Department of Biological Sciences, Indian Institute of Science Education and Research Kolkata, Mohanpur, West Bengal, India.
Department of Biological Sciences, Indian Institute of Science Education and Research Kolkata, Mohanpur, West Bengal, India.
J Biol Chem. 2024 Jan;300(1):105551. doi: 10.1016/j.jbc.2023.105551. Epub 2023 Dec 10.
Bromodomain-PHD finger protein 1 (BRPF1) belongs to the BRPF family of bromodomain-containing proteins. Bromodomains are exclusive reader modules that recognize and bind acetylated histones and non-histone transcription factors to regulate gene expression. The biological functions of acetylated histone recognition by BRPF1 bromodomain are well characterized; however, the function of BRPF1 regulation via non-histone acetylation is still unexplored. Therefore, identifying the non-histone interactome of BRPF1 is pivotal in deciphering its role in diverse cellular processes, including its misregulation in diseases like cancer. Herein, we identified the non-histone interacting partners of BRPF1 utilizing a protein engineering-based approach. We site-specifically introduced the unnatural photo-cross-linkable amino acid 4-azido-L-phenylalanine into the bromodomain of BRPF1 without altering its ability to recognize acetylated histone proteins. Upon photoirradiation, the engineered BRPF1 generates a reactive nitrene species, cross-linking interacting partners with spatio-temporal precision. We demonstrated the robust cross-linking efficiency of the engineered variant with reported histone ligands of BRPF1 and further used the variant reader to cross-link its interactome. We also characterized novel interacting partners by proteomics, suggesting roles for BRPF1 in diverse cellular processes. BRPF1 interaction with interleukin enhancer-binding factor 3, one of these novel interacting partners, was further validated by isothermal titration calorimetry and co-IP. Lastly, we used publicly available ChIP-seq and RNA-seq datasets to understand the colocalization of BRPF1 and interleukin enhancer-binding factor 3 in regulating gene expression in the context of hepatocellular carcinoma. Together, these results will be crucial for full understanding of the roles of BRPF1 in transcriptional regulation and in the design of small-molecule inhibitors for cancer treatment.
溴结构域和 PH 结构域蛋白 1(BRPF1)属于含有溴结构域的 BRPF 家族蛋白。溴结构域是特异性识别和结合乙酰化组蛋白和非组蛋白转录因子的唯一读取模块,从而调节基因表达。BRPF1 溴结构域识别乙酰化组蛋白的生物学功能已得到很好的描述;然而,BRPF1 通过非组蛋白乙酰化的调节功能仍未被探索。因此,鉴定 BRPF1 的非组蛋白相互作用组对于破译其在包括癌症等疾病中的多种细胞过程中的作用至关重要。在此,我们利用基于蛋白质工程的方法鉴定了 BRPF1 的非组蛋白相互作用伙伴。我们在不改变其识别乙酰化组蛋白蛋白能力的情况下,在 BRPF1 的溴结构域中特异性引入了非天然光交联氨基酸 4-叠氮-L-苯丙氨酸。光照射后,工程化的 BRPF1 会生成活性氮宾物种,以时空精确的方式交联相互作用伙伴。我们用 BRPF1 的报道组蛋白配体证明了工程化变体的强大交联效率,并用该变体阅读器交联其相互作用组。我们还通过蛋白质组学鉴定了新的相互作用伙伴,表明 BRPF1 在多种细胞过程中发挥作用。这些新相互作用伙伴中的一个,白细胞介素增强结合因子 3(interleukin enhancer-binding factor 3)与 BRPF1 的相互作用,通过等温滴定量热法和免疫共沉淀进一步得到验证。最后,我们使用公共可用的 ChIP-seq 和 RNA-seq 数据集,在肝细胞癌的背景下,了解 BRPF1 与白细胞介素增强结合因子 3 共同调节基因表达的共定位。总的来说,这些结果对于全面了解 BRPF1 在转录调控中的作用以及设计用于癌症治疗的小分子抑制剂至关重要。