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Compaction of Single-Molecule Megabase-Long Chromatin under the Influence of Macromolecular Crowding

机译:大分子拥挤影响下单分子兆碱基长染色质的压实

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摘要

The megabase-sized length of chromatin is highly relevant to the state of chromatin in vivo, where it is subject to a highly crowded environment and is organized in topologically associating domains of similar dimension. We developed an in vitro experimental chromatin model system reconstituted from T4 DNA (approximately 166 kbp) and histone octamers and studied the monomolecular compaction of this megabase-sized chromatin fiber under the influence of macromolecular crowding. We used single-molecule fluorescence microscopy and observed compaction in aqueous solutions containing poly(ethylene glycol) in the presence of monovalent (Na+ and K+) and divalent (Mg2+) cations. Both DNA and chromatin demonstrated compaction under comparable conditions in the presence of poly(ethylene glycol) and Na+ or Mg2+ salt. However, the mechanism of the compaction changed from a first-order phase transition for DNA to a continuous folding for megabase-sized chromatin fibers. A more efficient and pronounced chromatin compaction was observed in the presence of Na+ compared to K+. A flow-stretching technique to unfold DNA and chromatin coils was used to gain further insight into the morphology of partially folded chromatin fibers. The results revealed a distribution of partially folded chromatin fibers. This variability is likely the result of the heterogeneous distribution of nucleosomes on the DNA chain. The packaging of DNA in the form of chromatin in the crowded nuclear environment appears essential to ensure gradual conformational changes of DNA.
机译:染色质的兆碱基大小长度与体内染色质的状态高度相关,染色质处于高度拥挤的环境中,并以相似尺寸的拓扑关联域进行组织。我们开发了由T4 DNA(约166 kbp)和组蛋白八聚体重建的体外实验染色质模型系统,并研究了这种大碱基染色质纤维在大分子拥挤影响下的单分子压实。我们使用单分子荧光显微镜观察了单价(Na + 和K + )和二价(Mg < sup> 2 + )阳离子。在聚乙二醇和Na + 或Mg 2 + 盐存在下,DNA和染色质在相当的条件下均表现出致密性。但是,压实的机制从DNA的一阶相变变为兆碱基大小的染色质纤维的连续折叠。与K + 相比,在Na + 的存在下,染色质的压缩更为有效和明显。使用展开流技术展开DNA和染色质线圈,可以进一步了解部分折叠的染色质纤维的形态。结果显示了部分折叠的染色质纤维的分布。这种可变性可能是核小体在DNA链上异质分布的结果。在拥挤的核环境中以染色质形式包装DNA似乎对于确保DNA逐渐构象变化至关重要。

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