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G Rotilio

Publications and source records attributed to G Rotilio.

At least 73 records · Page 4Linked to original sources

Identification of the residues responsible for the alkaline inhibition of Cu,Zn superoxide dismutase: a site-directed mutagenesis approach.

The catalytic rate of wild type, two single (Lys 120-->Leu, Lys 134-->Thr), and one double (Lys 120-->Leu-Lys 134-->Thr) mutants of Xenopus laevis B Cu,Zn superoxide dismutase has been studied by pulse radiolysis as a function of pH. The pH dependence curve of the wild-type enzyme can be deconvoluted by two deprotonation equilibria, at pH 9.3 (pK1) and at pH 11.3 (pK2). Catalytic rate measurements on single and double mutants indicate that pK1 is mainly due to the deprotonation of Lys 120 and Lys 134, with only a minor contribution from other surface basic residues, whereas pK2 is due to titration of the invariant Arg 141, likely coupled to deprotonation of the copper-bound water molecule. Accordingly, Brownian dynamics simulations carried out as a function of pH reproduce well the pH dependence of the catalytic rate, when the experimentally determined pKs are assigned to Lys 120, Lys 134, and Arg 141.

Animals↗

Crystallization and preliminary X-ray analysis of the monomeric Cu,Zn superoxide dismutase from Escherichia coli.

The Cu,Zn superoxide dismutase (Cu,Zn SOD) originally isolated from the periplasmic space of Escherichia coli has been cloned and overexpressed in the E. coli strain BMH 71/18. The protein has been purified as a single component of 17,000 Da, corresponding to one subunit of the common dimeric eukaryotic Cu,Zn SODs. Large crystals of the purified protein have been grown in the presence of polyethylene glycol 4,000 at pH 8.5; the crystals belong to the monoclinic space group P2(1), with unit cell constants a = 33.1 A, b = 52.6 A, c = 43.3 A, beta = 111.4 degrees. One SOD subunit is contained in the asymmetric unit, yielding a Vm value of 2.1 A3/Da; the crystals diffract X-rays beyond 2.0 A resolution.

Amino Acid Sequence↗

Copper-glutathione complexes under physiological conditions: structures in solution different from the solid state coordination.

The physiologically important copper complexes of oxidized glutathione have been examined by electron spin resonance (ESR) spectroscopy in aqueous solution at neutral pH. Low temperature measurements show that the Cu(II) binding site in oxidized glutathione has the same ligand arrangement as in copper complexes of S-methylglutathione, glutamine, glutamate and glycine. The site is composed of the amino nitrogens and the carboxyl oxygens of two gamma-glutamyl residues; there is no interaction with amide nitrogens, the sulphur bond or the glycyl carboxyl groups. At high metal to ligand ratios a binuclear species exists, in which each Cu(II) binds only to one gamma-glutamyl residue. The previously reported forbidden transition detected at g = 4 is due to non-specific aggregation and not to spin coupling of intramolecular sites. Liquid solution ESR spectra show the Cu(II)-glutathione complex has a lower mobility than the corresponding Cu(II)-S-methylglutathione species. From the degree of spectral anisotropy the complex with glutathione is calculated to exist as a dimer. These results demonstrate that the physiologically relevant complex between copper and oxidized glutathione in solution is completely different from the known solid state structure determined by crystallography.

Binding Sites↗

Effect of Lys-->Arg mutation on the thermal stability of Cu,Zn superoxide dismutase: influence on the monomer-dimer equilibrium.

The thermal stability of two single (K3R, K67R) and one double (K3R-K67R) mutants of Xenopus laevis B Cu, Zn superoxide dismutase has been studied to test Lys --> Arg substitution as an 'electrostatically conservative' strategy to increase protein stability. The K3R mutant displays an increased thermostability with respect to the wild-type enzyme, whilst a decreased stability was observed in the case of the K67R and K3R-K67R mutants. Concentration dependence of the apparent inactivation constant (kapp) of the latter mutants, as compared to that of the wild type enzyme and K3R mutant, indicates that their higher sensitivity to heat inactivation is due to a perturbation of the dimer association. These results are confirmed also by fluorescence anisotropy measurements of the internal probe Tyr149. The possible role of Arg67 in perturbing the dimer dissociation equilibrium toward the monomeric form is discussed.

