Shu Xufeng, Kato Masaki, Takizawa Satoshi, Suzuki Yutaka, Carninci Piero
Laboratory for Transcriptome Technology, RIKEN Center for Integrative Medical Sciences, Yokohama, Kanagawa 230-0045, Japan.
Department of Computational Biology and Medical Sciences, Graduate School of Frontier Sciences, The University of Tokyo, Kashiwa, Chiba, Japan.
Nucleic Acids Res. 2024 Dec 11;52(22):e104. doi: 10.1093/nar/gkae1054.
Many RNAs associate with chromatin, either directly or indirectly. Several technologies for mapping regions where RNAs interact across the genome have been developed to investigate the function of these RNAs. Obtaining information on the proteins involved in these RNA-chromatin interactions is critical for further analysis. Here, we developed RADIP [RNA and DNA interacting complexes ligated and sequenced (RADICL-seq) with immunoprecipitation], a novel technology that combines RADICL-seq technology with chromatin immunoprecipitation to characterize RNA-chromatin interactions mediated by individual proteins. Building upon the foundational principles of RADICL-seq, RADIP extends its advantages by increasing genomic coverage and unique mapping rate efficiency compared to existing methods. To demonstrate its effectiveness, we applied an anti-H3K27me3 antibody to the RADIP technology and generated libraries from mouse embryonic stem cells (mESCs). We identified a multitude of RNAs, including RNAs from protein-coding genes and non-coding RNAs, that are associated with chromatin via H3K27me3 and that likely facilitate the spread of Polycomb repressive complexes over broad regions of the mammalian genome, thereby affecting gene expression, chromatin structures and pluripotency of mESCs. Our study demonstrates the applicability of RADIP to investigations of the functions of chromatin-associated RNAs.
许多RNA直接或间接地与染色质相关联。为了研究这些RNA的功能,已经开发了几种用于绘制RNA在全基因组中相互作用区域的技术。获取参与这些RNA-染色质相互作用的蛋白质信息对于进一步分析至关重要。在这里,我们开发了RADIP[通过免疫沉淀进行RNA与DNA相互作用复合物连接和测序(RADICL-seq)],这是一种将RADICL-seq技术与染色质免疫沉淀相结合的新技术,用于表征由单个蛋白质介导的RNA-染色质相互作用。基于RADICL-seq的基本原理,与现有方法相比,RADIP通过提高基因组覆盖率和独特映射率效率扩展了其优势。为了证明其有效性,我们将抗H3K27me3抗体应用于RADIP技术,并从小鼠胚胎干细胞(mESC)中生成文库。我们鉴定了大量RNA,包括来自蛋白质编码基因的RNA和非编码RNA,它们通过H3K27me3与染色质相关联,并且可能促进多梳抑制复合物在哺乳动物基因组的广泛区域传播,从而影响mESC的基因表达、染色质结构和多能性。我们的研究证明了RADIP在研究染色质相关RNA功能方面的适用性。