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Respiration is one of the key processes of energy transduction used by the cell. It consists of two components: electron transfer and ATP production. The electron transfer chain converts the energy released from several biochemical redox reactions into an electrochemical proton gradient across membranes. This stored energy is used as the driving force for the production of ATP by the ATP synthase. The mitochondrial electron transfer chain contains four major protein complexes called complexes I-IV, with counting starting at the lower side of the redox potentials. It has been discussed for a long time how these protein complexes are organized in the membranes. Do they diffuse freely in the membrane? Alternatively, do they form a supercomplex built up of several neighboring complexes? The evidence supporting the free diffusion mode is that both electron transfer intermediates (cytochrome c and quinone) behave as “pool”. However, respiratory supercomplexes have been detected in membranes from bacteria, fungi, yeast, plant and animal during the last decade, and sometimes the respiratory complexes are only stable inside a supercomplex. Therefore, the idea of supercomplex formation has become more popular. The argument that the supercomplex arises from solubilization and is a detergent artifact could be rejected because: 1) supercomplexes can be isolated from many organisms in an active form; 2) supercomplexes have been proven to stabilize the individual complexes in some cases; 3) supercomplexes can be very stable after chromatographic isolation in some cases....
The four subunit (SU) aa3 cytochrome c oxidase (CcO) from Paracoccus denitrificans is one of the terminal enzymes of the respiratory chain. It uses electrons from cytochrome c to reduce molecular oxygen to water. Its binuclear active center, residing in SU I, contains hemeÊa3 and CuB, the latter being liganded by three histidine residues. Apart from its oxygen reductase activity, the protein possesses a peroxidase and a catalase activity.
To compare variants and the wild type (WT) protein in a more stringent way, a recombinant (rec.) WT CcO was constructed, carrying the gene for SUÊI on a low copy number plasmid. This rec. WT showed, as expected, no difference in oxygen reductase activity compared to the American Type Culture Collection (ATCC) WT CcO but surprisingly its catalase activity was increased by a factor of 20. The potential overproduction of SUÊI due to plasmid coding and the resulting deficiency in metal inserting chaperones might impair the correct insertion of hemeÊa3 and CuB because of a deficiency in metal inserting chaperones. This in turn might lead to differences in side chain orientation and to changes in the water network. However, slight changes might cause an increased accessibility of the active center for hydrogen peroxide, resulting in an increased catalase activity. The availability of chaperones and therefore the proposed structural reasons for the difference was improved by cloning the genes for the two metal inserting chaperones CtaG and Surf1c on the same plasmid together with SUÊI. This new rec. WT CcO showed in fact a reduced catalase activity. Another WT with a deletion in the chromosomal second, non expressing gene of SU I was analysed to prove plasmid coding as the reason for the difference of the ATCC WT and the rec. WT. This strain showed an increased kcat of the catalase activity as well, additionally pointing to a regulatory effect of the non expressed gene for SU I in the chromosome. To fathom the structural difference of the increased catalase activity, differential scanning calorimetry was used, but no significant difference in thermal stability between the ATCC WT CcO and the rec. WT CcO was detected. However, upon aging, the thermal stability of the rec. WT CcO declined faster than that of the ATCC WT CcO pointing to a decreased structural stability of the rec. WT CcO.
To characterize the catalase reaction, several known inhibitors were used to probe the contribution of the different metal cofactors in the catalase reaction. In addition variants in aromatic amino acids near the active center were constructed to conclude on a possible reaction mechanism of the catalase activity of CcO. These variants in combination with the wild type forms were analysed for radical signals by EPR-spectroscopy. A radical relevant for the catalase reaction of CcO was found in the F-intermediate of all variants and all wild type forms. This narrow 12 G radical signal was assigned to a porphyrine radical probably involved in the catalase reaction of CcO. Moreover, gas chromatography-mass spectrometry measurements were used to analyse isotopically labelled oxygen produced in the catalase reaction.
As a result of these experiments, a reaction cycle of the catalase activity of CcO is postulated and the structural difference between the ATCC and rec. WT CcO is outlined. The catalase activity appears to be a true catalase activity and not a "pseudocatalase" activity.