CNRS UMR 8516, University of Lille, LASIRE, C4 Building, Avenue Paul Langevin, F-59655, Villeneuve d'Ascq, France.
Department of NMR-based Structural Biology, Max Planck Institute for Multidisciplinary Sciences, Am Faßberg 11, D-37077, Göttingen, Germany.
Nat Commun. 2024 Feb 21;15(1):1610. doi: 10.1038/s41467-024-45788-w.
Liquid-liquid phase separation is the key process underlying formation of membrane-less compartments in cells. A highly dynamic cellular body with rapid component exchange is Cajal body (CB), which supports the extensive compositional dynamics of the RNA splicing machinery, spliceosome. Here, we select an arginine-glycine (RG)-rich segment of coilin, the major component of CB, establish its RNA-induced phase separation, and through combined use of nuclear magnetic resonance (NMR) and electron paramagnetic resonance (EPR) probes, interrogate its dynamics within the crowded interior of formed droplets. Taking advantage of glycine-based singlet-states, we show that glycines retain a large level of sub-nanoseconds dynamics inside the coilin droplets. Furthermore, the continuous-wave (CW) and electron-electron dipolar (PELDOR) and electron-nucleus hyperfine coupling EPR data (HYSCORE) support the RNA-induced formation of dynamic coilin droplets with high coilin peptide concentrations. The combined NMR and EPR data reveal the high dynamics of the RG-rich coilin within droplets and suggest its potential role in the large dynamics of CBs.
液-液相分离是细胞中无膜隔室形成的关键过程。Cajal 体 (CB) 是一种具有快速成分交换的高度动态细胞体,支持 RNA 剪接机制剪接体的广泛组成动力学。在这里,我们选择 coilin 的富含精氨酸-甘氨酸 (RG) 的片段,该片段是 CB 的主要成分,建立其 RNA 诱导的相分离,并通过结合使用核磁共振 (NMR) 和电子顺磁共振 (EPR) 探针,在形成的液滴内部拥挤的环境中检测其动力学。利用基于甘氨酸的单重态,我们表明甘氨酸在 coilin 液滴内保留了很大程度的亚纳秒动力学。此外,连续波 (CW) 和电子-电子偶极子 (PELDOR) 和电子-核超精细耦合 EPR 数据 (HYSCORE) 支持 RNA 诱导的具有高 coilin 肽浓度的动态 coilin 液滴的形成。结合的 NMR 和 EPR 数据揭示了 RG 丰富的 coilin 在液滴内的高动力学,并表明其在 CB 大动力学中的潜在作用。