Department of Chemistry and Materials Science, Aalto University, P.O. Box 16100, FI-00076 Aalto, Finland.
Academy of Finland Center of Excellence in Life-Inspired Hybrid Materials (LIBER), Aalto University, P.O. Box 16100, FI-00076 Aalto, Finland.
Biomacromolecules. 2023 Dec 11;24(12):5638-5653. doi: 10.1021/acs.biomac.3c00637. Epub 2023 Nov 29.
Future sustainable materials based on designer biomolecules require control of the solution assembly, but also interfacial interactions. Alcohol treatments of protein materials are an accessible means to this, making understanding of the process at the molecular level of seminal importance. We focus here on the influence of ethanol on spidroins, the main proteins of silk. By large-scale atomistically detailed molecular dynamics (MD) simulations and interconnected experiments, we characterize the protein aggregation, secondary structure changes, molecular level origins of them, and solvation environment changes for the proteins, as induced by ethanol as a solvation additive. The MD and circular dichoroism (CD) findings jointly show that ethanol promotes ordered structure in the protein molecules, leading to an increase of helix content and turns but also increased aggregation, as revealed by dynamic light scattering (DLS) and light microscopy. The structural changes correlate at the molecular level with increased intramolecular hydrogen bonding. The simulations reveal that polar amino acids, such as glutamine and serine, are most influenced by ethanol, whereas glycine residues are most prone to be involved in the ethanol-induced secondary structure changes. Furthermore, ethanol engages in interactions with the hydrophobic alanine-rich regions of the spidroin, significantly decreasing the hydrophobic interactions of the protein with itself and its surroundings. The protein solutes also change the microstructure of water/ethanol mixtures, essentially decreasing the level of larger local clustering. Overall, the work presents a systematic characterization of ethanol effects on a widely used, common protein type, spidroins, and generalizes the findings to other intrinsically disordered proteins by pinpointing the general features of the response. The results can aid in designing effective alcohol treatments for proteins, but also enable design and tuning of protein material properties by a relatively controllable solvation handle, the addition of ethanol.
基于设计生物分子的未来可持续材料需要控制溶液组装,还需要控制界面相互作用。对蛋白质材料进行醇处理是实现这一目标的一种可行方法,因此深入了解该过程在分子水平上具有重要意义。我们在这里关注乙醇对丝蛋白(spidroins)的影响,丝蛋白是蚕丝的主要蛋白质。通过大规模原子细节分子动力学(MD)模拟和相互关联的实验,我们从分子水平上描述了蛋白质聚集、二级结构变化、其分子水平起源以及蛋白质溶剂化环境的变化,这些变化是由乙醇作为溶剂添加剂引起的。MD 和圆二色性(CD)的研究结果共同表明,乙醇促进了蛋白质分子中的有序结构,导致螺旋含量和转角增加,但也如动态光散射(DLS)和光显微镜所揭示的那样,增加了聚集。结构变化在分子水平上与分子内氢键的增加相关。模拟结果表明,极性氨基酸(如谷氨酰胺和丝氨酸)最受乙醇影响,而甘氨酸残基最容易参与乙醇诱导的二级结构变化。此外,乙醇与富含丙氨酸的疏水区相互作用,显著降低了蛋白质与其自身及其周围环境的疏水相互作用。蛋白质溶质还改变了水/乙醇混合物的微观结构,实质上降低了较大局部聚集的程度。总的来说,这项工作系统地描述了乙醇对广泛使用的常见蛋白质类型——丝蛋白的影响,并通过指出响应的一般特征,将研究结果推广到其他天然无序蛋白质。研究结果可以帮助设计有效的蛋白质醇处理方法,也可以通过相对可控的溶剂处理——添加乙醇,来设计和调整蛋白质材料的性能。