Literature DB >> 10924995

Relative biological effectiveness for cell-killing effect on various human cell lines irradiated with heavy-ion medical accelerator in Chiba (HIMAC) carbon-ion beams.

M Suzuki1, Y Kase, H Yamaguchi, T Kanai, K Ando.   

Abstract

PURPOSE: To clarify the relative biological effectiveness (RBE) values of various human cell lines for carbon-ion beams with 2 different linear energy transfer (LET) beams and to investigate the relationship between the cell-killing effect and the biophysical characters, such as the chromosome number and the area of the cell nucleus, using qualitatively different kinds of radiations. METHODS AND MATERIALS: Sixteen different human cell lines were irradiated with carbon-ion beams, having 2 different LET values (LET(infinity) = 13.3 and approximately 77 keV/microm), accelerated by the Heavy Ion Medical Accelerator in Chiba (HIMAC) at National Institute of Radiological Sciences in Japan. Cell-killing effect was detected as reproductive cell death using a colony-formation assay. The number of chromosomes was observed in a metaphase spread using the conventional method. The area of the cell nucleus was calculated as an ellipse on photographs using a micrometer.
RESULTS: The RBE values calculated by the D(10), which is determined as the dose (Gy) required to reduce the surviving fraction to 10%, relative to X-rays, range from 1.06 to 1.33 for 13-keV/microm-beam and from 2.00 to 3. 01 for approximate 77-keV/microm-beam irradiation on each cell line. There was a good correlation in the D(10) values of each cell line between X-rays and carbon-ion beams. However, the D(10) values did not clearly depend on either the chromosome number or the area of the cell nuclei.
CONCLUSION: The RBE values for HIMAC carbon-ion beams are consistent with previous reports using carbon-ion beams with the similar LET values, and the cellular radiosensitivity of different cell lines well correlate among different types of radiation.

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Year:  2000        PMID: 10924995     DOI: 10.1016/s0360-3016(00)00568-x

Source DB:  PubMed          Journal:  Int J Radiat Oncol Biol Phys        ISSN: 0360-3016            Impact factor:   7.038


  54 in total

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Authors:  Junko Maeda; Ian M Cartwright; Jeremy S Haskins; Yoshihiro Fujii; Hiroshi Fujisawa; Hirokazu Hirakawa; Mitsuru Uesaka; Hisashi Kitamura; Akira Fujimori; Douglas H Thamm; Takamitsu A Kato
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8.  Observation of DNA damage of human hepatoma cells irradiated by heavy ions using comet assay.

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9.  Participation of gap junction communication in potentially lethal damage repair and DNA damage in human fibroblasts exposed to low- or high-LET radiation.

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10.  The relative biological effectiveness of carbon ion radiation therapy for early stage lung cancer.

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Journal:  Radiother Oncol       Date:  2020-09-23       Impact factor: 6.280

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