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哺乳动物组织的空间表观基因组-转录组共 profiling。

Spatial epigenome-transcriptome co-profiling of mammalian tissues.

机构信息

Department of Biomedical Engineering, Yale University, New Haven, CT, USA.

Yale Stem Cell Center and Yale Cancer Center, Yale School of Medicine, New Haven, CT, USA.

出版信息

Nature. 2023 Apr;616(7955):113-122. doi: 10.1038/s41586-023-05795-1. Epub 2023 Mar 15.

Abstract

Emerging spatial technologies, including spatial transcriptomics and spatial epigenomics, are becoming powerful tools for profiling of cellular states in the tissue context. However, current methods capture only one layer of omics information at a time, precluding the possibility of examining the mechanistic relationship across the central dogma of molecular biology. Here, we present two technologies for spatially resolved, genome-wide, joint profiling of the epigenome and transcriptome by cosequencing chromatin accessibility and gene expression, or histone modifications (H3K27me3, H3K27ac or H3K4me3) and gene expression on the same tissue section at near-single-cell resolution. These were applied to embryonic and juvenile mouse brain, as well as adult human brain, to map how epigenetic mechanisms control transcriptional phenotype and cell dynamics in tissue. Although highly concordant tissue features were identified by either spatial epigenome or spatial transcriptome we also observed distinct patterns, suggesting their differential roles in defining cell states. Linking epigenome to transcriptome pixel by pixel allows the uncovering of new insights in spatial epigenetic priming, differentiation and gene regulation within the tissue architecture. These technologies are of great interest in life science and biomedical research.

摘要

新兴的空间技术,包括空间转录组学和空间表观基因组学,正在成为在组织背景下对细胞状态进行分析的有力工具。然而,目前的方法一次只能捕获一层组学信息,从而排除了在分子生物学中心法则的范围内检查机制关系的可能性。在这里,我们提出了两种技术,用于通过共测序染色质可及性和基因表达或组蛋白修饰(H3K27me3、H3K27ac 或 H3K4me3)和在同一组织切片上的基因表达,以近单细胞分辨率对表观基因组和转录组进行空间分辨、全基因组联合分析。这些技术应用于胚胎和幼年小鼠大脑以及成年人大脑,以绘制表观遗传机制如何控制组织中的转录表型和细胞动力学。尽管通过空间表观基因组或空间转录组都可以识别出高度一致的组织特征,但我们也观察到了不同的模式,这表明它们在定义细胞状态方面的不同作用。逐个像素地将表观基因组与转录组联系起来,可以揭示组织结构内空间表观遗传启动、分化和基因调控的新见解。这些技术在生命科学和生物医学研究中具有重要意义。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/2a07/10076218/723e4a0f1fd0/41586_2023_5795_Fig1_HTML.jpg

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