Wang Huiyu, Syed Azmal Ali, Krijgsveld Jeroen, Sigismondo Gianluca
Division of Proteomics of Stem Cell and Cancer, German Cancer Research Center (DKFZ), Heidelberg, Germany; State Key Laboratory of Microbial Metabolism, School of Life Sciences and Biotechnology, Shanghai Jiao Tong University, Shanghai, China.
Division of Proteomics of Stem Cell and Cancer, German Cancer Research Center (DKFZ), Heidelberg, Germany.
Mol Cell Proteomics. 2025 Mar;24(3):100908. doi: 10.1016/j.mcpro.2025.100908. Epub 2025 Jan 20.
Signaling pathways often convergence on transcription factors and other DNA-binding proteins that regulate chromatin structure and gene expression, thereby governing a broad range of essential cellular functions. However, the repertoire of DNA-binding proteins is incompletely understood even for the best-characterized pathways. Here, we optimized a strategy for the isolation of Proteins on Chromatin (iPOC) exploiting tagged nucleoside analogs to label the DNA and capture associated proteins, thus enabling the comprehensive, sensitive, and unbiased characterization of the DNA-bound proteome. We then applied iPOC to investigate chromatome changes upon perturbation of the cancer-relevant PI3K-AKT-mTOR pathway. Our results show distinct dynamics of the DNA-bound proteome upon selective inhibition of PI3K, AKT, or mTOR, and we provide evidence how this signaling cascade regulates the DNA-bound status of SUZ12, thereby modulating H3K27me3 levels. Collectively, iPOC is a powerful approach to study the composition of the DNA-bound proteome operating downstream of signaling cascades, thereby both expanding our knowledge of the mechanism of action of the pathway and unveiling novel chromatin modulators that can potentially be targeted pharmacologically.
信号通路常常汇聚于转录因子和其他调控染色质结构及基因表达的DNA结合蛋白,从而支配广泛的基本细胞功能。然而,即使对于特征最明确的信号通路,DNA结合蛋白的全部组成仍未被完全了解。在此,我们优化了一种用于在染色质上分离蛋白质(iPOC)的策略,利用标记的核苷类似物标记DNA并捕获相关蛋白,从而能够对与DNA结合的蛋白质组进行全面、灵敏且无偏差的表征。然后,我们应用iPOC来研究癌症相关的PI3K - AKT - mTOR信号通路受干扰时染色质组的变化。我们的结果显示,在选择性抑制PI3K、AKT或mTOR时,与DNA结合的蛋白质组呈现出不同的动态变化,并且我们提供了证据证明该信号级联反应如何调节SUZ12与DNA的结合状态,进而调节H3K27me3水平。总体而言,iPOC是一种研究在信号级联反应下游起作用的与DNA结合的蛋白质组组成的强大方法,既能扩展我们对该信号通路作用机制的认识,又能揭示可能成为药物靶点的新型染色质调节剂。