Prediction of Cholecystokinin-Secretory Peptides Using Bidirectional Long Short-term Memory Model Based on Transfer Learning and Hierarchical Attention Network Mechanism

被引:0
作者
Liu, Jing [1 ]
Chen, Pu [1 ]
Song, Hongdong [2 ]
Zhang, Pengxiao [3 ]
Wang, Man [3 ]
Sun, Zhenliang [3 ]
Guan, Xiao [2 ]
机构
[1] Shanghai Maritime Univ, Coll Informat Engn, Shanghai 201306, Peoples R China
[2] Univ Shanghai Sci & Technol, Sch Hlth Sci & Engn, Shanghai 200093, Peoples R China
[3] Southern Med Univ, Affiliated Fengxian Hosp, Joint Ctr Translat Med, Shanghai 201499, Peoples R China
基金
中国国家自然科学基金;
关键词
cholecystokinin; CCK-secretory peptides; transfer learning; SMILES enumeration; hierarchical attention network; BiLSTM; CCK; ADMETLAB; PLATFORM; GROWTH;
D O I
10.3390/biom13091372
中图分类号
Q5 [生物化学]; Q7 [分子生物学];
学科分类号
071010 ; 081704 ;
摘要
Cholecystokinin (CCK) can make the human body feel full and has neurotrophic and anti-inflammatory effects. It is beneficial in treating obesity, Parkinson's disease, pancreatic cancer, and cholangiocarcinoma. Traditional biological experiments are costly and time-consuming when it comes to finding and identifying novel CCK-secretory peptides, and there is an urgent need to develop a new computational method to predict new CCK-secretory peptides. This study combines the transfer learning method with the SMILES enumeration data augmentation strategy to solve the data scarcity problem. It establishes a fusion model of the hierarchical attention network (HAN) and bidirectional long short-term memory (BiLSTM), which fully extracts peptide chain features to predict CCK-secretory peptides efficiently. The average accuracy of the proposed method in this study is 95.99%, with an AUC of 98.07%. The experimental results show that the proposed method is significantly superior to other comparative methods in accuracy and robustness. Therefore, this method is expected to be applied to the preliminary screening of CCK-secretory peptides.
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页数:14
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