染色体邻域组成决定了原代细胞暴露于高剂量辐射后易位的结果。

Lura Brianna Caddle, Jeremy L Grant, Jin Szatkiewicz, Johann van Hase, Bobbi-Jo Shirley, Joerg Bewersdorf, Christoph Cremer, Alain Arneodo, Andre Khalil, Kevin D Mills
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引用次数: 55

摘要

辐射暴露是军事人员、一些卫生保健专业人员、机场安检人员和医疗病人的职业危害,有些人有急性高剂量暴露的风险。因此,辐射的生物效应,特别是染色体损伤的可能性,是主要的职业和健康问题。然而,辐射诱导DNA损伤后染色体不稳定的生物物理机制尚不清楚。很明显,间期染色体占据着离散的结构和功能亚核结构域,称为染色体区域(CT),它可能被组织成由特定CT组组成的“邻域”。我们直接评估了原发性淋巴细胞中染色体定位、邻域组成和易位伴侣选择之间的关系,使用基于细胞的系统,我们可以通过高剂量照射诱导多次集中的DNA断裂。我们严格评估了错误重新连接的情况,并测试了发生在附近的断裂是否比发生在远处的断裂更容易融合。我们发现CT邻域包括异源染色体,其中CT间距离与易位伴侣选择直接相关。这些发现表明,间期染色体排列是原发性淋巴细胞基因组不稳定结果的主要因素,为理解辐射暴露的生物学效应和肿瘤特异性易位模式的分子病因学提供了结构背景。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Chromosome neighborhood composition determines translocation outcomes after exposure to high-dose radiation in primary cells.

Radiation exposure is an occupational hazard for military personnel, some health care professionals, airport security screeners, and medical patients, with some individuals at risk for acute, high-dose exposures. Therefore, the biological effects of radiation, especially the potential for chromosome damage, are major occupational and health concerns. However, the biophysical mechanisms of chromosome instability subsequent to radiation-induced DNA damage are poorly understood. It is clear that interphase chromosomes occupy discrete structural and functional subnuclear domains, termed chromosome territories (CT), which may be organized into 'neighborhoods' comprising groups of specific CTs. We directly evaluated the relationship between chromosome positioning, neighborhood composition, and translocation partner choice in primary lymphocytes, using a cell-based system in which we could induce multiple, concentrated DNA breaks via high-dose irradiation. We critically evaluated mis-rejoining profiles and tested whether breaks occurring nearby were more likely to fuse than breaks occurring at a distance. We show that CT neighborhoods comprise heterologous chromosomes, within which inter-CT distances directly relate to translocation partner choice. These findings demonstrate that interphase chromosome arrangement is a principal factor in genomic instability outcomes in primary lymphocytes, providing a structural context for understanding the biological effects of radiation exposure, and the molecular etiology of tumor-specific translocation patterns.

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