Activation of O2and NO in heme-copper oxidases - mechanistic insights from computational modelling

被引:17
|
作者
Blomberg, Margareta R. A. [1 ]
机构
[1] Stockholm Univ, Arrhenius Lab, Dept Organ Chem, SE-10691 Stockholm, Sweden
关键词
NITRIC-OXIDE REDUCTASE; CYTOCHROME-C-OXIDASE; COUPLED ELECTRON-TRANSFER; O BOND-CLEAVAGE; PROTON TRANSLOCATION; ACTIVE-SITE; SPECTROSCOPIC CHARACTERIZATION; PEROXY INTERMEDIATE; QUANTUM-CHEMISTRY; OXYGEN REDUCTION;
D O I
10.1039/d0cs00877j
中图分类号
O6 [化学];
学科分类号
0703 ;
摘要
Heme-copper oxidases are transmembrane enzymes involved in aerobic and anaerobic respiration. The largest subgroup contains the cytochromecoxidases (CcO), which reduce molecular oxygen to water. A significant part of the free energy released in this exergonic process is conserved as an electrochemical gradient across the membrane,viatwo processes, electrogenic chemistry and proton pumping. A deviant subgroup is the cytochromecdependent NO reductases (cNOR), which reduce nitric oxide to nitrous oxide and water. This is also an exergonic reaction, but in this case none of the released free energy is conserved. Computational studies applying hybrid density functional theory to cluster models of the bimetallic active sites in the heme-copper oxidases are reviewed. To obtain a reliable description of the reaction mechanisms, energy profiles of the entire catalytic cycles, including the reduction steps have to be constructed. This requires a careful combination of computational results with certain experimental data. Computational studies have elucidated mechanistic details of the chemical parts of the reactions, involving cleavage and formation of covalent bonds, which have not been obtainable from pure experimental investigations. Important insights regarding the mechanisms of energy conservation have also been gained. The computational studies show that the reduction potentials of the active site cofactors in the CcOs are large enough to afford electrogenic chemistry and proton pumping,i.e.efficient energy conservation. These results solve a conflict between different types of experimental data. A mechanism for the proton pumping, involving a specific and crucial role for the active site tyrosine, conserved in all CcOs, is suggested. For thecNORs, the calculations show that the low reduction potentials of the active site cofactors are optimized for fast elimination of the toxic NO molecules. At the same time, the low reduction potentials lead to endergonic reduction steps with high barriers. To prevent even higher barriers, which would lead to a too slow reaction, when the electrochemical gradient across the membrane is present, the chemistry must occur in a non-electrogenic manner. This explains why there is no energy conservation incNOR.
引用
收藏
页码:7301 / 7330
页数:30
相关论文
共 50 条
  • [41] Superoxo, μ-peroxo, and μ-oxo complexes from heme/O2 and heme-Cu/O2 reactivity:: Copper ligand influences in cytochrome c oxidase models
    Kim, E
    Helton, ME
    Wasser, IM
    Karlin, KD
    Lu, S
    Huang, HW
    Moënne-Loccoz, P
    Incarvito, CD
    Rheingold, AL
    Honecker, M
    Kaderli, S
    Zuberbühler, AD
    PROCEEDINGS OF THE NATIONAL ACADEMY OF SCIENCES OF THE UNITED STATES OF AMERICA, 2003, 100 (07) : 3623 - 3628
  • [42] Mechanistic Insights into Tf2O-Promoted Electrophilic Activation of 2-Propynamides and a New Synthesis of 2,4-Disubstituted Quinolines
    Shan, Lidong
    Li, Hongchen
    Zheng, Weiping
    Wang, Xingyong
    Wang, Xinyan
    Hu, Yuefei
    ORGANIC LETTERS, 2022, 24 (48) : 8806 - 8811
  • [43] Mechanistic Insights of Electrochemical Cl2 and O2 Generation from Lanthanum Cobalt Manganese Oxide
    Sood, Kritika
    Rana, Supriya
    Wadhwa, Ritika
    Bhasin, Kuldeep Kumar
    Jha, Menaka
    ADVANCED MATERIALS INTERFACES, 2022, 9 (25):
  • [44] Increased Stability and Breakdown of Brain Effective Connectivity During Slow-Wave Sleep: Mechanistic Insights from Whole-Brain Computational Modelling
    Beatrice M. Jobst
    Rikkert Hindriks
    Helmut Laufs
    Enzo Tagliazucchi
    Gerald Hahn
    Adrián Ponce-Alvarez
    Angus B. A. Stevner
    Morten L. Kringelbach
    Gustavo Deco
    Scientific Reports, 7
  • [45] Increased Stability and Breakdown of Brain Effective Connectivity During Slow-Wave Sleep: Mechanistic Insights from Whole-Brain Computational Modelling
    Jobst, Beatrice M.
    Hindriks, Rikkert
    Laufs, Helmut
    Tagliazucchi, Enzo
    Hahn, Gerald
    Ponce-Alvarez, Adrian
    Stevner, Angus B. A.
    Kringelbach, Morten L.
    Deco, Gustavo
    SCIENTIFIC REPORTS, 2017, 7
  • [46] H2 and O2 activation by [NiFe]hydrogenases - Insights from model complexes
    Ogo, Seiji
    COORDINATION CHEMISTRY REVIEWS, 2017, 334 : 43 - 53
  • [47] Biomimetic copper-dioxygen chemistry - Reversible O-2-binding and mechanistic insights into Cu(I)/O-2-mediated arene hydroxylation and amide hydrolysis
    Murthy, NN
    Karlin, KD
    MECHANISTIC BIOINORGANIC CHEMISTRY, 1995, 246 : 165 - 193
  • [48] N2O activation and oxidation reactivity from a non-heme iron pyrrold platform
    Harman, W. Hill
    Chang, Christopher J.
    JOURNAL OF THE AMERICAN CHEMICAL SOCIETY, 2007, 129 (49) : 15128 - +
  • [49] Insights on the mechanistic features of catalytic oxidations of simple and conjugated olefins promoted by VO(acac)2/H2O2 system, in acetonitrile: A computational study
    Aschi, Massimiliano
    Crucianelli, Marcello
    Di Giuseppe, Andrea
    Di Nicola, Corrado
    Marchetti, Fabio
    CATALYSIS TODAY, 2012, 192 (01) : 56 - 62
  • [50] Insights into heme-based O2 sensing from structure-function relationships in the FixL proteins
    Rodgers, KR
    Lukat-Rodgers, GS
    JOURNAL OF INORGANIC BIOCHEMISTRY, 2005, 99 (04) : 963 - 977