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HybridSucc:A Hybrid-learning Architecture for General and Species-specific Succinylation Site Prediction

摘要As an important protein acylation modification, lysine succinylation (Ksucc) is involved in diverse biological processes, and participates in human tumorigenesis. Here, we collected 26,243 non-redundant known Ksucc sites from 13 species as the benchmark data set, combined 10 types of informative features, and implemented a hybrid-learning architecture by integrating deep-learning and conventional machine-learning algorithms into a single framework. We constructed a new tool named HybridSucc, which achieved area under curve (AUC) values of 0.885 and 0.952 for general and human-specific prediction of Ksucc sites, respectively. In comparison, the accuracy of Hybrid-Succ was 17.84%–50.62%better than that of other existing tools. Using HybridSucc, we conducted a proteome-wide prediction and prioritized 370 cancer mutations that change Ksucc states of 218 important proteins, including PKM2, SHMT2, and IDH2. We not only developed a high-profile tool for predicting Ksucc sites, but also generated useful candidates for further experimental con-sideration. The online service of HybridSucc can be freely accessed for academic research at http://hybridsucc.biocuckoo.org/.

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作者 Wanshan Ning [1] Haodong Xu [1] Peiran Jiang [1] Han Cheng [2] Wankun Deng [1] Yaping Guo [1] Yu Xue [3] 学术成果认领
作者单位 Department of Bioinformatics and Systems Biology, Key Laboratory of Molecular Biophysics of the Ministry of Education, Hubei Bioinformatics and Molecular Imaging Key Laboratory, College of Life Science and Technology, Huazhong University of Science and Technology, Wuhan 430074, China [1] School of Life Sciences, Zhengzhou University, Zhengzhou 450001, China [2] Department of Bioinformatics and Systems Biology, Key Laboratory of Molecular Biophysics of the Ministry of Education, Hubei Bioinformatics and Molecular Imaging Key Laboratory, College of Life Science and Technology, Huazhong University of Science and Technology, Wuhan 430074, China;Huazhong University of Science and Technology Ezhou Industrial Technology Research Institute, Ezhou 436044, China [3]
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发布时间 2020-11-04(万方平台首次上网日期,不代表论文的发表时间)
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