Tsinghua-Peking Center for Life Sciences, School of Medicine and School of Life Sciences, Tsinghua University, Beijing 100084, China.
Department of Pharmacology and Molecular Sciences, Johns Hopkins University School of Medicine, Baltimore, MD 21205, USA.
Nucleic Acids Res. 2019 Mar 18;47(5):2244-2262. doi: 10.1093/nar/gkz032.
RNA-binding proteins (RBPs) play pivotal roles in directing RNA fate and function. Yet the current annotation of RBPs is largely limited to proteins carrying known RNA-binding domains. To systematically reveal dynamic RNA-protein interactions, we surveyed the human proteome by a protein array-based approach and identified 671 proteins with RNA-binding activity. Among these proteins, 525 lack annotated RNA-binding domains and are enriched in transcriptional and epigenetic regulators, metabolic enzymes, and small GTPases. Using an improved CLIP (crosslinking and immunoprecipitation) method, we performed genome-wide target profiling of isocitrate dehydrogenase 1 (IDH1), a novel RBP. IDH1 binds to thousands of RNA transcripts with enriched functions in transcription and chromatin regulation, cell cycle and RNA processing. Purified IDH1, but not an oncogenic mutant, binds directly to GA- or AU-rich RNA that are also enriched in IDH1 CLIP targets. Our study provides useful resources of unconventional RBPs and IDH1-bound transcriptome, and convincingly illustrates, for the first time, the in vivo and in vitro RNA targets and binding preferences of IDH1, revealing an unanticipated complexity of RNA regulation in diverse cellular processes.
RNA 结合蛋白 (RBPs) 在指导 RNA 命运和功能方面发挥着关键作用。然而,目前对 RBPs 的注释在很大程度上仅限于携带已知 RNA 结合结构域的蛋白质。为了系统地揭示动态 RNA-蛋白质相互作用,我们通过基于蛋白质阵列的方法对人类蛋白质组进行了调查,鉴定出 671 种具有 RNA 结合活性的蛋白质。在这些蛋白质中,有 525 种缺乏注释的 RNA 结合结构域,它们富含转录和表观遗传调节剂、代谢酶和小 GTP 酶。我们使用改进的 CLIP(交联和免疫沉淀)方法,对异柠檬酸脱氢酶 1(IDH1)这一新的 RBP 进行了全基因组靶标分析。IDH1 与数千种 RNA 转录本结合,这些转录本在转录和染色质调控、细胞周期和 RNA 处理中富集。纯化的 IDH1 而不是致癌突变体直接与 GA 或 AU 富含的 RNA 结合,这些 RNA 也富含 IDH1 CLIP 靶标。我们的研究提供了有用的非常规 RBPs 和 IDH1 结合转录组资源,并首次令人信服地说明了 IDH1 的体内和体外 RNA 靶标和结合偏好,揭示了不同细胞过程中 RNA 调控的意想不到的复杂性。