Monte Carlo Simulations indicate that Chromati: Nanostructure is accessible by Light Microscopy.

Philipp M Diesinger, Dieter W Heermann
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Abstract

A long controversy exists about the structure of chromatin. Theoretically, this structure could be resolved by scattering experiments if one determines the scattering function - or equivalently the pair distribution function - of the nucleosomes. Unfortunately, scattering experiments with live cells are very difficult and limited to only a couple of nucleosomes.Nevertheless, new techniques like the high-resolution light microscopy supply a new approach to this problem. In this work we determine the radial pair distribution function of chromatin described by our E2A model and find that the dominant peaks which characterize the chromatin structure are very robust in several ways: They can still be identified in the case of chromatin fibers with reasonable linker histone and nucleosome defect rates as well as in the 2D case after a projection like in most high-res light microscopy experiments. This might initiate new experimental approaches like optical microscopy to finally determine the nanostructure of chromatin.Furthermore, we examine the statistics of random chromatin collisions and compare it with 5C data of a gene desert. We find that only chromatin fibers with histone depletion show a significant amount of contacts on the kbp-scale which play a important role in gene regulation. Therefore, linker histone and nucleosome depletion might not only be chromatin defects but even be necessary to facilitate transcription.PACS codes: 82.35.Pq, 87.16.A-, 87.16.af.

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蒙特卡罗模拟表明,Chromati:可以通过光学显微镜观察到纳米结构。
关于染色质结构的争议由来已久。从理论上讲,如果能确定核小体的散射函数(或等同于核小体对分布函数),就能通过散射实验解析这种结构。然而,高分辨率光学显微镜等新技术为这一问题提供了新的解决方法。在这项工作中,我们确定了 E2A 模型所描述的染色质径向对分布函数,并发现染色质结构的主导峰在几个方面都非常稳健:在染色质纤维具有合理的连接组蛋白和核小体缺陷率的情况下,以及在像大多数高分辨率光镜实验那样进行投影后的二维情况下,它们仍然可以被识别出来。此外,我们还研究了染色质随机碰撞的统计数据,并将其与基因沙漠的 5C 数据进行了比较。我们发现,只有组蛋白耗竭的染色质纤维才会出现大量 kbp 级的接触,而这些接触在基因调控中发挥着重要作用。因此,连接组蛋白和核小体耗竭可能不仅是染色质缺陷,甚至是促进转录的必要条件。PACS 编码:82.35.Pq, 87.16.A-, 87.16.af。
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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