Literature DB >> 28128474

Mimicking the Regulation Step of Fe-Monooxygenases: Allosteric Modulation of FeIV -Oxo Formation by Guest Binding in a Dinuclear ZnII -FeII Calix[6]arene-Based Funnel Complex.

Nathalie Ségaud1, Constance De Thomasson2, Caroline Daverat1,2, Katell Sénéchal-David1, Amandine Dos Santos1, Vincent Steinmetz3, Philippe Maître3, Jean-Noël Rebilly2, Frédéric Banse1, Olivia Reinaud2.   

Abstract

A heteroditopic ligand associated with a calix[6]arene scaffold bearing a tris(imidazole) coordinating site at its small rim and an amine/pyridine ligand at its large rim has been prepared, and its regioselective coordination to ZnII at the small rim and FeII in the amine/pyridine ligand has been achieved. The heterodinuclear complex obtained displays an overall cone conformation capped by the tris(imidazole)ZnII moiety and bears a non-heme FeII complex at its base. Each of the metal centers exhibits one labile position, allowing the coordination inside the cavity of a guest alkylamine at ZnII and the generation of reaction intermediates (FeIII (OOH) and FeIV O) at the large rim. A dependence between the chain length of the encapsulated alkylamine and the distribution of FeIII (OOH) intermediates and FeIII (OMe) is observed. In addition, it is shown that the generation of the FeIV O intermediate is enhanced by addition of the alkylamine guest. Hence, this supramolecular system gathers the three levels of reactivity control encountered in oxidoreductases: i) control of the FeII redox properties through its first coordination sphere, allowing us to generate high valent reactive species; ii) control of guest binding through a hydrophobic funnel that drives its alkyl chain next to the reactive iron complex, thus mimicking the binding pocket of natural systems; iii) guest-modulated reactivity of the FeII center towards oxidants.
© 2017 Wiley-VCH Verlag GmbH & Co. KGaA, Weinheim.

Entities:  

Keywords:  allosteric switches; calixarenes; host-guest chemistry; iron-oxo species; non-heme iron complexes

Year:  2017        PMID: 28128474     DOI: 10.1002/chem.201605248

Source DB:  PubMed          Journal:  Chemistry        ISSN: 0947-6539            Impact factor:   5.236


  1 in total

1.  Oxygen-Depleted Calixarenes as Ligands for Molecular Models of Galactose Oxidase.

Authors:  Matthias Keck; Santina Hoof; Christian Herwig; Arkadi Vigalok; Christian Limberg
Journal:  Chemistry       Date:  2019-09-19       Impact factor: 5.236

  1 in total

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