人脑中单个染色质纤维谱和核小体位置定位。

IF 4.3 Q1 BIOCHEMICAL RESEARCH METHODS Cell Reports Methods Pub Date : 2024-12-16 Epub Date: 2024-12-03 DOI:10.1016/j.crmeth.2024.100911
Cyril J Peter, Aman Agarwal, Risa Watanabe, Bibi S Kassim, Xuedi Wang, Tova Y Lambert, Behnam Javidfar, Viviana Evans, Travis Dawson, Maya Fridrikh, Kiran Girdhar, Panos Roussos, Sathiji K Nageshwaran, Nadejda M Tsankova, Robert P Sebra, Mitchell R Vollger, Andrew B Stergachis, Dan Hasson, Schahram Akbarian
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引用次数: 0

摘要

我们应用了一种单分子染色质纤维测序(fiber -seq)方案,该方案设计用于在核小体分辨率下,沿着延伸的~ 10kb染色质纤维,对从人类脑组织中分类的神经元和非神经元细胞核进行无扩增的细胞类型特异性调控结构定位。具体来说,该方法的应用能够在单个纤维上解析细胞选择性启动子和增强子结构,包括转录因子足迹和位置定位,以及转录起始位点和调控基序两侧的核小体阵列的序列特异性固定。我们发现了单倍型特异性染色质模式,单个纤维上顺式排列的多个调控元件,以及包含反转录转座子和其他迄今为止通过短读表观基因组测序“无法绘制”的重复序列的20,000个独特位点的可访问染色质。总的来说,我们表明纤维序列适用于人类脑组织,在开放染色质位点上提供核小体耗尽区域的清晰划分,并在全基因组范围内以单纤维分辨率进行多千碱基核小体定位。
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Single chromatin fiber profiling and nucleosome position mapping in the human brain.

We apply a single-molecule chromatin fiber sequencing (Fiber-seq) protocol designed for amplification-free cell-type-specific mapping of the regulatory architecture at nucleosome resolution along extended ∼10-kb chromatin fibers to neuronal and non-neuronal nuclei sorted from human brain tissue. Specifically, application of this method enables the resolution of cell-selective promoter and enhancer architectures on single fibers, including transcription factor footprinting and position mapping, with sequence-specific fixation of nucleosome arrays flanking transcription start sites and regulatory motifs. We uncover haplotype-specific chromatin patterns, multiple regulatory elements cis-aligned on individual fibers, and accessible chromatin at 20,000 unique sites encompassing retrotransposons and other repeat sequences hitherto "unmappable" by short-read epigenomic sequencing. Overall, we show that Fiber-seq is applicable to human brain tissue, offering sharp demarcation of nucleosome-depleted regions at sites of open chromatin in conjunction with multi-kilobase nucleosomal positioning at single-fiber resolution on a genome-wide scale.

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来源期刊
Cell Reports Methods
Cell Reports Methods Chemistry (General), Biochemistry, Genetics and Molecular Biology (General), Immunology and Microbiology (General)
CiteScore
3.80
自引率
0.00%
发文量
0
审稿时长
111 days
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