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基于AVC-SVM模型预测离子通道靶向芋螺毒素的类型

Predicting the Types of Ion Channel-Targeted Conotoxins Based on AVC-SVM Model.

作者信息

Xianfang Wang, Junmei Wang, Xiaolei Wang, Yue Zhang

机构信息

School of Computer and Information Engineering, Henan Normal University, Xinxiang 453007, China.

出版信息

Biomed Res Int. 2017;2017:2929807. doi: 10.1155/2017/2929807. Epub 2017 Apr 9.

Abstract

The conotoxin proteins are disulfide-rich small peptides. Predicting the types of ion channel-targeted conotoxins has great value in the treatment of chronic diseases, epilepsy, and cardiovascular diseases. To solve the problem of information redundancy existing when using current methods, a new model is presented to predict the types of ion channel-targeted conotoxins based on AVC (Analysis of Variance and Correlation) and SVM (Support Vector Machine). First, the value is used to measure the significance level of the feature for the result, and the attribute with smaller value is filtered by rough selection. Secondly, redundancy degree is calculated by Pearson Correlation Coefficient. And the threshold is set to filter attributes with weak independence to get the result of the refinement. Finally, SVM is used to predict the types of ion channel-targeted conotoxins. The experimental results show the proposed AVC-SVM model reaches an overall accuracy of 91.98%, an average accuracy of 92.17%, and the total number of parameters of 68. The proposed model provides highly useful information for further experimental research. The prediction model will be accessed free of charge at our web server.

摘要

芋螺毒素蛋白是富含二硫键的小肽。预测离子通道靶向芋螺毒素的类型在治疗慢性疾病、癫痫和心血管疾病方面具有重要价值。为了解决使用当前方法时存在的信息冗余问题,提出了一种基于方差分析和相关性分析(AVC)以及支持向量机(SVM)的新模型来预测离子通道靶向芋螺毒素的类型。首先,使用 值来衡量特征对结果的显著程度,并通过粗略筛选过滤 值较小的属性。其次,通过皮尔逊相关系数计算冗余度。并设置阈值以过滤独立性较弱的属性,从而得到细化结果。最后,使用支持向量机预测离子通道靶向芋螺毒素的类型。实验结果表明,所提出的AVC-SVM模型的总体准确率达到91.98%,平均准确率为92.17%,参数总数为68个。所提出的模型为进一步的实验研究提供了非常有用的信息。该预测模型将在我们的网络服务器上免费提供访问。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/4eaa/5401747/9aa0e094ba09/BMRI2017-2929807.001.jpg

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