Literature DB >> 18928252

Catalase-peroxidase activity of iron(III)-TAML activators of hydrogen peroxide.

Anindya Ghosh1, Douglas A Mitchell, Arani Chanda, Alexander D Ryabov, Delia Laura Popescu, Erin C Upham, Gregory J Collins, Terrence J Collins.   

Abstract

Exceptionally high peroxidase-like and catalase-like activities of iron(III)-TAML activators of H 2O 2 ( 1: Tetra-Amidato-Macrocyclic-Ligand Fe (III) complexes [ F e{1,2-X 2C 6H 2-4,5-( NCOCMe 2 NCO) 2CR 2}(OH 2)] (-)) are reported from pH 6-12.4 and 25-45 degrees C. Oxidation of the cyclometalated 2-phenylpyridine organometallic complex, [Ru (II)( o-C 6H 4py)(phen) 2]PF 6 ( 2) or "ruthenium dye", occurs via the equation [ Ru II ] + 1/2 H 2 O 2 + H +-->(Fe III - TAML) [ Ru III ] + H 2 O, following a simple rate law rate = k obs (per)[ 1][H 2O 2], that is, the rate is independent of the concentration of 2 at all pHs and temperatures studied. The kinetics of the catalase-like activity (H 2 O 2 -->(Fe III - TAML) H 2 O + 1/2 O 2) obeys a similar rate law: rate = k obs (cat)[ 1][H 2O 2]). The rate constants, k obs (per) and k obs (cat), are strongly and similarly pH dependent, with a maximum around pH 10. Both bell-shaped pH profiles are quantitatively accounted for in terms of a common mechanism based on the known speciation of 1 and H 2O 2 in this pH range. Complexes 1 exist as axial diaqua species [FeL(H 2O) 2] (-) ( 1 aqua) which are deprotonated to afford [FeL(OH)(H 2O)] (2-) ( 1 OH) at pH 9-10. The pathways 1 aqua + H 2O 2 ( k 1), 1 OH + H 2O 2 ( k 2), and 1 OH + HO 2 (-) ( k 4) afford one or more oxidized Fe-TAML species that further rapidly oxidize the dye (peroxidase-like activity) or a second H 2O 2 molecule (catalase-like activity). This mechanism is supported by the observations that (i) the catalase-like activity of 1 is controllably retarded by addition of reducing agents into solution and (ii) second order kinetics in H 2O 2 has been observed when the rate of O 2 evolution was monitored in the presence of added reducing agents. The performances of the 1 complexes in catalyzing H 2O 2 oxidations are shown to compare favorably with the peroxidases further establishing Fe (III)-TAML activators as miniaturized enzyme replicas with the potential to greatly expand the technological utility of hydrogen peroxide.

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Year:  2008        PMID: 18928252     DOI: 10.1021/ja8043689

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


  9 in total

1.  Designing green oxidation catalysts for purifying environmental waters.

Authors:  W Chadwick Ellis; Camly T Tran; Riddhi Roy; Marte Rusten; Andreas Fischer; Alexander D Ryabov; Bruce Blumberg; Terrence J Collins
Journal:  J Am Chem Soc       Date:  2010-07-21       Impact factor: 15.419

2.  Activation of Dioxygen by a TAML Activator in Reverse Micelles: Characterization of an Fe(III)Fe(IV) Dimer and Associated Catalytic Chemistry.

Authors:  Liang L Tang; William A Gunderson; Andrew C Weitz; Michael P Hendrich; Alexander D Ryabov; Terrence J Collins
Journal:  J Am Chem Soc       Date:  2015-07-23       Impact factor: 15.419

3.  Enhanced Catalytic Activity of a New Nanobiocatalytic System Formed by the Adsorption of Cytochrome c on Pluronic Triblock Copolymer Stabilized MoS2 Nanosheets.

Authors:  Anu Maria Chittilappilly Devassy; Adithya Kamalakshan; Nidhi Anilkumar Jamuna; Roselin Ansilda; Sarthak Mandal
Journal:  ACS Omega       Date:  2022-05-03

4.  A "Beheaded" TAML Activator: A Compromised Catalyst that Emphasizes the Linearity between Catalytic Activity and pKa.

Authors:  Matthew R Mills; Andrew C Weitz; David Z Zhang; Michael P Hendrich; Alexander D Ryabov; Terrence J Collins
Journal:  Inorg Chem       Date:  2016-11-11       Impact factor: 5.165

5.  Reversible binding of nitric oxide to an Fe(III) complex of a tetra-amido macrocycle.

Authors:  Michael D Pluth; Stephen J Lippard
Journal:  Chem Commun (Camb)       Date:  2012-12-21       Impact factor: 6.222

6.  Removal of ecotoxicity of 17α-ethinylestradiol using TAML/peroxide water treatment.

Authors:  Matthew R Mills; Karla Arias-Salazar; Alice Baynes; Longzhu Q Shen; John Churchley; Nicola Beresford; Chakicherla Gayathri; Roberto R Gil; Rakesh Kanda; Susan Jobling; Terrence J Collins
Journal:  Sci Rep       Date:  2015-06-12       Impact factor: 4.379

7.  H2O2 Oxidation by FeIII-OOH Intermediates and Its Effect on Catalytic Efficiency.

Authors:  Juan Chen; Apparao Draksharapu; Davide Angelone; Duenpen Unjaroen; Sandeep K Padamati; Ronald Hage; Marcel Swart; Carole Duboc; Wesley R Browne
Journal:  ACS Catal       Date:  2018-09-06       Impact factor: 13.084

8.  Metabisulfite as an Unconventional Reagent for Green Oxidation of Emerging Contaminants Using an Iron-Based Catalyst.

Authors:  Giulio Farinelli; Marco Minella; Fabrizio Sordello; Davide Vione; Alberto Tiraferri
Journal:  ACS Omega       Date:  2019-11-25

9.  Electrochemical C-H oxygenation and alcohol dehydrogenation involving Fe-oxo species using water as the oxygen source.

Authors:  Amit Das; Jordan E Nutting; Shannon S Stahl
Journal:  Chem Sci       Date:  2019-06-27       Impact factor: 9.825

  9 in total

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