Haskew Mathew John, Deacon Benjamin, Yong Chin Weng, Hardy John George, Murphy Samuel Thomas
Department of Engineering, Lancaster University, Bailrigg, Lancaster LA1 4YW, U.K.
Department of Chemistry, Lancaster University, Bailrigg, Lancaster LA1 4YB, U.K.
ACS Omega. 2021 Dec 15;6(51):35494-35504. doi: 10.1021/acsomega.1c05019. eCollection 2021 Dec 28.
silk fibroin (SF) is a biopolymer that can be processed into materials with attractive properties (e.g., biocompatibility and degradability) for use in a multitude of technical and medical applications (including textiles, sutures, drug delivery devices, tissue scaffolds, etc.). Utilizing the information from experimental and computational SF studies, a simplified SF model has been produced (alanine-glycine [Ala-Gly] crystal structure), enabling the application of both molecular dynamic and density functional theory techniques to offer a unique insight into SF-based materials. The secondary structure of the computational model has been evaluated using Ramachandran plots under different environments (e.g., different temperatures and ensembles). In addition, the mean square displacement of water incorporated into the SF model was investigated: the diffusion coefficients, activation energies, most and least favorable positions of water, and trajectory of water diffusion through the SF model are obtained. With further computational study and in combination with experimental data, the behavior/degradation of SF (and similar biomaterials) can be elucidated. Consequently, greater control of the aforementioned technologies may be achieved and positively affect their potential applications.
丝素蛋白(SF)是一种生物聚合物,可被加工成具有吸引人的特性(如生物相容性和可降解性)的材料,用于多种技术和医学应用(包括纺织品、缝线、药物递送装置、组织支架等)。利用来自实验和计算性丝素蛋白研究的信息,已构建了一个简化的丝素蛋白模型(丙氨酸 - 甘氨酸 [Ala - Gly] 晶体结构),这使得分子动力学和密度泛函理论技术的应用成为可能,从而为基于丝素蛋白的材料提供独特的见解。已在不同环境(如不同温度和系综)下使用拉氏图对计算模型的二级结构进行了评估。此外,还研究了纳入丝素蛋白模型中的水的均方位移:获得了扩散系数、活化能、水的最有利和最不利位置以及水通过丝素蛋白模型的扩散轨迹。通过进一步的计算研究并结合实验数据,可以阐明丝素蛋白(以及类似生物材料)的行为/降解情况。因此,可以更好地控制上述技术,并对其潜在应用产生积极影响。