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朝向单分子光学表观基因组图谱绘制。

Toward single-molecule optical mapping of the epigenome.

机构信息

Raymond and Beverly Sackler Faculty of Exact Sciences, School of Chemistry, Tel Aviv University , Tel Aviv 69978, Israel.

出版信息

ACS Nano. 2014 Jan 28;8(1):14-26. doi: 10.1021/nn4050694. Epub 2013 Dec 20.

Abstract

The past decade has seen an explosive growth in the utilization of single-molecule techniques for the study of complex systems. The ability to resolve phenomena otherwise masked by ensemble averaging has made these approaches especially attractive for the study of biological systems, where stochastic events lead to inherent inhomogeneity at the population level. The complex composition of the genome has made it an ideal system to study at the single-molecule level, and methods aimed at resolving genetic information from long, individual, genomic DNA molecules have been in use for the last 30 years. These methods, and particularly optical-based mapping of DNA, have been instrumental in highlighting genomic variation and contributed significantly to the assembly of many genomes including the human genome. Nanotechnology and nanoscopy have been a strong driving force for advancing genomic mapping approaches, allowing both better manipulation of DNA on the nanoscale and enhanced optical resolving power for analysis of genomic information. During the past few years, these developments have been adopted also for epigenetic studies. The common principle for these studies is the use of advanced optical microscopy for the detection of fluorescently labeled epigenetic marks on long, extended DNA molecules. Here we will discuss recent single-molecule studies for the mapping of chromatin composition and epigenetic DNA modifications, such as DNA methylation.

摘要

过去十年中,利用单分子技术研究复杂系统的方法得到了迅猛发展。由于这些方法能够解析通过总体平均而被掩盖的现象,因此它们在研究生物系统时特别有吸引力,因为生物系统中的随机事件会导致群体水平上的固有非均一性。基因组的复杂组成使其成为在单分子水平上进行研究的理想系统,过去 30 年来,人们一直在使用旨在从长的、单个的基因组 DNA 分子中解析遗传信息的方法。这些方法,特别是基于光学的 DNA 作图,对于突出基因组的变异起到了重要作用,并为许多基因组的组装做出了重大贡献,包括人类基因组。纳米技术和纳米显微镜一直是推进基因组作图方法的强大动力,它们不仅可以更好地在纳米尺度上操纵 DNA,还可以增强对基因组信息进行分析的光学分辨率。在过去几年中,这些发展也被用于表观遗传学研究。这些研究的共同原理是使用先进的光学显微镜来检测长的、伸展的 DNA 分子上的荧光标记的表观遗传标记。在这里,我们将讨论最近用于研究染色质组成和表观遗传 DNA 修饰(如 DNA 甲基化)的单分子研究。

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