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A less‐biased analysis of metalloproteins reveals novel zinc coordination geometries
Authors:Sen Yao  Robert M. Flight  Eric C. Rouchka  Hunter N. B. Moseley
Affiliation:1. School of Interdisciplinary and Graduate Studies, University of Louisville, Louisville, Kentucky;2. Department of Computer Engineering and Computer Science, University of Louisville, Louisville, Kentucky;3. Department of Molecular and Cellular Biochemistry, University of Kentucky, Lexington, Kentucky;4. Markey Cancer Center, University of Kentucky, Lexington, Kentucky;5. Center for Environmental and Systems Biochemistry, University of Kentucky, Lexington, Kentucky
Abstract:Zinc metalloproteins are involved in many biological processes and play crucial biochemical roles across all domains of life. Local structure around the zinc ion, especially the coordination geometry (CG), is dictated by the protein sequence and is often directly related to the function of the protein. Current methodologies in characterizing zinc metalloproteins' CG consider only previously reported CG models based mainly on nonbiological chemical context. Exceptions to these canonical CG models are either misclassified or discarded as “outliers.” Thus, we developed a less‐biased method that directly handles potential exceptions without pre‐assuming any CG model. Our study shows that numerous exceptions could actually be further classified and that new CG models are needed to characterize them. Also, these new CG models are cross‐validated by strong correlation between independent structural and functional annotation distance metrics, which is partially lost if these new CGs models are ignored. Furthermore, these new CG models exhibit functional propensities distinct from the canonical CG models. Proteins 2015; 83:1470–1487. © 2015 The Authors. Proteins: Structure, Function, and Bioinformatics Published by Wiley Periodicals, Inc.
Keywords:compressed angle  3D structure  bidentation  structural bioinformatics  structure–  function relationship  carboxylate shift
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