (02) :127-140
[35]   ANALYSIS OF CELL-SURVIVAL FRACTIONS FOR HEAVY-ION IRRADIATIONS BASED ON MICRODOSIMETRIC KINETIC MODEL IMPLEMENTED IN THE PARTICLE AND HEAVY ION TRANSPORT CODE SYSTEM [J].
Sato, T. ;
Watanabe, R. ;
Kase, Y. ;
Tsuruoka, C. ;
Suzuki, M. ;
Furusawa, Y. ;
Niita, K. .
RADIATION PROTECTION DOSIMETRY, 2011, 143 (2-4) :491-496
[36]   Cell Survival Fraction Estimation Based on the Probability Densities of Domain and Cell Nucleus Specific Energies Using Improved Microdosimetric Kinetic Models [J].
Sato, Tatsuhiko ;
Furusawa, Yoshiya .
RADIATION RESEARCH, 2012, 178 (04) :341-356
[37]   Including oxygen enhancement ratio in ion beam treatment planning: model implementation and experimental verification [J].
Scifoni, E. ;
Tinganelli, W. ;
Weyrather, W. K. ;
Durante, M. ;
Maier, A. ;
Kraemer, M. .
PHYSICS IN MEDICINE AND BIOLOGY, 2013, 58 (11) :3871-3895
[38]   Oxygen beams for therapy: advanced biological treatment planning and experimental verification [J].
Sokol, O. ;
Scifoni, E. ;
Tinganelli, W. ;
Kraft-Weyrather, W. ;
Wiedemann, J. ;
Maier, A. ;
Boscolo, D. ;
Friedrich, T. ;
Brons, S. ;
Durante, M. ;
Kraemer, M. .
PHYSICS IN MEDICINE AND BIOLOGY, 2017, 62 (19) :7798-7813
[39]   Dosimetric verification in water of a Monte Carlo treatment planning tool for proton, helium, carbon and oxygen ion beams at the Heidelberg Ion Beam Therapy Center [J].
Tessonnier, T. ;
Boehlen, T. T. ;
Ceruti, F. ;
Ferrari, A. ;
Sala, P. ;
Brons, S. ;
Haberer, T. ;
Debus, J. ;
Parodi, K. ;
Mairani, A. .
PHYSICS IN MEDICINE AND BIOLOGY, 2017, 62 (16) :6579-6594
[40]   Experimental dosimetric comparison of 1H, 4He, 12C and 16O scanned ion beams [J].
Tessonnier, T. ;
Mairani, A. ;
Brons, S. ;
Haberer, T. ;
Debus, J. ;
Parodi, K. .
PHYSICS IN MEDICINE AND BIOLOGY, 2017, 62 (10) :3958-3982