Literature DB >> 28111938

Switching between Inner- and Outer-Sphere PCET Mechanisms of Small-Molecule Activation: Superoxide Dismutation and Oxygen/Superoxide Reduction Reactivity Deriving from the Same Manganese Complex.

Isabell Kenkel1, Alicja Franke1, Maximilian Dürr1, Achim Zahl1, Carlos Dücker-Benfer1, Jens Langer1, Milos R Filipović1, Meng Yu2, Ralph Puchta1, Stephanie R Fiedler3, Matthew P Shores3, Christian R Goldsmith2, Ivana Ivanović-Burmazović1.   

Abstract

Readily exchangeable water molecules are commonly found in the active sites of oxidoreductases, yet the overwhelming majority of studies on small-molecule mimics of these enzymes entirely ignores the contribution of water to the reactivity. Studies of how these enzymes can continue to function in spite of the presence of highly oxidizing species are likewise limited. The mononuclear MnII complex with the potentially hexadentate ligand N-(2-hydroxy-5-methylbenzyl)-N,N',N'-tris(2-pyridinylmethyl)-1,2-ethanediamine (LOH) was previously found to act as both a H2O2-responsive MRI contrast agent and a mimic of superoxide dismutase (SOD). Here, we studied this complex in aqueous solutions at different pH values in order to determine its (i) acid-base equilibria, (ii) coordination equilibria, (iii) substitution lability and operative mechanisms for water exchange, (iv) redox behavior and ability to participate in proton-coupled electron transfer (PCET) reactions, (v) SOD activity and reductive activity toward both oxygen and superoxide, and (vi) mechanism for its transformation into the binuclear MnII complex with (H)OL-LOH and its hydroxylated derivatives. The conclusions drawn from potentiometric titrations, low-temperature mass spectrometry, temperature- and pressure-dependent 17O NMR spectroscopy, electrochemistry, stopped-flow kinetic analyses, and EPR measurements were supported by the structural characterization and quantum chemical analysis of proposed intermediate species. These comprehensive studies enabled us to determine how transiently bound water molecules impact the rate and mechanism of SOD catalysis. Metal-bound water molecules facilitate the PCET necessary for outer-sphere SOD activity. The absence of the water ligand, conversely, enables the inner-sphere reduction of both superoxide and dioxygen. The LOH complex maintains its SOD activity in the presence of •OH and MnIV-oxo species by channeling these oxidants toward the synthesis of a functionally equivalent binuclear MnII species.

Entities:  

Year:  2017        PMID: 28111938     DOI: 10.1021/jacs.6b08394

Source DB:  PubMed          Journal:  J Am Chem Soc        ISSN: 0002-7863            Impact factor:   15.419


  2 in total

1.  Structural, Spectroscopic, Electrochemical, and Magnetic Properties for Manganese(II) Triazamacrocyclic Complexes.

Authors:  Atanu Banerjee; Azam S Tolla; Slavica Stjepanovic; Michael D Sevilla; Justin L Goodsell; Alexander Angerhofer; William W Brennessel; Reza Loloee; Ferman A Chavez
Journal:  Inorganica Chim Acta       Date:  2018-11-13       Impact factor: 2.545

2.  Transferrin-Enabled Blood-Brain Barrier Crossing Manganese-Based Nanozyme for Rebalancing the Reactive Oxygen Species Level in Ischemic Stroke.

Authors:  Qianqian Zhao; Wenxian Du; Lingling Zhou; Jianrong Wu; Xiaoxing Zhang; Xiaoer Wei; Sijia Wang; Yu Huang; Yuehua Li
Journal:  Pharmaceutics       Date:  2022-05-25       Impact factor: 6.525

  2 in total

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