Alkaline phosphatase activity in normal and scorbutic bones.
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1. Three methods are described for the genetic analysis of yeast cytoplasmic mutants (mit- mutants) lacking cytochrome oxidase or coenzyme QH2-cytochrome c reductase. The procedures permit mutations in mitochondrial DNA to be mapped relative to each other and with respect to drug-resistant markers. The first method is based upon the finding that crosses of mit- mutants with some but not other isonuclear q- mutants lead to the restoration of respiratory functions. Thus a segment of mitochondrial DNA corresponding to a given mit- mutation or to a set of mutations can be delineated. The second method is based on the appearance of wild-type progeny in mit- X mit- crosses. The third one is based on the analysis of various recombinant classes issued from crosses between mit-, drug-sensitive and mit+, drug-resistant mutants. Representative genetic markers of the RIBI, OLII, OLI2 and PAR1 loci were used for this purpose. 2. The three methods when applied to the study of 48 mit- mutants gave coherent results. At least three distinct regions on mitochondrial DNA in which mutations cause loss of functional cytochrome oxidase have been established. A fourth region represented by closely clustered mutants lacking coenzyme QH2-cytochrome c reductase and spectrally detectable cytochrome b has also been studied. 3. The three genetic regions of cytochrome oxidase and the cytochrome b region were localized by the third method on the circular map, in spans of mitochondrial DNA defined by the drug-resistant markers. The results obtained by this method were confirmed by analysis of the crosses between selected mit- mutants and a large number of q- clones whose retained segments of mitochondrial DNA contained various combinations of drug-resistant markers. 4. All the genetic data indicate that the various regions studied are dispersed on the mitochondrial genome and in some instances regions or clusters of closely linked mutations involved in the same respiratory function (cytochrome oxidase) are separated by other regions which code for entirely different functions such as ribosomal RNA.
A study of the near-infrared absorption spectra of three oxygen compounds of membrane-bound cytochrome oxidase (ferrocytochrome c:oxygen oxidoreductase; EC 1.9.3.1) shows that the formation of compound A (oxycytochrome oxidase) causes no significant infrared absorbance changes at -103 degrees. At -64 degrees, the formation of compound C from the mixed-valence state of the oxidase leads to increased absorption at 740-750 nm. The formation of compound B at -84 degrees from the fully reduced state of the oxidase causes increased absorption at 790-800 nm. Further oxidation of cytochrome oxidase results in increased infrared absorption at 820-830 nm at -60 degrees. The position of the infrared absorption band in compound C thus depends at least upon the oxidation-reduction state of heme a and its associated copper atom. Compound C contains two types of oxidized (cupric) copper; that associated with heme a is initially oxidized, and that associated with heme a3 is oxidized as a second step in the reaction with oxygen. Compound C exhibits a unique intense absorption band at 606-609 nm that is tentatively assigned to a charge transfer interaction between heme a3 in the reduced state and its associated copper in the oxidized state, with heme a and its associated copper in the oxidized state.
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Cytochrome oxidase is a mitochondrial trans-membrane protein which catalyzes the vectorial transfer of electrons from cytochrome c to molecular oxygen. When the oxidase was incorporated into liposomes composed of saturated phospholipids, enzymatic activity was reduced as compared to the activity of either the isolated enzyme or the enzyme incorporated into soy bean phospholipid (asolectin) liposomes. This reduced activity probably resulted from partial replacement of retained oxidase boundary lipid with exogenously added lipid and an unfavourable orientation of a portion of the oxidase molecules for reaction with externally added substrate. On the other hand, substrate binding at the low affinity site was enhanced by incorporation of the oxidase into vesicles composed of either saturated phospholipids or asolectin. At pH 7.4 the local anesthetic dibucaine behaved as an uncompetitive inhibitor of the enzyme, while at pH 6.0 the inhibition pattern became mixed in type. Dibucaine had similar effects on both the isolated and incorporated enzyme except that, in general, the anesthetic caused less inhibition of the incorporated oxidase. It is postulated that positively charged anesthetic molecules act predominantly by competing with substrate for binding while non-charged anesthetic molecules interact with the oxidase boundary lipid to form non-productive complexes.
