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细胞尺度^(10)B不均匀分布对细胞微剂量影响的计算与分析

Analysis of Effect on Microdose of ^(10)B Nonuniform Distribution in Cellular
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摘要 硼中子俘获治疗已经成为当前治疗恶性黑色素瘤、头颈部肿瘤等恶性肿瘤的有效手段之一。10 B在细胞尺度上不均匀分布将直接影响到对肿瘤细胞失活剂量的控制。为研究含硼化合物在细胞内空间上分布不同对靶区细胞微剂量的影响,本工作利用Monte-Carlo工具包开发了用于计算10 B(n,α)7 Li产生的α与7 Li对靶区剂量的模拟程序α-Li Version 1.0。通过此程序,计算了2种细胞尺寸、8种α粒子能量、3种源分布方式的细胞S值,并与MIRD委员会解析算法的计算结果进行对比,两者差异在1%以内;对不同细胞核半径、不同细胞半径及不同源位置等条件下的3 420种模型进行了模拟计算,证明了α粒子和7 Li粒子在细胞内的S值存在差异性;最终获得的10B(n,α)7 Li反应的细胞S值数据库,可用于细胞尺度10B不均匀分布情况下的高精度微剂量学计算。 Boron neutron capture therapy(BNCT) is one of the effective way to treat malignant melanoma and head-neck cancer.The intercellular nonuniform distributions of 10B in tumor cell impact the estimates of inactivation dose.The α-Li Version 1.0 code was developed based on Monte-Carlo method to calculate the S values of cell induced by α and 7Li particle which are the products of 10B(n,α)7Li.The calculation included two types of cell size,eight kinds of energy of α particle and three kinds of source distributions.Differences between results of this code and an analytical algorithm of MIRD committee were within 1%.On this basis,a total of 3 420 cases were calculated and analyzed with different kinds of nucleus radius,cell radius,and source launch position combination.Finally,cellular S values of 10B(n,α)7Li calculated in this paper can be used to compute the excellent precision dose under 10B compound nonuniform distribution in intercellular scale.
出处 《原子能科学技术》 EI CAS CSCD 北大核心 2012年第B09期635-640,共6页 Atomic Energy Science and Technology
基金 江苏省博士后科研资助计划项目资助(1002012C)
关键词 微剂量 硼中子俘获治疗 蒙特卡罗方法 细胞核 microdosimetry boron neutron capture therapy Monte-Carlo nucleus
作者简介 谢芹(1986-),男,湖南衡阳人,硕士研究生,核能与核技术工程专业
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  • 1Introduction to Geant4[EB/OL].http://www. a-sd.web.cern.ch/wwwasd/Geant4/G4UsersDocu-metsWelcome/IntroductionToGeant4/html/index.html. 2004.12.
  • 2Ljungvall J, Palacz M, Nyberg J. Monte Carlo Simulations of the Neutron Wall Detector System [J]. Nuclear Instruments and Methods in Physics Research, Section A: Accelerators, Spectrometers, Detectors and Associated Equipment, 2004, 528 (3): 741~762.
  • 3Ivanchenko VN. Geant4 Toolkit for Simulation of HEP Experiments[J]. Nuclear Instruments and Methods in Physics Research, Section A: Accelerators, Spectrometers, Detectors and Associated Equipment, 2003, 502(2-3): 666~668.
  • 4Aichambault L, Beaulieu L, Carrier JF, et al. Overview of Geant4 Applications in Medical Physics[A]. Nuclear Science Symposium, Medical Imaging Conference[C].New York: IEEE, 2003. 1 743~1 745.
  • 5Truscott P, Lei F, Dyer C, et al. Geant4-a New Monte Carlo Toolkit for Simulating Space Radiation Shielding and Effects[A]. IEEE Radiation Effects Data Workshop[C].New York: IEEE, 2000. 147~152.
  • 6Physics Reference Manual[EB/OL]. http://ww-w.asd.web.cern.ch/wwwasd/Geant4/G4UsersD-ocuments/UsersGuides/PhysicsReferenceManual/html/PhysicsReferenceManual.html. 2004.12.
  • 7Shi Xinhua. Improving Object Classification in X-ray Luggage Inspection[D]. Blacksburg, Virginia: Virginia Polytechnic Institute and State University, 2000.
  • 8Cornelius IM, Rosenfeld AB. Verification of M-onte Carlo Calculations in Fast Neutron Therapy Using Silicon Microdosimetry[J]. IEEE Transactions on Nuclear Science, 2004, 51 (3 III): 873~877.
  • 9Cirrone GAP, Cuttone G, Guatelli S, et al. Implementation of a New Monte Carlo Simulation Tool for the Development of a Proton Therapy Beam Line and Verification of the Related Dose Distributions[A]. IEEE Nuclear Science Symposium Conference Record, v 3, 2003 IEEE Nuclear Science Symposium Conference Record[C]. New York: IEEE, 2003. 1 756~1 758.
  • 10曾志 李君利 许振华.质子剂量的Monte Carlo计算方法[A]..中国生物医学工程学会医学物理分会第十三届学术年会论文集[C].中国武汉,2004..

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