Zhou Zhou, Li Albert, Zhang Junke, Yu Haiyuan, Ozer Abdullah, Lis John T
Department of Molecular Biology and Genetics, Cornell University, Ithaca, NY 14853, USA.
College of Agriculture and Life Sciences, Cornell University, Ithaca, NY 14853, USA.
bioRxiv. 2025 Jul 9:2025.07.07.663560. doi: 10.1101/2025.07.07.663560.
Enhancers are gene-distal -regulatory elements that drive cell type-specific gene expression. While significant progress has been made in identifying enhancers and characterizing their epigenomic features, much less effort has been devoted to elucidating mechanistic interactions among clusters of functionally linked regulatory elements within their endogenous chromatin contexts. Here, we developed a novel recombinase-mediated genome rewriting platform and applied our divergent transcription architectural model to understand how a long-range human enhancer confers a remarkable 10,000-fold activation to its target gene, at its native locus. Our systematic dissection reveals transcription factor synergy at this enhancer and highlights the interplay between a divergently transcribed core enhancer unit and emerging new types of -regulatory elements-notably, intrinsically inactive facilitators that augment and buffer core enhancer activity, and an adjacent retroviral long terminal repeat promoter that represses enhancer activity. We discuss the broader implications of our focused study on enhancer mechanisms and regulation genome-wide.
增强子是驱动细胞类型特异性基因表达的基因远端调控元件。虽然在识别增强子及其表观基因组特征方面已取得重大进展,但在阐明其内源染色质背景下功能相关调控元件簇之间的机制相互作用方面投入的精力要少得多。在这里,我们开发了一种新型重组酶介导的基因组重写平台,并应用我们的发散转录结构模型来了解一个远距离人类增强子如何在其天然位点对其靶基因赋予高达10000倍的显著激活作用。我们的系统剖析揭示了该增强子处的转录因子协同作用,并突出了一个发散转录的核心增强子单元与新型调控元件之间的相互作用——特别是增强和缓冲核心增强子活性的内在无活性促进子,以及一个抑制增强子活性的相邻逆转录病毒长末端重复启动子。我们讨论了我们对增强子机制和全基因组调控的重点研究的更广泛意义。
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