Stoffel Nina Kim, Sankaranarayanan Srimeenakshi, Müntjes Kira, Körtel Nadine, Busch Anke, Zarnack Kathi, König Julian, Feldbrügge Michael
Institute of Microbiology, Heinrich Heine University Düsseldorf, Cluster of Excellence on Plant Sciences, 40204 Düsseldorf, Germany.
Institute of Molecular Biology GmbH, 55128 Mainz, Germany.
RNA. 2025 Jan 22;31(2):258-272. doi: 10.1261/rna.080193.124.
The entire RNA life cycle, spanning from transcription to decay, is intricately regulated by RNA-binding proteins (RBPs). To understand their precise functions, it is crucial to identify direct targets, pinpoint their exact binding sites, and unravel the underlying specificity in vivo. Individual-nucleotide resolution UV cross-linking and immunoprecipitation 2 (iCLIP2) is a state-of-the-art technique that enables the identification of RBP-binding sites at single-nucleotide resolution. However, in the field of microbiology, optimized iCLIP protocols compared to mammalian systems are lacking. Here, we present the first microbial iCLIP2 approach using the multi-RRM domain protein Rrm4 from the fungus as an example. Key challenges, such as inherently high RNase and protease activity in fungi, were addressed by improving mechanical cell disruption and lysis buffer composition. Our modifications increased the yield of cross-link events and improved the identification of Rrm4-binding sites. Thereby, we were able to pinpoint that Rrm4 binds the stop codons of nuclear-encoded mRNAs of mitochondrial respiratory complexes I, III, and V-revealing an intimate link between endosomal mRNA transport and mitochondrial physiology. Thus, our study using as an example might serve as a blueprint for optimizing iCLIP2 procedures in other microorganisms with high RNase/protease conditions.
从转录到降解的整个RNA生命周期都受到RNA结合蛋白(RBP)的复杂调控。为了解它们的精确功能,确定直接靶点、精确找出它们的结合位点并揭示体内潜在的特异性至关重要。单核苷酸分辨率紫外线交联与免疫沉淀技术2(iCLIP2)是一种先进技术,能够以单核苷酸分辨率鉴定RBP结合位点。然而,在微生物学领域,与哺乳动物系统相比,缺乏优化的iCLIP方案。在此,我们以真菌中的多RNA识别基序(RRM)结构域蛋白Rrm4为例,展示了首个微生物iCLIP2方法。通过改进机械细胞破碎和裂解缓冲液组成,解决了诸如真菌中固有的高核糖核酸酶和蛋白酶活性等关键挑战。我们的改进提高了交联事件的产量,并改善了Rrm4结合位点的鉴定。由此,我们能够确定Rrm4结合线粒体呼吸复合物I、III和V的核编码mRNA的终止密码子,揭示了内体mRNA转运与线粒体生理学之间的密切联系。因此,我们以……为例的研究可能为在其他具有高核糖核酸酶/蛋白酶条件的微生物中优化iCLIP2程序提供蓝图。 (注:原文中“using the multi-RRM domain protein Rrm4 from the fungus as an example”和“using as an example”处有信息缺失,译文按完整逻辑补充了“……”)