Epitope Prediction of Antigen Protein using Attention-Based LSTM Network

Author:

Noumi Toshiaki,Inoue Seiichi,Fujita Haruka,Sadamitsu Kugatsu,Sakaguchi Makoto,Tenma Akiko,Nakagami Hironori

Abstract

AbstractB-cells inducing antigen-specific immune responses in vivo produce large amounts of antigen-specific antibodies by recognizing the subregions (epitope regions) of antigen proteins. They can inhibit their functioning by binding antibodies to antigen proteins. Predicting of epitope regions is beneficial for the design and development of vaccines aimed to induce antigen-specific antibody production. However, prediction accuracy requires improvement. The conventional epitope region prediction methods have focused only on the target sequence in the amino acid sequences of an entire antigen protein and have not thoroughly considered its sequence and features as a whole. In the present paper, we propose a deep learning method based on short-term memory with an attention mechanism to consider the characteristics of a whole antigen protein in addition to the target sequence. The proposed method achieves better accuracy compared with the conventional method in the experimental prediction of epitope regions using the data from the immune epitope database.

Publisher

Cold Spring Harbor Laboratory

Cited by 2 articles. 订阅此论文施引文献 订阅此论文施引文献,注册后可以免费订阅5篇论文的施引文献,订阅后可以查看论文全部施引文献

1. Active Learning for Predicting the Antigen-antibody Response of B Cells;4th International Conference on Biometric Engineering and Applications;2021-05-25

2. Uncertainty Estimation in SARS-CoV-2 B-Cell Epitope Prediction for Vaccine Development;Artificial Intelligence in Medicine;2021

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