基于荧光的超分辨率显微镜策略用于染色质研究。

IF 4.6 Q2 MATERIALS SCIENCE, BIOMATERIALS ACS Applied Bio Materials Pub Date : 2023-09-01 DOI:10.1007/s00412-023-00792-9
Thomas C Q Burgers, Rifka Vlijm
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引用次数: 2

摘要

超分辨率显微镜(SRM)是在原生细胞环境中以接近生物分子分辨率研究染色质组织的主要工具。用荧光标记DNA,染色质相关蛋白和特定的表观遗传状态可以识别高分子特异性。本综述的目的是介绍无衍射SRM领域,以便为特定染色质相关的研究问题选择最合适的SRM方法。我们将解释这两种衍射无限的方法(坐标定向和基于随机定位),并列出它们的特征时空分辨率、活细胞兼容性、图像处理和多色成像能力。由于与共聚焦显微镜相比,分辨率的提高导致了样品质量的中心作用,因此讨论了样品制备的重要考虑因素以及适用于染色质研究的标记策略的具体示例。为了说明基于SRM的方法如何显著提高我们对染色质功能的理解,并为未来的工作提供一个鼓舞人心的起点,我们以SRM在染色质研究中的最新应用为例进行总结。
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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Fluorescence-based super-resolution-microscopy strategies for chromatin studies.

Super-resolution microscopy (SRM) is a prime tool to study chromatin organisation at near biomolecular resolution in the native cellular environment. With fluorescent labels DNA, chromatin-associated proteins and specific epigenetic states can be identified with high molecular specificity. The aim of this review is to introduce the field of diffraction-unlimited SRM to enable an informed selection of the most suitable SRM method for a specific chromatin-related research question. We will explain both diffraction-unlimited approaches (coordinate-targeted and stochastic-localisation-based) and list their characteristic spatio-temporal resolutions, live-cell compatibility, image-processing, and ability for multi-colour imaging. As the increase in resolution, compared to, e.g. confocal microscopy, leads to a central role of the sample quality, important considerations for sample preparation and concrete examples of labelling strategies applicable to chromatin research are discussed. To illustrate how SRM-based methods can significantly improve our understanding of chromatin functioning, and to serve as an inspiring starting point for future work, we conclude with examples of recent applications of SRM in chromatin research.

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来源期刊
ACS Applied Bio Materials
ACS Applied Bio Materials Chemistry-Chemistry (all)
CiteScore
9.40
自引率
2.10%
发文量
464
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