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Structural and Dynamical Signatures of Local DNA Damage in Live Cells

机译:活细胞局部DNA损伤的结构和动态特征

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摘要

The dynamic organization of chromatin inside the cell nucleus plays a key role in gene regulation and genome replication, as well as maintaining genome integrity. Although the static folded state of the genome has been extensively studied, dynamical signatures of processes such as transcription or DNA repair remain an open question. Here, we investigate the interphase chromatin dynamics in human cells in response to local DNA damage, specifically, DNA double-strand breaks (DSBs). Using simultaneous two-color spinning-disk confocal microscopy, we monitor the DSB dynamics and the compaction of the surrounding chromatin, visualized by fluorescently labeled 53BP1 and histone H2B, respectively. Our study reveals a surprising difference between the mobility of DSBs located in the nuclear interior versus periphery (less than 1 μm from the nuclear envelope), with the interior DSBs being almost twice as mobile as the periphery DSBs. Remarkably, we find that the DSB sites possess a robust structural signature in a form of a unique chromatin compaction profile. Moreover, our data show that the DSB motion is subdiffusive and ATP-dependent and exhibits unique dynamical signatures, different from those of undamaged chromatin. Our findings reveal that the DSB mobility follows a universal relationship defined solely by the physical parameters describing the DSBs and their local environment, such as the DSB focus size (represented by the local accumulation of 53BP1), DSB density, and the local chromatin compaction. This suggests that the DSB-related repair processes are robust and likely deterministic because the observed dynamical signatures (DSB mobility) can be explained solely by their structural features (DSB focus size, local chromatin compaction). Such knowledge might help in detecting local DNA damage in live cells, as well as in aiding our biophysical understanding of genome integrity in health and disease.
机译:细胞核内染色质的动态组织起着基因调控和基因组的复制,以及维持基因组的完整性的关键作用。虽然静态折叠基因组的状态已被广泛研究,如转录或DNA修复过程的动态签名保持一个开放的问题。在这里,我们研究人类细胞中染色质相间的动态响应当地的DNA损伤,具体而言,DNA双链断裂(DNA双链断裂)。同时采用双色转盘式共聚焦显微镜,我们分别监测DSB动态和周围染色质的压实,通过荧光标记53BP1和组蛋白H2B可视化。我们的研究揭示了位于核内部与周围(从核膜小于1μm)的DNA双链断裂的迁移率之间令人惊讶的差异,与内部的DNA双链断裂是几乎两倍移动作为周边DNA双链断裂。值得注意的是,我们发现DSB网站以一种独特的染色质压实型材的形式拥有强大的结构性特征。此外,我们的数据显示,DSB运动是subdiffusive和ATP依赖性的,并且表现出独特的动态签名,从那些未损坏的染色质不同。我们的研究结果表明,该DSB迁移率如下仅仅通过描述的DNA双链断裂和它们的局部环境,如DSB焦点尺寸(通过53BP1局部聚集表示),DSB密度,和局部染色质压实的物理参数所定义的普遍关系。这表明DSB相关的修复过程是稳健的,并有可能确定性,因为所观察到的动态签名(DSB流动性),可以通过它们的结构特征(DSB焦点尺寸,本地染色质压实)单独解释。在检测活细胞局部DNA损伤,以及在帮助我们在健康和疾病基因组的完整性的生物物理学理解这些知识可能帮助。

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