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首页> 外文期刊>Protein engineering design & selection: PEDS >Analysis and prediction of leucine-rich nuclear export signals
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Analysis and prediction of leucine-rich nuclear export signals

机译:富含亮氨酸的核输出信号的分析和预测

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摘要

We present a thorough analysis of nuclear export signals and a prediction server, which we have made publicly available. The machine learning prediction method is a significant improvement over the generally used consensus patterns. Nuclear export signals (NESs) are extremely important regulators of the subcellular location of proteins. This regulation has an impact on transcription and other nuclear processes, which are fundamental to the viability of the cell. NESs are studied in relation to cancer, the cell cycle, cell differentiation and other important aspects of molecular biology. Our conclusion from this analysis is that the most important properties of NESs are accessibility and flexibility allowing relevant proteins to interact with the signal. Furthermore, we show that not only the known hydrophobic residues are important in defining a nuclear export signals. We employ both neural networks and hidden Markov models in the prediction algorithm and verify the method on the most recently discovered NESs. The NES predictor (NetNES) is made available for general use at http://www.cbs.dtu.dk/.
机译:我们对核出口信号和预测服务器进行了全面分析,并已公开提供。机器学习预测方法是对常用共识模式的重大改进。核输出信号(NESs)是蛋白质亚细胞位置的极其重要的调节剂。这种调节对转录和其他核过程具有影响,而转录和其他核过程对于细胞的生存能力至关重要。研究了与癌症,细胞周期,细胞分化和分子生物学其他重要方面有关的NES。我们从此分析得出的结论是,NES的最重要特性是可访问性和灵活性,允许相关蛋白质与信号相互作用。此外,我们表明,不仅已知的疏水残基在定义核输出信号方面也很重要。我们在预测算法中同时使用了神经网络和隐马尔可夫模型,并在最新发现的NESs上验证了该方法。 NES预测器(NetNES)可从http://www.cbs.dtu.dk/上获得通用。

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