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1.
J Am Chem Soc ; 135(42): 15851-63, 2013 Oct 23.
Article in English | MEDLINE | ID: mdl-24066857

ABSTRACT

myo-Inositol oxygenase (MIOX) catalyzes the 4e(-) oxidation of myo-inositol (MI) to D-glucuronate using a substrate activated Fe(II)Fe(III) site. The biferrous and Fe(II)Fe(III) forms of MIOX were studied with circular dichroism (CD), magnetic circular dichroism (MCD), and variable temperature variable field (VTVH) MCD spectroscopies. The MCD spectrum of biferrous MIOX shows two ligand field (LF) transitions near 10000 cm(-1), split by ~2000 cm(-1), characteristic of six coordinate (6C) Fe(II) sites, indicating that the modest reactivity of the biferrous form toward O2 can be attributed to the saturated coordination of both irons. Upon oxidation to the Fe(II)Fe(III) state, MIOX shows two LF transitions in the ~10000 cm(-1) region, again implying a coordinatively saturated Fe(II) site. Upon MI binding, these split in energy to 5200 and 11200 cm(-1), showing that MI binding causes the Fe(II) to become coordinatively unsaturated. VTVH MCD magnetization curves of unbound and MI-bound Fe(II)Fe(III) forms show that upon substrate binding, the isotherms become more nested, requiring that the exchange coupling and ferrous zero-field splitting (ZFS) both decrease in magnitude. These results imply that MI binds to the ferric site, weakening the Fe(III)-µ-OH bond and strengthening the Fe(II)-µ-OH bond. This perturbation results in the release of a coordinated water from the Fe(II) that enables its O2 activation.


Subject(s)
Ferric Compounds/metabolism , Ferrous Compounds/metabolism , Inositol Oxygenase/metabolism , Oxygen/metabolism , Temperature , Animals , Circular Dichroism , Enzyme Activation , Ferric Compounds/chemistry , Ferrous Compounds/chemistry , Inositol Oxygenase/chemistry , Inositol Oxygenase/isolation & purification , Kidney/enzymology , Magnetic Fields , Mice , Models, Molecular , Molecular Structure , Oxygen/chemistry , Substrate Specificity
2.
Article in English | MEDLINE | ID: mdl-16880565

ABSTRACT

Myo-inositol oxygenase (MIOX) catalyzes the novel oxidative cleavage of myo-inositol (MI) and its epimer D-chiro inositol (DCI) to D-glucuronate. MIOX utilizes an Fe(II)/Fe(III) binuclear iron centre for the dioxygen-dependent cleavage of the C1-C6 bond in MI. Despite its key role in inositol metabolism, the structural basis of its unique four-electron oxidation mechanism and its substrate specificity remain unknown. In order to answer these questions and to facilitate the use of this key enzyme for the development of new therapeutic strategies for diabetes, the mouse enzyme has been cloned, expressed in Escherichia coli, purified and crystallized from 4.4 M sodium formate. The crystals belong to space group P2(1)2(1)2(1), with unit-cell parameters a = 44.87, b = 77.26, c = 84.84 angstroms, and diffract to 2.8 angstroms resolution.


Subject(s)
Inositol Oxygenase/isolation & purification , Animals , Base Sequence , Carbohydrate Conformation , Crystallization , DNA Primers , Escherichia coli/enzymology , Escherichia coli/genetics , Inositol/chemistry , Inositol Oxygenase/chemistry , Inositol Oxygenase/genetics , Mice , Models, Molecular , Recombinant Proteins/chemistry , Recombinant Proteins/isolation & purification , X-Ray Diffraction
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