Cytochrome oxidase extracted from beef heart was incorporated into vesicles composed of soy bean phospholipids (asolectin). The oxidation of externally added cytochrome c by such vesicles is associated with proton uptake from the external medium. The rates of both cytochrome c oxidation and proton uptake were stimulated by addition of ionophores such as trifluoromethoxy carbonyl cyanide phenylhydrazone (FCCP), nigericin and valinomycin. These agents probably dissipate pH and/or electrical potential gradients which develop as a result of enzyme activity and which have a "restraining" influence on the turnover of the oxidase. Local anesthetics inhibited oxidase activity but had a much greater effect on the stimulated (ionophore-treated) than the unstimulated enzyme. In addition, pretreating proteoliposomes with local anesthetics completely prevented the stimulating effects of these ionophores. Based on this and previous studies, a model was developed in which local anesthetics interacted with the phospholipid component of the oxidase complex resulting in reduced internal electron transfer and dissociation of the oxidase from the regulatory role of the proton gradient.
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The cytochrome content of membranes isolated from seven species of cyanobacteria was investigated in terms of conventional difference spectra, carbon monoxide difference spectra, photoaction spectra and photodissociation spectra, and by extraction of acid-labile heme followed by spectral identification. In addition, the effect of various inhibitors and activators on the oxidation of horse heart cytochrome c by the membrane was studied. Both the spectral features and the properties of the cytochrome oxidase reaction catalysed by the membranes suggested the presence of a terminal oxidase strikingly similar to mitochondrial ferrocytochrome c:oxygen oxidoreductase (EC. 1.9.3.1).
Cytochrome oxidase (CO) histochemistry was used to study the organization of central auditory structures in the budgerigar (Melopsittacus undulatus). In contrast to prior studies in birds showing that acetylcholinesterase staining is most intense within hindbrain auditory structures CO staining was prominent at all levels of the auditory pathway including the thalamus (i.e. nucleus ovoidalis) and primary telencephalic auditory area (Field 'L'). Furthermore, CO staining clearly distinguishes the boundaries of Field 'L' from adjacent portions of the neostriatum intermedium pars dorsolateralis which do not receive input from the auditory thalamus. Thus CO staining can be used as a marker for distinguishing auditory and non-auditory portions of the avian telencephalon.
The cytochrome oxidase-lipid complex from beef heart mitochondria after various degrees of lipid extraction has been studied by electron spin resonance spectroscopy using spin labelled fatty acids and phospholipids. With cytochrome oxidase at the lowest lipid content (below 0.2 mg/mg of protein) i.e. at the level sometimes referred to as the "boundary" lipid, with spin labelled fatty acids an immobilized spectrum is observed. However, when spin labelled phospholipids are used under the same conditions, a mobile component is also observed. A quantitative estimation of the spectral components by computer analysis has been performed. The difference in behaviour of the spin labelled fatty acids and phospholipids suggest that the part of the residual lipid of the complex, which in some conditions is apparently immobilised, may exhibit in other conditons a considerably high degree of mobility.
Endogenous cytochrome oxidase activity within the mitochondria of neurons and neuropil was demonstrated histochemically under normal and experimental conditions. Since enzymatic changes were noted with chronic neuronal inactivity in the auditory system (Wong-Riley et al), the present study sought to examine functionally induced enzymatic changes in the visual system of kittens. Eight kittens were used experimentally: 5 had monocular lid suture for varying periods of time; one had binocular lid suture followed by monocular suture followed by binocular opening; two had monocular enucleation. All initial procedures were performed before eye opening. Materials from other normal kittens and cats were also used as controls. At the end of the experiments, the animals were perfused with aldehyde solutions and frozen sections of the brains were incubated for cytochrome oxidase activity (a detailed protocol was outlined). The results indicated that the deprivation caused by monocular suture produced a decrease in the cytochrome oxidase staining of the binocular segment of the deprived geniculate laminae. Enucleation yielded a greater decrease in the cytochrome oxidase activity in the affected geniculate laminae. However, the staining in the 'normal' lamina extended across the interlaminar border to include a row of surviving large cells in the 'denervated' lamina. The staining of the monocular segment appeared not to be affected by lid suture, but was decreased by enucleation. At the cortical level, lamina IV in area 17 of normal cats was stained darkly as a continuous band. Following lid suture, this pattern was replaced in part by alternating columns of light and dark staining, suggestive of ocular dominance columns. Thus, a decrease in neuronal activity due to reduced visual stimulation or destruction of the primary afferent nerves led to a significant decrease in the level of oxidative enzyme activity one to several synapses away.
