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An Accurate Prediction Method for Protein Structural Class from Signal Patterns of NMR Spectra in the Absence of Chemical Shift Assignments

机译:在没有化学位移分配的情况下根据NMR光谱信号图谱准确预测蛋白质结构类别的方法

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The structural class information about a protein is important to understand its biological properties. NMR is one of the most powerful tools to obtain structural information of proteins in atomic resolution. However, an analysis of protein three-dimensional structure from NMR spectra usually requires laborious chemical shift assignment. We developed a new method for predicting the protein structural class directly from the NMR spectra without any chemical shift assignment. The results show that our method outperforms the methods using current secondary structure prediction.
机译:有关蛋白质的结构分类信息对于理解其生物学特性很重要。 NMR是获得原子分辨率蛋白质结构信息的最强大工具之一。但是,从NMR光谱分析蛋白质三维结构通常需要费力的化学位移分配。我们开发了一种直接从NMR光谱预测蛋白质结构类别的新方法,而无需进行任何化学位移分配。结果表明,我们的方法优于使用当前二级结构预测的方法。

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