Harnessing the active site triad: merging hemilability, proton responsivity, and ligand-based redox-activity
Douglas F Baumgardner1, Wyatt E Parks1, John D Gilbertson1
1Department of Chemistry, Western Washington University, Bellingham, Washington 98225, USA. john.gilbertson@wwu.edu.
Abstract:
Metalloenzymes catalyze many important reactions by managing the proton and electron flux at the enzyme active site. The motifs utilized to facilitate these transformations include hemilabile, redox-active, and so called proton responsive sites. Given the importance of incorporating and understanding these motifs in the area of coordination chemistry and catalysis, we highlight recent milestones in the field. Work incorporating the triad of hemilability, redox-activity, and proton responsivity into single ligand scaffolds will be described.
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