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Isolation and characterization of a microperoxidase-8 with a modified histidine axial ligand
Jean-Louis Primus1, Sjef Boeren, Michel W F Nielen
1Laboratory of Biochemistry, Wageningen University, The Netherlands. primus@imec.be
Abstract:
Microperoxidase-8, Fe(III)MP-8, the heme octapeptide obtained by horse heart cytochrome c digestion, was studied in the presence of H(2)O(2). A modified form of the catalyst was isolated by HPLC and showed a UV/visible spectrum similar to that of Fe(III)MP-8. ESI-MS measurements revealed a 16 Da increase in molecular mass for the modified catalyst when compared to Fe(III)MP-8, suggesting the insertion of an oxygen atom. ESI-MS(2) fragmentation measurements point at oxygen incorporation on the His18 residue of the octapeptide of the modified catalyst. Comparison of the (1)H NMR chemical shifts of the methyl protons of the porphyrin ring of Fe(III)MP-8 and the modified catalyst shows a large shift for especially the 3-methyl and 5-methyl resonances, whereas the other (1)H NMR chemical shifts are almost unaffected. These observations can best be ascribed to a reorientation of the histidine axial ligand. The latter is suggested to be the consequence of an oxygen insertion, possibly on the imidazole ring of His18, thereby corroborating the data obtained by ESI-MS(2). (1)H NMR NOE difference measurements on Fe(III)MP-8 and on the modified catalyst supported the assignment of the H(delta)2 and H(epsilon)1 protons of the His18 imidazole ring. The ring amine proton H(delta)1 could not be detected in both forms of the catalyst. For Fe(III)MP-8 this absence of the H(delta)1 resonance can be ascribed to fast H/D exchange. For the modified catalyst the NMR data are not contradictory, with an oxygen insertion on position delta1 of the His18 imidazole ring with a fast H/D exchanging hydroxyl proton. Together these data converge in suggesting the H(2)O(2) modified catalyst bears a hydroxylated His18 axial ligand. The mechanism that could underlie Fe(III)MP-8 axial histidine hydroxylation is further discussed.
Insights
Microperoxidase-8 (Fe(III)MP-8) reacts with hydrogen peroxide (H2O2) to form a modified catalyst. This modified catalyst features a hydroxylated His18 axial ligand, confirmed by mass spectrometry and NMR.
Area of Science:
- Biochemistry
- Chemical Biology
- Spectroscopy
Background:
- Microperoxidase-8 (Fe(III)MP-8), a heme octapeptide derived from cytochrome c, is a model catalyst.
- Understanding the reactivity of Fe(III)MP-8 with oxidants like hydrogen peroxide (H2O2) is crucial for catalytic mechanism studies.
Purpose of the Study:
- To investigate the structural and chemical modifications of Fe(III)MP-8 upon reaction with H2O2.
- To elucidate the site and nature of the modification using advanced analytical techniques.
Main Methods:
- Isolation of the modified catalyst using High-Performance Liquid Chromatography (HPLC).
- Characterization by UV/Visible spectroscopy, Electrospray Ionization Mass Spectrometry (ESI-MS), and Nuclear Magnetic Resonance (NMR) spectroscopy (1H NMR, NOE difference measurements).
Main Results:
- A modified Fe(III)MP-8 catalyst was isolated, showing a 16 Da increase in molecular mass, indicative of oxygen insertion.
- ESI-MS/MS and NMR data pinpoint oxygen incorporation on the His18 residue, specifically suggesting hydroxylation of the imidazole ring.
- NMR chemical shift changes and NOE data support a reorientation of the axial histidine ligand due to hydroxylation.
Conclusions:
- The H2O2-modified Fe(III)MP-8 catalyst possesses a hydroxylated His18 axial ligand.
- The findings provide mechanistic insights into the axial histidine hydroxylation of heme-containing peptides.