Animals↗

N-[5-nitro-2-furfurylidene]-3-amino-2-oxazolidinone activation by the human intestinal cell line Caco-2 monitored through noninvasive electron spin resonance spectroscopy.

The pathways participating in the metabolism of the nitrofuran antimicrobial drug N-[5-nitro-2-furfurylidene]-3-amino-2-oxazolidinone (furazolidone) in intact cells were investigated in the human intestinal cell line Caco-2. One-electron reduction of furazolidone led to the formation of a free radical intermediate that could be monitored in dense cell suspensions by noninvasive electron spin resonance spectroscopy. The effects of enzyme inhibitors on the kinetics of radical production and decay were used to estimate the relative contribution of different enzymes to the reductive activation of the drug. Although many enzymes are known to reduce nitrofurans in vitro (e.g., xanthine oxidase, aldehyde oxidase, DT-diaphorase, mitochondrial redox chain components), their contributions were insignificant in living Caco-2 cells. The first reducing equivalent required for the formation of the nitroanion derivative of furazolidone appeared to be provided essentially by the microsomal cytochrome P450 reductase. This was confirmed through studies of the NADPH-dependent radical formation by microsomes. Differentiated Caco-2 cells, an established enterocyte model, showed only modestly increased radical formation and the same enzyme-specificity pattern as undifferentiated cells. Consistently, only a small increase in P450 reductase activity was found in differentiated cells, in contrast to the 10-fold increase seen in typical differentiation marker enzymes. With the electron spin resonance method that we describe, it is possible to distinguish between sites of bioactivation of redox active drugs in intact cells.

Animals↗

In vivo uptake of Cu, Zn superoxide dismutase. Morphological evidence for preferential endocytosis and accumulation by sinusoidal liver cells.

Bovine Cu, Zn superoxide dismutase (SOD), conjugated to colloidal gold, was intravenously administered to rats and its distribution studied by electron microscopy. Liver was the preferential site of accumulation of gold-labelled SOD. Among liver cells types, Kupffer and endothelial cells showed the presence of the protein earlier than hepatocytes. Uptake by kidney showed slower kinetics than liver. No uptake by heart could be detected. The gold-labelled SOD was localized inside coated pits, coated vesicles and other non-coated endocytic compartments. Absence of binding by BSA-gold complexes and competition between free SOD and the gold-labelled one demonstrated the specificity of the uptake process. Our morphological evidences suggest that in vivo internalization of SOD occurs most likely through receptor-mediated endocytosis.

Animals↗

The reaction mechanism of copper amine oxidase: detection of intermediates by the use of substrates and inhibitors.

Intermediate states in the catalytic mechanism of lentil copper amine oxidase have been investigated by ESR and optical spectroscopy. Using highly purified apo- and holoenzyme in combination with a poor substrate and a range of inhibitors, under both aerobic and anaerobic conditions, the single steps of the reaction mechanism can be slowed down or 'frozen' completely. In this way, a sequence of six intermediate species in the catalytic cycle has been established. Oxidative deamination of p-(dimethylamino)benzylamine is 5 x 10(5) times slower than for putrescine; the rate-limiting step is shown to be release of the aldehyde product. This process is not affected in the apoenzyme, but subsequent intramolecular electron transfer to form the characteristic free radical intermediate is completely blocked, and the apoenzyme is trapped as an aminoresorcinol species. Classic hydrazine and hydrazide inhibitors bind to the 6-hydroxydopa cofactor in the same way as active substrates, but rearrangements lead to formation of stable intermediate adducts at the step preceding release of aldehyde. The semicarbazide-6-hydroxydopa adduct is shown to bind simultaneously to Cu(II), providing the first direct evidence for localization of 6-hydroxydopa close to the copper site.

