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  • [J Appl Clin Med Phys .] Initial experience with an electron FLASH research extension (FLEX) for the Clinac system의료용 선형가속기의 FLEX 시스템을 이용한 Flash 전자빔 실험 연구

    University of Nebraska Medical Center / 오규학, 주수민*

  • 출처
    J Appl Clin Med Phys .
  • 등재일
    2024 Feb
  • 저널이슈번호
    25(2):e14159. doi: 10.1002/acm2.14159. Epub 2023 Sep 21.
  • 내용

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    Abstract
    Purpose: Radiotherapy delivered at ultra-high-dose-rates (≥40 Gy/s), that is, FLASH, has the potential to effectively widen the therapeutic window and considerably improve the care of cancer patients. The underlying mechanism of the FLASH effect is not well understood, and commercial systems capable of delivering such dose rates are scarce. The purpose of this study was to perform the initial acceptance and commissioning tests of an electron FLASH research product for preclinical studies.

    Methods: A linear accelerator (Clinac 23EX) was modified to include a non-clinical FLASH research extension (the Clinac-FLEX system) by Varian, a Siemens Healthineers company (Palo Alto, CA) capable of delivering a 16 MeV electron beam with FLASH and conventional dose rates. The acceptance, commissioning, and dosimetric characterization of the FLEX system was performed using radiochromic film, optically stimulated luminescent dosimeters, and a plane-parallel ionization chamber. A radiation survey was conducted for which the shielding of the pre-existing vault was deemed sufficient.

    Results: The Clinac-FLEX system is capable of delivering a 16 MeV electron FLASH beam of approximately 1 Gy/pulse at isocenter and reached a maximum dose rate >3.8 Gy/pulse near the upper accessory mount on the linac gantry. The percent depth dose curves of the 16 MeV FLASH and conventional modes for the 10 × 10 cm2 applicator agreed within 0.5 mm at a range of 50% of the maximum dose. Their respective profiles agreed well in terms of flatness but deviated for field sizes >10 × 10 cm2 . The output stability of the FLASH system exhibited a dose deviation of <1%. Preliminary cell studies showed that the FLASH dose rate (180 Gy/s) had much less impact on the cell morphology of 76N breast normal cells compared to the non-FLASH dose rate (18 Gy/s), which induced large-size cells.

    Conclusion: Our studies characterized the non-clinical Clinac-FLEX system as a viable solution to conduct FLASH research that could substantially increase access to ultra-high-dose-rate capabilities for scientists.

     

     

    Affiliations

    Kyuhak Oh 1, Kyle J Gallagher 1, Megan Hyun 1, Diane Schott 1, Sarah Wisnoskie 1, Yu Lei 1, Samuel Hendley 1, Jeffrey Wong 1, Shuo Wang 1, Brendan Graff 1, Christopher Jenkins 1, Frank Rutar 1, Md Ahmed 2, Joshua McNeur 2, Jeffrey Taylor 2, Marty Schmidt 2, Lasitha Senadheera 2, Wendy Smith 2, Donald Umstadter 3, Subodh M Lele 1, Ran Dai 1, Dong Jianghu James 1, Ying Yan 1, Zhou Su-Min 1
    1University of Nebraska Medical Center, Omaha, Nebraska, USA.
    2Varian Medical Systems, Palo Alto, California, USA.
    3University of Nebraska, Lincoln, Nebraska, USA.

  • 키워드
    FLASH Research Extension (FLEX); cell viability; conventional dose rate (CONV); dosimetry; electron Ultra-high dose rate (eFLASH); linear accelerator; stress-activated senescence.
  • 편집위원

    Varian Clinac-23EX 선형가속기에 전자빔 FLASH 기능을 확장한 논문으로서 기존의 6, 9, 12, 16 MeV는 일반 선량률을 유지하도록 하면서, 20 MeV 모드를 16 MeV 플래시 모드로 개조하는 과정이 잘 나타나있다.
    측정결과 최대 선량률 680 Gy/s의 FLASH 빔의 전달 가능성을 확인하였으며, 선량률 180 Gy/s를 사용하여 정상세포와 암세포 실험을 통하여 FLASH 빔의 생물학적 효과도 확인하였다.
    본 논문에서는 선형가속기의 하드웨어 변경 과정에서부터 선량률 측정과 조사면 평탄성을 포함하는 Acceptance testing 과정이 잘 나타나 있으며, 마지막으로 정상세포(76N) 및 암세포주(BT-549)를 이용한 invitro 실험 결과까지 제시하고 있어, 본 논문은 기존의 선형가속기 기반 FLASH 빔을 구축하는 경우 유용하게 활용될 수 있다.

    2024-03-28 17:39:01

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