The cytochrome c-cytochrome oxidase complex is formed when c reacts with cytochrome oxidase (Kuboyama et al. (1962) Biochem. Biophys. Res. Commun. 9, 534) and the cytochrome c1-cytochrome c complex is formed when c reacts with cytochrome c1 in the presence of the hinge protein (Kim, C.H. and King, T.E. (1981) Biochem. Biophys. Res. Commun. 101, 607). Both complexes are considered to be possible intermediates in electron transfer reaction between these cytochromes. Triply substituted modified cytochrome c by pyridoxal phosphate at lysine residues (Lys-79, 86 and one to be identified) abolishes both complex formations and electron transfer activity with succinate cytochrome c reductase or cytochrome oxidase.
The percent of mitochondrial protein contamination in nuclei decreased 10-fold (from 18 to 1.8%) under purification of protein-labelled mitochondria before their introduction into nuclei-free homogenate, cytochromoxidase activity being unchanged. Thus, cytochromoxidase activity of nuclei does not correlate with the amount of nuclei-adsorbed mitochondrial protein, which demonstrates the presence of nuclear cytochromoxidase independent on mitochondrial protein. Radioactivity of protein-labelled mitochondria is proportially distributed between globuline, deoxyribonucleoprotein, acid and residual nuclear proteins, as it is shown under fractionation of nuclei isolated from protein-labeled mitochondria containing homogenate. The comparison of mitochondrial protein contamination of nuclear membranes and their possible contamination with cytochromoxidase and suecinate-cytochrome-c-reducatase activities revealed that cytochromoxidase activity of nuclear membranes is twice higher and succinate-cytochrome-c-reductase activity is considerably lower than it can be referred to mitochondrial protein contamination. The ratio of cytochrome-c-oxidase and succinate-cytochrome-c-reductase activities in isolated nuclear membranes is 4-7 times as high as that in mitochondrial membranes under the same isolation procedure. The data obtained make possible to consider the cytochromoxidase activity of nuclear membranes to be really nuclear enzyme, and not a contominant of nucleipreparation with mitochondrial membranes.
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In vitro synthesized Pet1402 precursor protein is very rapidly and efficiently imported into isolated mitochondria. The import depends on a membrane potential and functional mtHsp70. The mitochondrial targeting sequence of the Pet1402 precursor protein is removed by the matrix processing peptidase MPP and the mature protein is firmly embedded in the inner mitochondrial membrane. The Pet1402 protein is required for the integrity of the cytochrome oxidase and ubiquinol-cytochrome c oxidoreductase complexes.
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To identify possible substrate-binding subunit(s) of yeast cytochrome c oxidase (ferrocytochrome c:oxygen oxidoreductase, EC 1-9-3-1), the purified enzyme was reacted with yeast iso-1-cytochrome c whose single free sulfhydryl group at position 107 had been activated with 5,5'-dithiobis(2-nitrobenzoate). The resulting cytochrome c derivative appeared to function as an "affinity-label" of cytochrome oxidase, since it rapidly inactivated the enzyme. Inactivation was competitively prevented by underivatized cytochrome c. When the "affinity-labeled" oxidase was analyzed by two-dimensional polyacrylamide electrophoresis in dodecyl sulfate (separation in the second dimension being carried out in the presence of excess sulfhydryl compound), it was found that the derivatized cytochrome c had specifically formed a mixed disulfide with the mitochondrially made subunit III (apparent molecular weight 24,000) of the oxidase. Similar results were obtained when underivatized iso-I-cytochrome c was crosslinked to the oxidase by oxidative disulfide bridge formation in the presence of ortho-phenanthroline and Cu++. These data indicate that the hydrophobic mitochondrially made subunit III of yeast cytochrome c oxidase is in close proximity to the cytochrome c binding site on the enzyme. Since cytochrome c and the mitochondrially made cytochrome oxidase subunit III are typical peripheral and integral membrane proteins, respectively, the present study suggests a useful approach for analyzing specific interactions between these different classes of membrane proteins.