Aerobiosis↗

Metal uptake of recombinant cambialistic superoxide dismutase from Propionibacterium shermanii is affected by growth conditions of host Escherichia coli cells.

We constructed the complete nucleotide sequence coding for the cambialistic superoxide dismutase from Propionibacterium shermanii by ligation of a synthetic linker to a polymerase chain reaction amplification product obtained using degenerate primers. We set up an expression system yielding large amounts of recombinant superoxide dismutase in the cytoplasm of Escherichia coli and purified the enzyme from cells grown in a complex medium. The physicochemical properties of the recombinant enzyme were identical to those of the natural protein. Under anaerobic conditions the enzyme produced in an iron-supplemented medium incorporated iron as metal cofactor, while the enzyme purified from cells grown under aerobic conditions contained a variable amount of iron and manganese depending on metal availability. Functional equivalence of the two metals in this superoxide dismutase variant was indicated by independence of enzyme activity from Fe/Mn ratio.

Amino Acid Sequence↗

Non-oxidative loss of glutathione in apoptosis via GSH extrusion.

Reduced glutathione (GSH) has been hypothesized to play a role in the rescue of cells from apoptosis, by buffering an endogenously induced oxidative stress. We correlated GSH levels and apoptosis in U937 human monocytic cells induced to apoptosis by different agents. All treatments led to depletion of GSH concomitant with the onset of apoptosis. The loss was due to extrusion of GSH outside the cell, while GSSG was not accumulated in the apoptosing cells, nor was it found in the extracellular medium. Modulation of intracellular GSH level did not influence the overall extent of apoptosis. We conclude that glutathione loss in apoptosis is not necessarily preceded by an oxidative stress, and that GSH depletion alone is not sufficient to lead cells to apoptosis.

Antimetabolites, Antineoplastic↗

Isolation of an active and heat-stable monomeric form of Cu,Zn superoxide dismutase from the periplasmic space of Escherichia coli.

We have purified the Cu,Zn superoxide dismutase (CuZnSOD) from the periplasmic space of an Escherichia coli strain unable to synthesize MnSOD and FeSOD. Gel filtration chromatography evidenced that under all the experimental conditions tested the enzyme was monomeric. The catalytic activity of this CuZnSOD was comparable to that of other well characterized dimeric eukaryotic isoenzymes, indicating that a dimeric structure is not essential to ensure enzymatic efficiency. Furthermore the purified enzyme proved to be highly heat-stable and, uniquely among CuZnSODs, protease-sensitive. The latter property may explain the previously described lability of this protein in cell extracts.

Endopeptidase K↗

Kinetic and spectroscopic studies on a superoxide dismutase from Propionibacterium shermanii that is active with iron or manganese: pH-dependence.

Kinetic studies were performed on the superoxide dismutases isolated from the anaerobic bacterium Propionibacterium shermanii as active enzymes with either iron or manganese, which were naturally incorporated into the same molecule depending on the metal supply. Both the Fe- and Mn- forms showed decreasing activity with increasing pH. This suggests the protonation of some groups near the metal, possibly a metal-bound water molecule. Thus the kinetic behaviour of this superoxide dismutase is much more dependent on the protein structure than on the metal incorporated into the active site. The secondary structures of both forms were not influenced by variations in pH, whereas the EPR spectra of the Fe-superoxide dismutase changed as a function of pH. The EPR spectra apparently consist of two overlapping species. Steady-state experiments proved that all iron-containing species show catalytic activity, but the species predominating in the alkaline pH range displays a lower reaction rate. The Michaelis constant and maximal turnover number for the Fe-superoxide dismutase were determined polarographically as Km = 0.54 mmol/l and Vmax. = 2000 mol.s-1 at pH 9.5. These data indicate that, in anaerobic bacteria under physiological conditions, the superoxide dismutase is not saturable with O2-. and the catalytic activity is similar to that of metal-specific Fe- or Mn-superoxide dismutases from aerobic organisms.

