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Journal Abstract Search


134 related items for PubMed ID: 19360824

  • 21. Functional models for catechol dioxygenases: iron(III) complexes of cis-facially coordinating linear 3N ligands.
    Velusamy M, Mayilmurugan R, Palaniandavar M.
    J Inorg Biochem; 2005 May; 99(5):1032-42. PubMed ID: 15833326
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  • 22. Extradiol oxidative cleavage of catechols by ferrous and ferric complexes of 1,4,7-triazacyclononane: insight into the mechanism of the extradiol catechol dioxygenases.
    Lin G, Reid G, Bugg TD.
    J Am Chem Soc; 2001 May 30; 123(21):5030-9. PubMed ID: 11457331
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  • 23. Dioxygen reactivity of biomimetic iron-catecholate and iron-o-aminophenolate complexes of a tris(2-pyridylthio)methanido ligand: aromatic C-C bond cleavage of catecholate versus o-iminobenzosemiquinonate radical formation.
    Halder P, Paria S, Paine TK.
    Chemistry; 2012 Sep 10; 18(37):11778-87. PubMed ID: 22847897
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  • 24. X-ray absorption spectroscopic studies of the Fe(II) active site of catechol 2,3-dioxygenase. Implications for the extradiol cleavage mechanism.
    Shu L, Chiou YM, Orville AM, Miller MA, Lipscomb JD, Que L.
    Biochemistry; 1995 May 23; 34(20):6649-59. PubMed ID: 7756296
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  • 25. A novel pentadentate redox-active ligand and its iron(III) complexes: electronic structures and O₂ reactivity.
    Metzinger R, Demeshko S, Limberg C.
    Chemistry; 2014 Apr 14; 20(16):4721-35. PubMed ID: 24623641
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  • 26. 4-nitrocatechol as a probe of a Mn(II)-dependent extradiol-cleaving catechol dioxygenase (MndD): comparison with relevant Fe(II) and Mn(II) model complexes.
    Reynolds MF, Costas M, Ito M, Jo DH, Tipton AA, Whiting AK, Que L.
    J Biol Inorg Chem; 2003 Feb 14; 8(3):263-72. PubMed ID: 12589562
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  • 27. Iron(III)-catecholato complexes as structural and functional models of the intradiol-cleaving catechol dioxygenases.
    Bruijnincx PC, Lutz M, Spek AL, Hagen WR, van Koten G, Gebbink RJ.
    Inorg Chem; 2007 Oct 01; 46(20):8391-402. PubMed ID: 17722878
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  • 28. Conversion of extradiol aromatic ring-cleaving homoprotocatechuate 2,3-dioxygenase into an intradiol cleaving enzyme.
    Groce SL, Lipscomb JD.
    J Am Chem Soc; 2003 Oct 01; 125(39):11780-1. PubMed ID: 14505375
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  • 29. Mimicking the intradiol catechol cleavage activity of catechol dioxygenase by high-spin iron(III) complexes of a new class of a facially bound [N2O] ligand.
    Panda MK, John A, Shaikh MM, Ghosh P.
    Inorg Chem; 2008 Dec 15; 47(24):11847-56. PubMed ID: 19006298
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  • 34. Catalytic oxidation of 3,5-Di-tert-butylcatechol by a series of mononuclear manganese complexes: synthesis, structure, and kinetic investigation.
    Triller MU, Pursche D, Hsieh WY, Pecoraro VL, Rompel A, Krebs B.
    Inorg Chem; 2003 Oct 06; 42(20):6274-83. PubMed ID: 14514302
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  • 36. Iron(III) complexes of certain meridionally coordinating tridentate ligands as models for non-heme iron enzymes: the role of carboxylate coordination.
    Dhanalakshmi T, Bhuvaneshwari M, Palaniandavar M.
    J Inorg Biochem; 2006 Sep 06; 100(9):1527-34. PubMed ID: 16814389
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  • 38. Biomimetic iron(III) complexes of facially and meridionally coordinating tridentate 3N ligands: tuning of regioselective extradiol dioxygenase activity in organized assemblies.
    Sankaralingam M, Saravanan N, Anitha N, Suresh E, Palaniandavar M.
    Dalton Trans; 2014 May 14; 43(18):6828-41. PubMed ID: 24654008
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  • 39. Synthesis and structure of iron(iii) diamine-bis(phenolate) complexes.
    Hasan K, Fowler C, Kwong P, Crane AK, Collins JL, Kozak CM.
    Dalton Trans; 2008 Jun 14; (22):2991-8. PubMed ID: 18493635
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  • 40. Quantitative structure-activity relationship for the cleavage of C3/C4-substituted catechols by a prototypal extradiol catechol dioxygenase with broad substrate specificity.
    Ishida T, Tanaka H, Horiike K.
    J Biochem; 2004 Jun 14; 135(6):721-30. PubMed ID: 15213248
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