Ptak-Kaczor Magdalena, Banach Mateusz, Konieczny Leszek, Roterman Irena
1Department of Bioinformatics and Telemedicine, Jagiellonian University - Medical College, Kraków, Poland; 2Faculty of Physics, Astronomy and Applied Computer Science, Jagiellonian University, Kraków, Poland.
Department of Bioinformatics and Telemedicine, Jagiellonian University - Medical College, Kraków, Poland.
Acta Biochim Pol. 2019 Nov 20;66(4):451-458. doi: 10.18388/abp.2019_2865.
The fuzzy oil drop model suggests that the tertiary conformation of a protein - particularly a globular one - can be likened to a spherical micelle. During the folding process, hydrophilic residues are exposed on the surface, while hydrophobic residues are retained inside the protein. The resulting hydrophobicity distribution can be mathematically modeled as a 3D Gaussian. The fuzzy oil drop model is strikingly effective in explaining the properties of type II antifreeze proteins and fast-folding proteins, as well as a vast majority of autonomous protein domains. This work aims to determine whether similar mechanisms apply to other types of nonbonding interactions. Our analysis indicates that electrostatic and van der Waals forces do not conform to the Gaussian pattern. The study involves a reference protein (titin) which shows a high agreement between the observed distribution of hydrophobicity and the theoretical (Gaussian) distribution, a selection of amyloid structures derived from the Protein Data Bank, as well as transthyretin - a protein known for its susceptibility to amyloid transformation.
模糊油滴模型表明,蛋白质的三级结构——尤其是球状蛋白质的三级结构——可以比作球形胶束。在折叠过程中,亲水残基暴露在表面,而疏水残基则保留在蛋白质内部。由此产生的疏水性分布可以用三维高斯函数进行数学建模。模糊油滴模型在解释II型抗冻蛋白和快速折叠蛋白以及绝大多数自主蛋白质结构域的特性方面非常有效。这项工作旨在确定类似的机制是否适用于其他类型的非键相互作用。我们的分析表明,静电和范德华力不符合高斯模式。该研究涉及一种参考蛋白(肌联蛋白),其疏水性的观察分布与理论(高斯)分布高度一致,还涉及从蛋白质数据库中选取的一些淀粉样蛋白结构,以及转甲状腺素蛋白——一种以易发生淀粉样变而闻名的蛋白质。