Centre for Protein Science, Design and Engineering, Indian Institute of Science Education and Research (IISER) Mohali, Sector 81, SAS Nagar, Mohali, Punjab, 140306, India.
Department of Biological Sciences, Indian Institute of Science Education and Research (IISER) Mohali, Sector 81, SAS Nagar, Mohali, Punjab, 140306, India.
Nat Commun. 2023 Nov 13;14(1):7331. doi: 10.1038/s41467-023-43225-y.
Biomolecular condensates formed via phase separation of proteins and nucleic acids are thought to be associated with a wide range of cellular functions and dysfunctions. We dissect critical molecular events associated with phase separation of an intrinsically disordered prion-like low-complexity domain of Fused in Sarcoma by performing single-molecule studies permitting us to access the wealth of molecular information that is skewed in conventional ensemble experiments. Our single-molecule FRET experiments reveal the coexistence of two conformationally distinct subpopulations in the monomeric form. Single-droplet single-molecule FRET studies coupled with fluorescence correlation spectroscopy, picosecond time-resolved fluorescence anisotropy, and vibrational Raman spectroscopy indicate that structural unwinding switches intramolecular interactions into intermolecular contacts allowing the formation of a dynamic network within condensates. A disease-related mutation introduces enhanced structural plasticity engendering greater interchain interactions that can accelerate pathological aggregation. Our findings provide key mechanistic underpinnings of sequence-encoded dynamically-controlled structural unzipping resulting in biological phase separation.
生物分子凝聚物通过蛋白质和核酸的相分离形成,被认为与广泛的细胞功能和功能障碍有关。我们通过进行单分子研究来剖析与肉瘤融合中无序的类朊病毒低复杂度域的相分离相关的关键分子事件,这使我们能够获取在传统的整体实验中被扭曲的丰富的分子信息。我们的单分子 FRET 实验揭示了单体形式中两种构象上明显不同的亚群的共存。单液滴单分子 FRET 研究与荧光相关光谱、皮秒时间分辨荧光各向异性和振动拉曼光谱相结合,表明结构展开将分子内相互作用切换成分子间接触,从而允许在凝聚物中形成动态网络。一种与疾病相关的突变引入了增强的结构可塑性,产生更大的链间相互作用,从而可以加速病理性聚集。我们的发现为序列编码的动态控制结构解旋导致生物相分离提供了关键的机制基础。