Literature DB >> 14686842

Modeling the syn disposition of nitrogen donors at the active sites of carboxylate-bridged diiron enzymes. Enforcing dinuclearity and kinetic stability with a 1,2-diethynylbenzene-based ligand.

Jane Kuzelka1, Joshua R Farrell, Stephen J Lippard.   

Abstract

The syn coordination of histidine residues at the active sites of several carboxylate-rich non-heme diiron enzymes has been difficult to reproduce with small molecule model compounds. In this study, ligands derived from 1,8-naphthyridine, phthalazine, and 1,2-diethynylbenzene were employed to mimic this geometric feature. The preassembled diiron(II) complex [Fe(2)(micro-O(2)CAr(Tol))(2)(O(2)CAr(Tol))(2)(THF)(2)] (1), where Ar(Tol)CO(2)(-) is the sterically hindered carboxylate 2,6-di(p-tolyl)benzoate, served as a convenient starting material for the preparation of iron(II) complexes, all of which were crystallographically characterized. Use of the ligand 2,7-dimethyl-1,8-naphthyridine (Me(2)-napy) afforded the mononuclear complex [Fe(O(2)CAr(Tol))(2)(Me(2)-napy)] (2), whereas dinuclear [Fe(2)(micro-DMP)(micro-O(2)CAr(Tol))(2)(O(2)CAr(Tol))(2)(THF)] (3) resulted when 1,4-dimethylphthalazine (DMP) was employed. The dinuclear core of compound 3 is kinetically labile, as evidenced by the formation of [Fe(O(2)CAr(Tol))(2)(vpy)(2)] (4) upon addition of 2-vinylpyridine (vpy). The diiron analogue of 4, [Fe(2)(micro-O(2)CAr(Tol))(2)(O(2)CAr(Tol))(2)(vpy)(2)] (5), was prepared directly from 1. When the sterically more demanding ligand 2,6-di(4-tert-butylphenyl)benzoate (Ar(4-tBuPh)CO(2)(-)) was used, mononuclear [Fe(O(2)CAr(4)(-)(tBuPh))(2)(THF)(2)] (6) and [Fe(O(2)CAr(4)(-)(tBuPh))(2)(DMP)(2)] (7) formed. The difficulty in stabilizing a dinuclear core with these simple (N)(2)-donor ligands was circumvented by preparing a family of 1,2-diethynylbenzene-based ligands, from which were readily assembled the complexes [Fe(2)(Et(2)BCQEB(Et))(micro-O(2)CAr(Tol))(3)](OTf) (15) and [Cu(2)(Et(2)BCQEB(Et))(micro-I)(2)] (16), where Et(2)BCQEB(Et) is 1,2-bis(3-ethynyl-8-carboxylatequinoline)benzene ethyl ester. The Et(2)BCQEB(Et) framework provides both structural flexibility and the desired syn nitrogen donor geometry, thus serving as a good first-generation ligand in this class.

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Year:  2003        PMID: 14686842     DOI: 10.1021/ic034928e

Source DB:  PubMed          Journal:  Inorg Chem        ISSN: 0020-1669            Impact factor:   5.165


  11 in total

1.  Synthesis of diethynyltriptycene-linked dipyridyl ligands.

Authors:  Jeremy J Kodanko; Anna J Morys; Stephen J Lippard
Journal:  Org Lett       Date:  2005-10-13       Impact factor: 6.005

2.  Modeling the syn disposition of nitrogen donors in non-heme diiron enzymes. Synthesis, characterization, and hydrogen peroxide reactivity of diiron(III) complexes with the syn N-donor ligand H2BPG2DEV.

Authors:  Simone Friedle; Jeremy J Kodanko; Anna J Morys; Takahiro Hayashi; Pierre Moënne-Loccoz; Stephen J Lippard
Journal:  J Am Chem Soc       Date:  2009-10-14       Impact factor: 15.419

3.  2-Phenoxypyridyl dinucleating ligands for assembly of diiron(II) complexes: efficient reactivity with O(2) to form (mu-Oxo)diiron(III) units.

Authors:  Loi H Do; Stephen J Lippard
Journal:  Inorg Chem       Date:  2009-11-16       Impact factor: 5.165

4.  Toward functional carboxylate-bridged diiron protein mimics: achieving structural stability and conformational flexibility using a macrocylic ligand framework.

Authors:  Loi H Do; Stephen J Lippard
Journal:  J Am Chem Soc       Date:  2011-06-17       Impact factor: 15.419

Review 5.  Current challenges of modeling diiron enzyme active sites for dioxygen activation by biomimetic synthetic complexes.

Authors:  Simone Friedle; Erwin Reisner; Stephen J Lippard
Journal:  Chem Soc Rev       Date:  2010-05-20       Impact factor: 54.564

Review 6.  Evolution of strategies to prepare synthetic mimics of carboxylate-bridged diiron protein active sites.

Authors:  Loi H Do; Stephen J Lippard
Journal:  J Inorg Biochem       Date:  2011-09-14       Impact factor: 4.155

7.  Iron substitution for sodium in a carboxylate-bridged, heterodinuclear sodium-iron complex.

Authors:  Jeremy J Kodanko; Dong Xu; Datong Song; Stephen J Lippard
Journal:  J Am Chem Soc       Date:  2005-11-23       Impact factor: 15.419

8.  Design and synthesis of a novel triptycene-based ligand for modeling carboxylate-bridged diiron enzyme active sites.

Authors:  Yang Li; Rui Cao; Stephen J Lippard
Journal:  Org Lett       Date:  2011-08-29       Impact factor: 6.005

9.  Synthesis and Characterization of a Ditriflate-Bridged, Diiron(II) Complex with Syn-N-Donor Ligands: [Fe(2)(μ-OTf)(2)(PIC(2)DET)(2)](BARF)(2).

Authors:  Jeremy J Kodanko; Stephen J Lippard
Journal:  Inorganica Chim Acta       Date:  2008-03-03       Impact factor: 2.545

10.  Triptycene-based Bis(benzimidazole) Carboxylate-Bridged Biomimetic Diiron(II) Complexes.

Authors:  Yang Li; Chan Myae Myae Soe; Justin J Wilson; Suan Lian Tuang; Ulf-Peter Apfel; Stephen J Lippard
Journal:  Eur J Inorg Chem       Date:  2013-04-01       Impact factor: 2.524

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