Raghunathan Shampa, Jaganade Tanashree, Priyakumar U Deva
Center for Computational Natural Sciences and Bioinformatics, International Institute of Information Technology, Hyderabad, 500032, India.
Biophys Rev. 2020 Feb;12(1):65-84. doi: 10.1007/s12551-020-00620-9. Epub 2020 Feb 17.
Noncovalent interactions are key determinants in both chemical and biological processes. Among such processes, the hydrophobic interactions play an eminent role in folding of proteins, nucleic acids, formation of membranes, protein-ligand recognition, etc.. Though this interaction is mediated through the aqueous solvent, the stability of the above biomolecules can be highly sensitive to any small external perturbations, such as temperature, pressure, pH, or even cosolvent additives, like, urea-a highly soluble small organic molecule utilized by various living organisms to regulate osmotic pressure. A plethora of detailed studies exist covering both experimental and theoretical regimes, to understand how urea modulates the stability of biological macromolecules. While experimentalists have been primarily focusing on the thermodynamic and kinetic aspects, theoretical modeling predominantly involves mechanistic information at the molecular level, calculating atomistic details applying the force field approach to the high level electronic details using the quantum mechanical methods. The review focuses mainly on examples with biological relevance, such as (1) urea-assisted protein unfolding, (2) urea-assisted RNA unfolding, (3) urea lesion interaction within damaged DNA, (4) urea conduction through membrane proteins, and (5) protein-ligand interactions those explicitly address the vitality of hydrophobic interactions involving exclusively the urea-aromatic moiety.
非共价相互作用是化学和生物过程中的关键决定因素。在这些过程中,疏水相互作用在蛋白质折叠、核酸折叠、膜的形成、蛋白质-配体识别等方面起着重要作用。尽管这种相互作用是通过水性溶剂介导的,但上述生物分子的稳定性可能对任何微小的外部扰动高度敏感,如温度、压力、pH值,甚至是共溶剂添加剂,如尿素——一种被各种生物体用于调节渗透压的高度可溶的小分子有机化合物。为了理解尿素如何调节生物大分子的稳定性,已经存在大量涵盖实验和理论领域的详细研究。虽然实验人员主要关注热力学和动力学方面,但理论建模主要涉及分子水平的机理信息,从应用力场方法计算原子细节到使用量子力学方法研究高级电子细节。本综述主要关注具有生物学相关性的例子,例如:(1)尿素辅助的蛋白质去折叠;(2)尿素辅助的RNA去折叠;(3)受损DNA内的尿素损伤相互作用;(4)尿素通过膜蛋白的传导;以及(5)蛋白质-配体相互作用,这些例子明确阐述了仅涉及尿素-芳香部分的疏水相互作用的重要性。