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Protein sequence design with deep generative models
2021
Current Opinion in Chemical Biology
Protein engineering seeks to identify protein sequences with optimized properties. When guided by machine learning, protein sequence generation methods can draw on prior knowledge and experimental efforts to improve this process. In this review, we highlight recent applications of machine learning to generate protein sequences, focusing on the emerging field of deep generative methods.
doi:10.1016/j.cbpa.2021.04.004
pmid:34051682
fatcat:yhcogotoufh3hlz3lxilnxgaum