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利用 DNA 染料之间的受体质子-给体质子比校正的福斯特共振能量转移,可视化活细胞中的染色质纳米级压缩。

Chromatin nanoscale compaction in live cells visualized by acceptor-to-donor ratio corrected Förster resonance energy transfer between DNA dyes.

机构信息

Nanoscopy and Nikon Imaging Center, Istituto Italiano di Tecnologia, Genoa, Italy.

Department of Physics, University of Genoa, Genoa, Italy.

出版信息

J Biophotonics. 2019 Dec;12(12):e201900164. doi: 10.1002/jbio.201900164. Epub 2019 Aug 21.

Abstract

@Chromatin nanoscale architecture in live cells can be studied by Förster resonance energy transfer (FRET) between fluorescently labeled chromatin components, such as histones. A higher degree of nanoscale compaction is detected as a higher FRET level, since this corresponds to a higher degree of proximity between donor and acceptor molecules. However, in such a system, the stoichiometry of the donors and acceptors engaged in the FRET process is not well defined and, in principle, FRET variations could be caused by variations in the acceptor-to-donor ratio rather than distance. Here, to get a FRET level independent of the acceptor-to-donor ratio, we combine fluorescence lifetime imaging detection of FRET with a normalization of the FRET level to a pixel-wise estimation of the acceptor-to-donor ratio. We use this method to study FRET between two DNA binding dyes staining the nuclei of live cells. We show that this acceptor-to-donor ratio corrected FRET imaging reveals variations of nanoscale compaction in different chromatin environments. As an application, we monitor the rearrangement of chromatin in response to laser-induced microirradiation and reveal that DNA is rapidly decompacted, at the nanoscale, in response to DNA damage induction.

摘要

在活细胞中,可以通过荧光标记的染色质成分(如组蛋白)之间的Förster 共振能量转移(FRET)来研究染色质的纳米级结构。FRET 水平越高,表明供体和受体分子之间的接近程度越高,纳米级结构的压缩程度越高。然而,在这样的系统中,参与 FRET 过程的供体和受体的化学计量比没有很好地定义,原则上,FRET 的变化可能是由于受体与供体的比例而不是距离的变化引起的。在这里,为了获得与受体与供体比例无关的 FRET 水平,我们将 FRET 的荧光寿命成像检测与 FRET 水平的归一化相结合,以像素级的方式估计受体与供体的比例。我们使用这种方法研究了两种染色质结合染料在活细胞核中进行 FRET 的情况。我们表明,这种受体与供体比例校正的 FRET 成像揭示了不同染色质环境中纳米级压缩的变化。作为一种应用,我们监测了激光诱导微照射下染色质的重排,并揭示了 DNA 在纳米级尺度上迅速解压缩,以响应 DNA 损伤诱导。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/e1f2/7065635/4cf47c4633b9/JBIO-12-e201900164-g001.jpg

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