Evaluation of Cell Cycle-Dependent Migration Activity after X-ray Exposure: A Radiobiological Approach for Optimization of Radiotherapy with Cell Cycle-Targeting Agents.

IF 2.5 3区 医学 Q2 BIOLOGY
Ryosuke Seino, Hisanori Fukunaga
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引用次数: 0

Abstract

Radiotherapy with cell cycle-specific anticancer agents has become an important option in the control of both primary tumors and metastases. Here, we used image analysis algorithms that enable quick segmentation and tracking to describe a radiobiological approach for the optimized selection of cell cycle-targeting anticancer drugs for radiotherapy. We confirmed cell cycle-synchronization using human cervical cancer HeLa cells expressing a fluorescent ubiquitination-based cell cycle indicator (FUCCI) as a cell cycle-monitoring probe. Cells synchronized in the G1 and G2 phases were irradiated with X rays at 0.5-2 Gy. Each cell was identified using Cellpose, a deep learning-based algorithm for cellular segmentation, and the velocity and direction of migration were analyzed using the TrackMate plugin in Fiji ImageJ. G1 phase synchronized cells showed a dose-dependent decrease in velocity after irradiation, while G2 cells tended to increase their velocity. The migration pattern of all cells appeared to be a random walk model, regardless of the exposure dose. In addition, we used cisplatin to arrest the cell cycle. HeLa-FUCCI cells arrested at the G2 phase via cisplatin treatment showed enhanced cell migration after X-ray exposure. These results indicated that anticancer agents that arrest the cell cycle of cancer cells in a specific phase may enhance cell migration after radiotherapy. Our approach, using cellular segmentation and tracking algorithms, could enhance the radiobiological assessment of cell cycle-specific migration after irradiation to aid in optimizing radiotherapy using cell cycle-targeting agents.

评估 X 射线照射后依赖细胞周期的迁移活动:用细胞周期靶向药物优化放射治疗的放射生物学方法》(A Radiobiological Approach for Optimization of Radiotherapy with Cell Cycle-Targeting Agents)。
使用细胞周期特异性抗癌药物进行放射治疗已成为控制原发性肿瘤和转移瘤的重要选择。在这里,我们利用可快速分割和跟踪的图像分析算法,描述了一种放射生物学方法,用于优化选择细胞周期靶向抗癌药物进行放射治疗。我们使用表达基于泛素化荧光的细胞周期指示剂(FUCCI)的人类宫颈癌 HeLa 细胞作为细胞周期监测探针,证实了细胞周期同步化。用 0.5-2 Gy 的 X 射线照射同步进入 G1 和 G2 期的细胞。使用 Cellpose(一种基于深度学习的细胞分割算法)识别每个细胞,并使用 Fiji ImageJ 中的 TrackMate 插件分析迁移的速度和方向。照射后,G1 期同步细胞的迁移速度呈剂量依赖性下降,而 G2 期细胞的迁移速度呈上升趋势。所有细胞的迁移模式似乎都是随机漫步模型,与照射剂量无关。此外,我们还使用顺铂抑制细胞周期。经顺铂处理停滞在 G2 期的 HeLa-FUCCI 细胞在 X 射线照射后表现出更强的细胞迁移能力。这些结果表明,将癌细胞的细胞周期阻滞在特定阶段的抗癌剂可能会增强放疗后的细胞迁移。我们的方法采用了细胞分割和跟踪算法,可以加强对照射后细胞周期特异性迁移的放射生物学评估,从而帮助优化使用细胞周期靶向药物的放射治疗。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
Radiation research
Radiation research 医学-核医学
CiteScore
5.10
自引率
8.80%
发文量
179
审稿时长
1 months
期刊介绍: Radiation Research publishes original articles dealing with radiation effects and related subjects in the areas of physics, chemistry, biology and medicine, including epidemiology and translational research. The term radiation is used in its broadest sense and includes specifically ionizing radiation and ultraviolet, visible and infrared light as well as microwaves, ultrasound and heat. Effects may be physical, chemical or biological. Related subjects include (but are not limited to) dosimetry methods and instrumentation, isotope techniques and studies with chemical agents contributing to the understanding of radiation effects.
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