Literature DB >> 20058889

Electron transfer properties and hydrogen peroxide electrocatalysis of cytochrome c variants at positions 67 and 80.

Stefano Casalini1, Gianantonio Battistuzzi, Marco Borsari, Carlo Augusto Bortolotti, Giulia Di Rocco, Antonio Ranieri, Marco Sola.   

Abstract

Replacement of the axial Met80 heme ligand in electrode-immobilized cytochrome c with a noncoordinating Ala residue and alteration of the hydrogen bonding network in the region nearby following substitution of Tyr67 were investigated as effectors of the thermodynamics and kinetics of the protein-electrode electron transfer (ET) and the heme-mediated electrocatalytic reduction of H(2)O(2). To this end, the voltammetry of the Met80Ala, Met80Ala/Tyr67His, and Met80Ala/Tyr67Ala variants of yeast iso-1-cytochrome c chemisorbed on carboxyalkanethiol self-assembled monolayers was measured at varying temperature and hydrogen peroxide concentration. The thermodynamic study shows that insertion of His and Ala residues in place of Tyr67 results mainly in differences in protein-solvent interactions at the heme crevice with no relevant effects on the E degrees' values at pH 7, which for single and double variants range from approximately -0.200 to -0.220 V (vs SHE). On the contrary, both double variants show much lower ET rates compared to Met80Ala, most likely as a consequence of a change in the ET pathways. In the present nondenaturing immobilizing conditions, and with hydrogen peroxide concentrations in the micromolar range, the variants catalyze H(2)O(2) reduction at the electrode, whereas wild-type cytochrome c does not. H(2)O(2) electrocatalysis occurs with an efficient mechanism likely involving a fast catalase-like process followed by electrocatalytic reduction of the resulting dioxygen at the electrode. Comparison of Met80Ala/Tyr67His with Met80Ala/Tyr67Ala shows that the presence of a general acid-base residue for H(2)O(2) recognition and binding through H-bonding in the distal heme site is a key requisite for the reductive turnover of this substrate.

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Year:  2010        PMID: 20058889     DOI: 10.1021/jp9090365

Source DB:  PubMed          Journal:  J Phys Chem B        ISSN: 1520-5207            Impact factor:   2.991


  5 in total

Review 1.  The role of key residues in structure, function, and stability of cytochrome-c.

Authors:  Sobia Zaidi; Md Imtaiyaz Hassan; Asimul Islam; Faizan Ahmad
Journal:  Cell Mol Life Sci       Date:  2013-04-25       Impact factor: 9.261

2.  Binding of S. cerevisiae iso-1 cytochrome c and its surface lysine-to-alanine variants to cardiolipin: charge effects and the role of the lipid to protein ratio.

Authors:  Alessandro Paradisi; Marzia Bellei; Licia Paltrinieri; Carlo Augusto Bortolotti; Giulia Di Rocco; Antonio Ranieri; Marco Borsari; Marco Sola; Gianantonio Battistuzzi
Journal:  J Biol Inorg Chem       Date:  2020-03-18       Impact factor: 3.358

3.  Pseudoperoxidase activity, conformational stability, and aggregation propensity of the His98Tyr myoglobin variant: implications for the onset of myoglobinopathy.

Authors:  Stefan Hofbauer; Marcello Pignataro; Marco Borsari; Carlo Augusto Bortolotti; Giulia Di Rocco; Gianina Ravenscroft; Paul G Furtmüller; Christian Obinger; Marco Sola; Gianantonio Battistuzzi
Journal:  FEBS J       Date:  2021-11-03       Impact factor: 5.622

4.  Specific methionine oxidation of cytochrome c in complexes with zwitterionic lipids by hydrogen peroxide: potential implications for apoptosis.

Authors:  Daiana A Capdevila; Waldemar A Marmisollé; Florencia Tomasina; Verónica Demicheli; Magdalena Portela; Rafael Radi; Daniel H Murgida
Journal:  Chem Sci       Date:  2014-09-01       Impact factor: 9.825

5.  Assessing the Functional and Structural Stability of the Met80Ala Mutant of Cytochrome c in Dimethylsulfoxide.

Authors:  Giulia Di Rocco; Antonio Ranieri; Marco Borsari; Marco Sola; Carlo Augusto Bortolotti; Gianantonio Battistuzzi
Journal:  Molecules       Date:  2022-08-31       Impact factor: 4.927

  5 in total

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