Frontier Institute for Biomolecular Engineering Research (FIBER), Konan University, 7-1-20 Minatojima-Minamimachi, Chuo-ku, Kobe 650-0047, Japan.
Graduate School of Frontiers of Innovative Research in Science and Technology (FIRST), Konan University, 7-1-20 Minatojima-Minamimachi, Chuo-ku, Kobe 650-0047, Japan.
Nucleic Acids Res. 2023 May 22;51(9):4101-4111. doi: 10.1093/nar/gkad020.
RNA performs various spatiotemporal functions in living cells. As the solution environments significantly affect the stability of RNA duplexes, a stability prediction of the RNA duplexes in diverse crowded conditions is required to understand and modulate gene expression in heterogeneously crowded intracellular conditions. Herein, we determined the nearest-neighbor (NN) parameters for RNA duplex formation when subjected to crowding conditions with an ionic concentration relevant to that found in cells. Determination of the individual contributions of excluded volume effect and water activity to each of the NN parameters in crowded environments enabled prediction of the thermodynamic parameters and their melting temperatures for plenty of tested RNA duplex formation in vitro and in cell with significant accuracy. The parameters reported herein will help predicting RNA duplex stability in different crowded environments, which will lead to an improved understanding of the stability-function relationship for RNAs in various cellular organelles with different molecular environments.
RNA 在活细胞中发挥着各种时空功能。由于溶液环境显著影响 RNA 双链体的稳定性,因此需要预测 RNA 双链体在各种拥挤条件下的稳定性,以了解和调节异质拥挤细胞内条件下的基因表达。在此,我们确定了当离子浓度与细胞内的离子浓度相同时,RNA 双链体在拥挤条件下形成的最近邻 (NN) 参数。在拥挤环境中,通过排除体积效应和水活度对每个 NN 参数的单独贡献的确定,能够以显著的准确度预测大量体外和细胞内测试的 RNA 双链体形成的热力学参数及其熔点。本文报道的参数将有助于预测不同拥挤环境中 RNA 双链体的稳定性,这将有助于更好地理解不同分子环境的各种细胞细胞器中 RNA 的稳定性-功能关系。