Chapter 1. Advanced electron paramagnetic resonance studies of the oxygen-evolving complex / Troy A. Stich and R. David Britt -- chapter 2. Radical SAM enzymes and their roles in complex cluster assembly / Jeremiah N. Betz, Eric M. Shepard, and Joan B. Broderick -- chapter 3. Density functional theory-based treatment of metal-binding sites in metalloenzymes : challenges and opportunities / Mercedes Alfonso-Prieto and Michael L. Klein -- chapter 4. Catalysis of methane oxidation by the tricopper cluster in the particulate methane monooxygenase and biomimetic tricopper complexes / Suman Maji, Steve S.-F. Yu, and Sunney I. Chan -- chapter 5. Oxygen-evolving complex of photosystem II : insights from computation and synthetic models / Jacob S. Kanady, Jose Mendoza-Cortes, William A. Goddard III, and Theodor Agapie -- chapter 6. Electrifying metalloenzymes / Fraser A. Armstrong -- chapter 7. Iron uptake mechanism in ferritin from Helicobacter pylori / Sella Kim and Kyung Hyun Kim -- chapter 8. Multiple-step electron flow in proteins / Jeffrey J. Warren, Maraia E. Ener, Jay R. Winkler, and Harry B. Gray -- chapter 9. Modeling of ligand binding to metalloproteins / Art E. Cho.
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SUMMARY OR ABSTRACT
Text of Note
Numerous essential biological functions involve metalloproteins; therefore, understanding metalloproteins and how to manipulate them is significant in the biological and medical fields. An examination of current research, Metalloproteins: Theory, Calculations, and Experiments explores the interplay between theory and experiment, detailing the role of theoretical modeling in the field and explaining how it aids experiments. The text also presents the current state of computational protein modeling, enabling researchers to adopt computation as an integral component of their studies.This book add.