Mallik Saurav, Kundu Sudip
Department of Biophysics, Molecular Biology and Bioinformatics, University of Calcutta, Kolkata, West Bengal, India.
Center of Excellence in Systems Biology and Biomedical Engineering (TEQIP Phase-II), University of Calcutta, Kolkata, West Bengal, India.
Proteins. 2017 Jul;85(7):1183-1189. doi: 10.1002/prot.25292. Epub 2017 Apr 6.
Is the order in which biomolecular subunits self-assemble into functional macromolecular complexes imprinted in their sequence-space? Here, we demonstrate that the temporal order of macromolecular complex self-assembly can be efficiently captured using the landscape of residue-level coevolutionary constraints. This predictive power of coevolutionary constraints is irrespective of the structural, functional, and phylogenetic classification of the complex and of the stoichiometry and quaternary arrangement of the constituent monomers. Combining this result with a number of structural attributes estimated from the crystal structure data, we find indications that stronger coevolutionary constraints at interfaces formed early in the assembly hierarchy probably promotes coordinated fixation of mutations that leads to high-affinity binding with higher surface area, increased surface complementarity and elevated number of molecular contacts, compared to those that form late in the assembly. Proteins 2017; 85:1183-1189. © 2017 Wiley Periodicals, Inc.
生物分子亚基自组装成功能性大分子复合物的顺序是否印刻在其序列空间中?在这里,我们证明,利用残基水平的共进化约束格局可以有效地捕捉大分子复合物自组装的时间顺序。这种共进化约束的预测能力与复合物的结构、功能和系统发育分类无关,也与组成单体的化学计量和四级排列无关。将这一结果与从晶体结构数据估计的一些结构属性相结合,我们发现有迹象表明,与组装后期形成的界面相比,在组装层次结构早期形成的界面上更强的共进化约束可能促进突变的协同固定,从而导致更高亲和力的结合,具有更大的表面积、更高的表面互补性和更多的分子接触。《蛋白质》2017年;85:1183 - 1189。©2017威利期刊公司。