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Structure-based mutant stability predictions on proteins of unknown structure

机译:结构未知的蛋白质基于结构的突变体稳定性预测

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The ability to rapidly and accurately predict the effects of mutations on the physicochemical properties of proteins holds tremendous importance in the rational design of modified proteins for various types of industrial, environmental or pharmaceutical applications, as well as in elucidating the genetic background of complex diseases. In many cases, the absence of an experimentally resolved structure represents a major obstacle, since most currently available predictive software crucially depend on it. We investigate here the relevance of combining coarse-grained structure-based stability predictions with a simple comparative modeling procedure. Strikingly, our results show that the use of average to high quality structural models leads to virtually no loss in predictive power compared to the use of experimental structures. Even in the case of low quality models, the decrease in performance is quite limited and this combined approach remains markedly superior to other methods based exclusively on the analysis of sequence features
机译:快速准确地预测突变对蛋白质理化性质的影响的能力在针对各种类型的工业,环境或制药应用的修饰蛋白质的合理设计以及阐明复杂疾病的遗传背景方面具有极其重要的意义。在许多情况下,缺少实验解析的结构是一个主要障碍,因为当前大多数可用的预测软件都严重依赖于此。我们在这里研究将基于粗粒度结构的稳定性预测与简单的比较建模程序相结合的相关性。令人惊讶的是,我们的结果表明,与使用实验结构相比,使用平均到高质量的结构模型几乎不会导致预测能力的损失。即使在低质量模型的情况下,性能的下降也相当有限,并且这种组合方法仍然明显优于其他方法(仅基于序列特征分析)

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