核糖核酸
核酶
核糖核酸酶P
生物发生
相变
堆积
化学
核糖核蛋白
化学物理
生物物理学
碱基对
物理
生物
生物化学
DNA
热力学
有机化学
基因
作者
Gable M. Wadsworth,Walter J. Zahurancik,Xiangze Zeng,Paul Pullara,Lien B. Lai,Vaishnavi Sidharthan,Rohit V. Pappu,Venkat Gopalan,Priya R. Banerjee
标识
DOI:10.1101/2022.10.17.512593
摘要
Abstract Co-phase separation of RNAs and RNA-binding proteins is thought to drive the biogenesis of ribonucleoprotein granules. RNAs can also undergo phase transitions in the absence of proteins. However, the physicochemical driving forces of protein-free, RNA-driven phase transitions remain unclear. Here, we report that RNAs of various types undergo phase transitions with system-specific lower critical solution temperatures (LCSTs). This entropically-driven phase behavior requires Mg 2+ ions and is an intrinsic feature of the phosphate backbone that is modulated by RNA bases. RNA-only condensates can additionally undergo enthalpically favorable percolation transitions within dense phases. This is enabled by a combination of Mg 2+ -dependent bridging interactions among phosphate groups and RNA base-stacking / base-pairing. Phase separation coupled to percolation can cause dynamical arrest of RNAs within condensates and can suppress the catalytic activity of an RNase P ribozyme. Our work highlights the need to incorporate RNA-driven phase transitions into models for RNP granule biogenesis.
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