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Upgrading and Validation of the AMBER Force Field for Histidine and Cysteine Zinc(II)-Binding Residues in Sites with Four Protein Ligands., , , , and . J. Chem. Inf. Model., 59 (9): 3803-3816 (2019)Hunting down zinc(II)-binding sites in proteins with distance matrices., , , and . Bioinform., (October 2023)A hint to search for metalloproteins in gene banks., , and . Bioinform., 20 (9): 1373-1380 (2004)MACiE: exploring the diversity of biochemical reactions., , , , , , and . Nucleic Acids Res., 40 (Database-Issue): 783-789 (2012)A Simple Protocol for the Comparative Analysis of the Structure and Occurrence of Biochemical Pathways Across Superkingdoms., , , , and . Journal of Chemical Information and Modeling, 51 (3): 730-738 (2011)PDBe-KB: collaboratively defining the biological context of structural data., , , , , , , , , and 61 other author(s). Nucleic Acids Res., 50 (D1): 534-542 (2022)Improving Prediction of Zinc Binding Sites by Modeling the Linkage Between Residues Close in Sequence., , , , and . RECOMB, volume 3909 of Lecture Notes in Computer Science, page 309-320. Springer, (2006)Metal-MACiE: a database of metals involved in biological catalysis., , , , and . Bioinform., 25 (16): 2088-2089 (2009)Learning to Identify Physiological and Adventitious Metal-Binding Sites in the Three-Dimensional Structures of Proteins by Following the Hints of a Deep Neural Network., , , , and . J. Chem. Inf. Model., 62 (12): 2951-2960 (2022)MetalS2: A Tool for the Structural Alignment of Minimal Functional Sites in Metal-Binding Proteins and Nucleic Acids., , , and . Journal of Chemical Information and Modeling, 53 (11): 3064-3075 (2013)