Dittmar Gunnar, Hernandez Daniel Perez, Kowenz-Leutz Elisabeth, Kirchner Marieluise, Kahlert Günther, Wesolowski Radoslaw, Baum Katharina, Knoblich Maria, Hofstätter Maria, Muller Arnaud, Wolf Jana, Reimer Ulf, Leutz Achim
Proteome and Genome Research Laboratory, Luxembourg Institute of Health, 1a Rue Thomas Edison, 1445 Strassen, Luxembourg; Max Delbrück Center for Molecular Medicine, Robert-Roessle Strasse 10, 13125 Berlin, Germany; BIH Core Facility Proteomics, Robert-Roessle Strasse 10, 10125 Berlin, Germany.
Max Delbrück Center for Molecular Medicine, Robert-Roessle Strasse 10, 13125 Berlin, Germany; BIH Core Facility Proteomics, Robert-Roessle Strasse 10, 10125 Berlin, Germany.
iScience. 2019 Mar 29;13:351-370. doi: 10.1016/j.isci.2019.02.026. Epub 2019 Mar 1.
CCAAT enhancer-binding protein beta (C/EBPβ) is a pioneer transcription factor that specifies cell differentiation. C/EBPβ is intrinsically unstructured, a molecular feature common to many proteins involved in signal processing and epigenetics. The structure of C/EBPβ differs depending on alternative translation initiation and multiple post-translational modifications (PTM). Mutation of distinct PTM sites in C/EBPβ alters protein interactions and cell differentiation, suggesting that a C/EBPβ PTM indexing code determines epigenetic outcomes. Herein, we systematically explored the interactome of C/EBPβ using an array technique based on spot-synthesized C/EBPβ-derived linear tiling peptides with and without PTM, combined with mass spectrometric proteomic analysis of protein interactions. We identified interaction footprints of ∼1,300 proteins in nuclear extracts, many with chromatin modifying, chromatin remodeling, and RNA processing functions. The results suggest that C/EBPβ acts as a multi-tasking molecular switchboard, integrating signal-dependent modifications and structural plasticity to orchestrate interactions with numerous protein complexes directing cell fate and function.
CCAAT增强子结合蛋白β(C/EBPβ)是一种决定细胞分化的先驱转录因子。C/EBPβ本质上是无结构的,这是许多参与信号处理和表观遗传学的蛋白质共有的分子特征。C/EBPβ的结构因可变翻译起始和多种翻译后修饰(PTM)而有所不同。C/EBPβ中不同PTM位点的突变会改变蛋白质相互作用和细胞分化,这表明C/EBPβ的PTM索引代码决定了表观遗传结果。在此,我们使用基于斑点合成的带有和不带有PTM的C/EBPβ衍生线性平铺肽的阵列技术,结合蛋白质相互作用的质谱蛋白质组学分析,系统地探索了C/EBPβ的相互作用组。我们在核提取物中鉴定了约1300种蛋白质的相互作用足迹,其中许多具有染色质修饰、染色质重塑和RNA加工功能。结果表明,C/EBPβ作为一个多任务分子总控台,整合信号依赖的修饰和结构可塑性,以协调与众多指导细胞命运和功能的蛋白质复合物的相互作用。