Effect of Redox Potential on Diiron-Mediated Disproportionation of Hydrogen Peroxide

被引:2
|
作者
Torok, Patrik [1 ]
Lakk-Bogath, Dora [1 ]
Kaizer, Jozsef [1 ]
机构
[1] Univ Pannonia, Res Grp Bioorgan & Biocoordinat Chem, H-8201 Veszprem, Hungary
来源
MOLECULES | 2023年 / 28卷 / 07期
关键词
nonheme models; mu-1,2-peroxo-diiron(III) intermediates; catalase-like activity; kinetics; CATALASE-LIKE ACTIVITY; OXIDATIVE STRESS; MANGANESE CATALASE; FUNCTIONAL MODELS; COMPLEXES; REACTIVITY; LIGANDS; MIMICS; INTERMEDIATE; EVOLUTION;
D O I
10.3390/molecules28072905
中图分类号
Q5 [生物化学]; Q7 [分子生物学];
学科分类号
071010 ; 081704 ;
摘要
Heme and nonheme dimanganese catalases are widely distributed in living organisms to participate in antioxidant defenses that protect biological systems from oxidative stress. The key step in these processes is the disproportionation of H2O2 to O-2 and water, which can be interpreted via two different mechanisms, namely via the formation of high-valent oxoiron(IV) and peroxodimanganese(III) or diiron(III) intermediates. In order to better understand the mechanism of this important process, we have chosen such synthetic model compounds that can be used to map the nature of the catalytically active species and the factors influencing their activities. Our previously reported mu-1,2-peroxo-diiron(III)-containing biomimics are good candidates, as both proposed reactive intermediates ((FeO)-O-IV and Fe-2(III)(mu-O-2)) can be derived from them. Based on this, we have investigated and compared five heterobidentate-ligand-containing model systems including the previously reported and fully characterized [Fe-II(L1-4)(3)](2+) (L-1 = 2-(2'-pyridyl)-1H-benzimidazole, L-2 = 2-(2'-pyridyl)-N-methyl-benzimidazole, L-3 = 2-(4-thiazolyl)-1H-benzimidazole and L-4 = 2-(4'-methyl-2'-pyridyl)-H-1-benzimidazole) and the novel [Fe-II(L-5)(3)](2+) (L-5 = 2-(1H-1,2,4-triazol-3-yl)-pyridine) precursor complexes with their spectroscopically characterized mu-1,2-peroxo-diiron(III) intermediates. Based on the reaction kinetic measurements and previous computational studies, it can be said that the disproportionation reaction of H2O2 can be interpreted through the formation of an electrophilic oxoiron(IV) intermediate that can be derived from the homolysis of the O-O bond of the forming mu-1,2-peroxo-diiron(III) complexes. We also found that the disproportionation rate of the H2O2 shows a linear correlation with the Fe-III/Fe-II redox potential (in the range of 804 mV-1039 mV vs. SCE) of the catalysts controlled by the modification of the ligand environment. Furthermore, it is important to note that the two most active catalysts with L-3 and L-5 ligands have a high-spin electronic configuration.
引用
收藏
页数:16
相关论文
共 50 条
  • [31] Surface redox catalysis and reduction kinetics of hydrogen peroxide on copper-nickel alloys
    Ceré, S
    Vazquez, M
    de Sánchez, SR
    Schiffrin, DJ
    JOURNAL OF ELECTROANALYTICAL CHEMISTRY, 1999, 470 (01) : 31 - 38
  • [32] The redox reaction of hydrogen peroxide at an Au(100) electrode: Implications for oxygen reduction kinetics
    Zheng, Yong Li
    Mei, Dong
    Chen, Yan-Xia
    Ye, Shen
    ELECTROCHEMISTRY COMMUNICATIONS, 2014, 39 : 19 - 21
  • [33] Effects of Hydrogen Peroxide Stress on the Nucleolar Redox Environment and Pre-rRNA Maturation
    Sapio, Russell T.
    Burns, Chelsea J.
    Pestov, Dimitri G.
    FRONTIERS IN MOLECULAR BIOSCIENCES, 2021, 8
  • [34] RuIII(edta) mediated oxidation of azide in the presence of hydrogen peroxide. Azide versus peroxide activation
    Chatterjee, Debabrata
    Franke, Alicja
    Oszajca, Maria
    van Eldik, Rudi
    DALTON TRANSACTIONS, 2014, 43 (08) : 3087 - 3094
  • [35] Shape transformation of silver nanospheres to silver nanoplates induced by redox reaction of hydrogen peroxide
    Parnklang, Tewarak
    Lamlua, Banjongsak
    Gatemala, Harnchana
    Thammacharoen, Chuchaat
    Kuimalee, Surasak
    Lohwongwatana, Boonrat
    Ekgasit, Sanong
    MATERIALS CHEMISTRY AND PHYSICS, 2015, 153 : 127 - 134
  • [36] Tempol inhibits neutrophil and hydrogen peroxide-mediated DNA damage
    Hahn, SM
    Mitchell, JB
    Shacter, E
    FREE RADICAL BIOLOGY AND MEDICINE, 1997, 23 (06) : 879 - 884
  • [37] Ratiometric Imaging of Mitochondrial Hydrogen Peroxide in Aβ42-Mediated Neurotoxicity
    Li, Xinyu
    Zhang, Yiyu
    Ai, Hui-wang
    ACS SENSORS, 2022, 7 (03) : 722 - 729
  • [38] The bicarbonate/carbon dioxide pair increases hydrogen peroxide-mediated hyperoxidation of human peroxiredoxin 1
    Truzzi, Daniela R.
    Coelho, Fernando R.
    Paviani, Veronica
    Alves, Simone V.
    Netto, Luis E. S.
    Augusto, Ohara
    JOURNAL OF BIOLOGICAL CHEMISTRY, 2019, 294 (38) : 14055 - 14067
  • [39] Redox signaling in cardiovascular pathophysiology: A focus on hydrogen peroxide and vascular smooth muscle cells
    Byon, Chang Hyun
    Heath, Jack M.
    Chen, Yabing
    REDOX BIOLOGY, 2016, 9 : 244 - 253
  • [40] Effect of hydrogen pressure on disproportionation kinetics of Nd-Fe-B alloy
    Kwon, H. W.
    Yu, J. H.
    JOURNAL OF ALLOYS AND COMPOUNDS, 2009, 487 (1-2) : 138 - 141