Schamoni-Kast Kira, Krichel Boris, Damjanović Tomislav, Said Fatema-Aqila, Kierspel Thomas, Toker Sibel, Uetrecht Charlotte
CSSB Centre for Structural Systems Biology, Deutsches Elektronen Synchroton DESY, Leibniz Institute of Virology, University of Lübeck, Hamburg, Germany.
Institute of Chemistry and Metabolomics, University of Lübeck, Lübeck, Germany.
Nat Commun. 2025 Sep 9;16(1):8244. doi: 10.1038/s41467-025-61554-y.
In coronavirus (CoV) infection, polyproteins (pp1a/pp1ab) are processed into non-structural proteins (nsps), which largely form the replication/transcription complex (RTC). The polyprotein processing and complex formation is critical and offers potential therapeutic targets. However, the interplay of polyprotein processing and RTC-assembly remains poorly understood. Here, we study two key aspects: The order of polyprotein processing by viral main protease M and its influence on complex formation with the methyltransferase nsp16. Moreover, we establish an approach to determine rate constants k from cleavage sites in structured CoV polyprotein based on native mass spectrometry (MS). The high sensitivity and precision of our method allow quantification of multi-reaction kinetics of nsp7-11 processing from four human pathogenic CoV species. The experimentally determined rate constants are put into perspective with a comprehensive analysis of primary sequences and structural models, revealing distinct cleavage mechanisms for each site based on their local structural environments. Our systematic approach provides a blueprint for kinetic analysis of complex multi-cleavage reactions.
在冠状病毒(CoV)感染中,多聚蛋白(pp1a/pp1ab)被加工成非结构蛋白(nsps),这些非结构蛋白在很大程度上形成复制/转录复合体(RTC)。多聚蛋白的加工和复合体形成至关重要,并提供了潜在的治疗靶点。然而,多聚蛋白加工与RTC组装之间的相互作用仍知之甚少。在此,我们研究两个关键方面:病毒主要蛋白酶M对多聚蛋白的加工顺序及其对与甲基转移酶nsp16形成复合体的影响。此外,我们建立了一种基于天然质谱(MS)从结构化CoV多聚蛋白的切割位点确定速率常数k的方法。我们方法的高灵敏度和高精度使得能够对四种人类致病性CoV病毒的nsp7-11加工的多反应动力学进行定量分析。通过对一级序列和结构模型的全面分析,将实验测定的速率常数进行综合考量,揭示了每个位点基于其局部结构环境的独特切割机制。我们的系统方法为复杂多切割反应的动力学分析提供了蓝图。