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Functional annotation of enzyme-encoding genes using deep learning with transformer layers

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Figshare2023-11-15 更新2026-04-28 收录
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Source data and Supplementary datasets for the paper "Functional annotation of enzyme encoding genes using deep learning with transformer layers". The datasets include uniprot dataset, Supplementary Data 1 (Predicted EC numbers for amino acid sequences from Swiss-Prot database using DeepECtransformer), Supplementary Data 2 (Visualization of the latent representations of enzyme sequences in the Swiss-Prot database using TMAP), Supplementary Data 3 (Commonly highlighted motifs for each EC number using DeepEC v2 neural network), Supplementary Data 4 (Sequences for each of strain specific alleles), Supplementary Data 5 (EC number prediction results for the y-ome proteins), Supplementary Data 6 (EC numbers of 128,100,490 amino acid sequences in 70,600 genomes in NCBI), and Supplementary Data 7 (Solubility prediction results for 295 y-ome proteins).

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2023-11-15
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