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Recent advances in antibody optimization based on deep learning methods

摘要Antibodies currently comprise the predominant treatment modality for a variety of diseases;therefore,optimizing their properties rapidly and efficiently is an indispensable step in antibody-based drug development.Inspired by the great success of artificial intelligence-based algorithms,especially deep learning-based methods in the field of biology,various computational methods have been introduced into antibody optimization to reduce costs and increase the success rate of lead candidate generation and optimization.Herein,we briefly review recent progress in deep learning-based antibody optimization,focusing on the available datasets and algorithm input data types that are crucial for constructing appropriate deep learning models.Furthermore,we discuss the current challenges and potential solutions for the future development of general-purpose deep learning algorithms in antibody optimization.

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作者 Ruofan JIN [1] Ruhong ZHOU [2] Dong ZHANG [1] 学术成果认领
作者单位 Institute of Quantitative Biology,College of Life Sciences,Zhejiang University,Hangzhou 310058,China [1] Institute of Quantitative Biology,College of Life Sciences,Zhejiang University,Hangzhou 310058,China;Department of Hepatobiliary and Pancreatic Surgery,The First Affiliated Hospital,School of Medicine,Zhejiang University,Hangzhou 310058,China [2]
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DOI 10.1631/jzus.B2400387
发布时间 2025-06-09(万方平台首次上网日期,不代表论文的发表时间)
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浙江大学学报(英文版)(B辑:生物医学和生物技术)

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