线粒体
闪光灯(摄影)
离体
体内
毒性
线粒体毒性
线粒体DNA
生物
体外
活性氧
癌症研究
细胞生物学
医学
生物化学
内科学
遗传学
基因
艺术
视觉艺术
作者
Emily G. Caggiano,Alan Lopez-Hernandez,Trey Waldrop,Kevin Liu,Henry Gatica-Gutierrez,Sofía Vargas-Hernández,Nefetiti Mims,Ariana Acevedo-Diaz,Brett Velasquez,D.E. Neil,Edgardo Aguilar,Matthew D. Meyer,Gloria V. Echeverria,Albert C. Koong,Michael T. Spiotto,Anna‐Karin Gustavsson,Emil Schüler
出处
期刊:
[Cold Spring Harbor Laboratory]
日期:2025-04-09
被引量:2
标识
DOI:10.1101/2025.04.03.647049
摘要
Purpose: Ultra-high dose rate (>40 Gy/s, FLASH) radiation therapy (RT) provides equivalent tumor control while reducing normal tissue toxicity relative to conventional dose rate (CONV) RT. However, the mechanisms underlying the observed FLASH effect are unknown. We hypothesized that the preservation of mitochondrial integrity in nontumorigenic cells by FLASH RT could be a key factor in reducing normal tissue toxicity and improving overall treatment outcomes. Methods: We examined mitochondrial health and function after CONV and FLASH in vitro, ex vivo, and in vivo through assays of metabolic flux, mitochondrial membrane potential, mitochondrial reactive oxygen species (ROS), mitochondrial DNA damage and copy number, mitochondrial morphology, and tumor growth and survival. Results: In in vitro assays, murine pancreatic cancer (PDAC) cells showed evidence of equal mitochondrial damage in response to CONV and FLASH, but nontumorigenic pancreatic cells were spared by FLASH. These results were recapitulated ex vivo, and mice treated with FLASH showed higher response rates and longer survival time than mice treated with CONV in an in vivo tumor model. Conclusions: Collectively, these results suggest that FLASH spares mitochondrial function in nontumorigenic cells, but not in PDAC cells, relative to CONV. The preservation of mitochondrial integrity in nontumorigenic cells may be a key mechanism underlying the reduced normal tissue toxicity observed with FLASH RT.
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