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直接观察凝聚物对超级增强子控制的基因爆发的影响。

Direct observation of a condensate effect on super-enhancer controlled gene bursting.

作者信息

Du Manyu, Stitzinger Simon Hendrik, Spille Jan-Hendrik, Cho Won-Ki, Lee Choongman, Hijaz Mohammed, Quintana Andrea, Cissé Ibrahim I

机构信息

Department of Biological Physics, Max Planck Institute for Immunobiology and Epigenetics, Freiburg im Breisgau, Baden-Württemberg 79108, Germany.

Department of Biological Physics, Max Planck Institute for Immunobiology and Epigenetics, Freiburg im Breisgau, Baden-Württemberg 79108, Germany.

出版信息

Cell. 2024 Jan 18;187(2):331-344.e17. doi: 10.1016/j.cell.2023.12.005. Epub 2024 Jan 8.

Abstract

Enhancers are distal DNA elements believed to loop and contact promoters to control gene expression. Recently, we found diffraction-sized transcriptional condensates at genes controlled by clusters of enhancers (super-enhancers). However, a direct function of endogenous condensates in controlling gene expression remains elusive. Here, we develop live-cell super-resolution and multi-color 3D-imaging approaches to investigate putative roles of endogenous condensates in the regulation of super-enhancer controlled gene Sox2. In contrast to enhancer distance, we find instead that the condensate's positional dynamics are a better predictor of gene expression. A basal gene bursting occurs when the condensate is far (>1 μm), but burst size and frequency are enhanced when the condensate moves in proximity (<1 μm). Perturbations of cohesin and local DNA elements do not prevent basal bursting but affect the condensate and its burst enhancement. We propose a three-way kissing model whereby the condensate interacts transiently with gene locus and regulatory DNA elements to control gene bursting.

摘要

增强子是远端DNA元件,被认为通过环化并与启动子接触来控制基因表达。最近,我们在由增强子簇(超级增强子)控制的基因处发现了衍射尺寸的转录凝聚物。然而,内源性凝聚物在控制基因表达方面的直接功能仍然难以捉摸。在这里,我们开发了活细胞超分辨率和多色三维成像方法,以研究内源性凝聚物在超级增强子控制基因Sox2调控中的假定作用。与增强子距离不同,我们发现凝聚物的位置动态是基因表达更好的预测指标。当凝聚物距离较远(>1μm)时,会发生基础基因爆发,但当凝聚物靠近移动(<1μm)时,爆发大小和频率会增加。黏连蛋白和局部DNA元件的扰动不会阻止基础爆发,但会影响凝聚物及其爆发增强。我们提出了一种三向亲吻模型,即凝聚物与基因座和调控DNA元件瞬时相互作用以控制基因爆发。

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