Multiscale Research Institute of Complex Systems, Fudan University, Shanghai 200433, China.
Zhangjiang Fudan International Innovation Center, Fudan University, Shanghai 201210, China.
J Chem Theory Comput. 2023 Mar 14;19(5):1629-1640. doi: 10.1021/acs.jctc.2c00847. Epub 2023 Feb 22.
Predicting the effect of protein mutation is crucial in many applications such as protein design, protein evolution, and genetic disease analysis. Structurally, mutation is basically the replacement of the side chain of a particular residue. Therefore, accurate side-chain modeling is useful in studying the effect of mutation. Here, we propose a computational method, namely, OPUS-Mut, which significantly outperforms other backbone-dependent side-chain modeling methods including our previous method OPUS-Rota4. We evaluate OPUS-Mut by four case studies on Myoglobin, p53, HIV-1 protease, and T4 lysozyme. The results show that the predicted structures of side chains of different mutants are consistent well with their experimentally determined results. In addition, when the residues with significant structural shifts upon the mutation are considered, it is found that the extent of the predicted structural shift of these affected residues can be correlated reasonably well with the functional changes of the mutant measured by experiments. OPUS-Mut can also help one to identify the harmful and benign mutations and thus may guide the construction of a protein with relatively low sequence homology but with a similar structure.
预测蛋白质突变的效果在蛋白质设计、蛋白质进化和遗传疾病分析等许多应用中至关重要。从结构上看,突变基本上是特定残基侧链的替换。因此,准确的侧链建模有助于研究突变的效果。在这里,我们提出了一种计算方法,即 OPUS-Mut,它明显优于其他依赖于骨架的侧链建模方法,包括我们之前的方法 OPUS-Rota4。我们通过对肌红蛋白、p53、HIV-1 蛋白酶和 T4 溶菌酶的四个案例研究来评估 OPUS-Mut。结果表明,不同突变体侧链的预测结构与实验测定的结果吻合较好。此外,当考虑到突变后结构明显移位的残基时,发现预测的这些受影响残基的结构移位程度与实验测量的突变体的功能变化之间可以合理地相关。OPUS-Mut 还可以帮助识别有害和良性突变,从而可能指导构建具有相对较低序列同源性但具有相似结构的蛋白质。