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首页> 外文期刊>Journal of Bioinformatics and Computational Biology >AN ITERATIVE ALGORITHM TO QUANTIFY FACTORS INFLUENCING PEPTIDE FRAGMENTATION DURING TANDEM MASS SPECTROMETRY
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AN ITERATIVE ALGORITHM TO QUANTIFY FACTORS INFLUENCING PEPTIDE FRAGMENTATION DURING TANDEM MASS SPECTROMETRY

机译:串联质谱定量影响肽裂解的因子的迭代算法

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摘要

In protein identification by tandem mass spectrometry, it is critical to accurately predict the theoretical spectrum for a peptide sequence. To date, the widely-used database searching methods adopted simple statistical models for predicting. For some peptide, these models usually yield a theoretical spectrum with a significant deviation from the experimental one. In this paper, in order to derive an improved predicting model, we utilized a non-linear programming model to quantify the factors impacting peptide fragmentation. Then, an iterative algorithm was proposed to solve this optimization problem. Upon a training set of 1803 spectra, the experimental result showed a good agreement with some known principles about peptide fragmentation, such as the tendency to cleave at the middle of peptide, and Pro's preference of the N-terminal cleavage. Moreover, upon a testing set of 941 spectra, comparison of the predicted spectra against the experimental ones showed that this method can generate reasonable predictions. The results in this paper can offer help to both database searching and de novo methods.
机译:在通过串联质谱鉴定蛋白质时,准确预测肽序列的理论光谱至关重要。迄今为止,广泛使用的数据库搜索方法采用简单的统计模型进行预测。对于某些肽,这些模型通常会产生理论光谱,与实验光谱有显着偏差。在本文中,为了获得改进的预测模型,我们利用非线性编程模型来量化影响肽片段化的因素。然后,提出了一种迭代算法来解决该优化问题。在一组1803个光谱的训练中,实验结果与某些有关肽片段化的已知原理(例如,在肽中间进行切割的倾向以及Pro对N端切割的偏好)表现出良好的一致性。此外,在941个光谱的测试集上,将预测光谱与实验光谱进行比较表明,该方法可以生成合理的预测。本文的结果可以为数据库搜索和从头开始方法提供帮助。

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