Animals↗

Identification of the residues responsible for the alkaline inhibition of the activity of Cu,Zn superoxide dismutase: a study of native and chemically modified enzymes.

The pH dependence of the activity of Cu,Zn superoxide dismutases from bovine erythrocytes and shark liver was studied by pulse radiolysis in both the native enzymes and those chemically modified at lysine side chains. The study was aimed at identifying the residues responsible for the activity decrease at pH > 9, observed in all native Cu,Zn superoxide dismutases, and is based on the Lys-->Arg substitution present in the shark protein at position 134, which has been established to be critical for the catalytic efficiency of the enzyme. Both native enzymes display a pH dependence that can be deconvoluted by three deprotonation equilibria, at pH 9-9.5 (pK1), at pH 10.2 (pK2), and at pH 11.5 (pK3). pK1 is lacking in both the modified enzymes and thus can be assigned to activity-linked lysine residues. pK2 is clearly dominated by Arg134 in the modified shark enzyme and can be assigned to surface arginine residues. pK3 is shared by all four enzyme forms and is likely to be due to the invariant Arg141.

Amino Acid Sequence↗

Evidence for breaking of the active site dimetal cluster in Cu,Co superoxide dismutase upon copper reduction: a polarized absorption spectra study.

The polarized absorption spectra of the cobalt chromophore in orthorhombic crystals of bovine Cu,Co superoxide dismutase (SOD), bearing the copper ion in both the oxidized and the reduced states, are reported together with the calculated isotropic spectrum. All the absorption bands are polarized and a spectral shift, from 598 nm to 588 nm, is observed in only one of them upon copper reduction. This shift, previously described in solution studies, is unequivocally assigned to the detachment of the copper side from the imidazolate bridging copper and cobalt ions in the oxidized catalytic center. At variance with a recent X-ray diffraction investigation on Cu(I),Zn SOD, this result indicates that reduction of copper in Cu,Co SOD is associated to the breaking of the dimetal cluster also in the crystalline state.

Animals↗

Modulation of the catalytic rate of Cu,Zn superoxide dismutase in single and double mutants of conserved positively and negatively charged residues.

The catalytic rate of four single and three double mutants of Xenopus laevis Cu,Zn superoxide dismutase B, neutralized at Lys120, Asp130, Glu131, and Lys134, has been determined by pulse radiolysis as a function of ionic strength. Neutralization of Glu131 increases the catalytic rate by 80% at low ionic strength, but the effect is reduced to 50% at physiological ionic strength. The rate is unperturbed upon neutralization of Asp130, while neutralization of either of the two lysines drastically decreases the enzyme activity. The Lys120Leu-Lys134Thr and Lys134Thr-Asp130Gln double mutations have an additive and a compensative effect, respectively, on the activity values, while neutralization of the Glu131-Lys134 pair, which also has a compensative effect, gives rise to a faster enzyme at any ionic strength value. The effects observed in the single Asp130Gln and Lys120Leu mutants differ from those reported on human or bovine enzymes [Getzoff et al. (1992) Nature (London) 358, 347-351; Sines et al. (1990) Biochemistry 29, 9403-9412], indicating that some residues occupying the same position in the linear sequence of different Cu,Zn superoxide dismutases have a different functional weight. Our results also suggest that the strategy of multiple charge mutation may be a promising approach in order to increase the catalytic rate of Cu,Zn SODs independently of ionic strength.

Animals↗

A two-dimensional NMR study of bovine Cu, Co superoxide dismutase. Further assignments in the region surrounding the active site.

Bovine Cu, Co superoxide dismutase has been investigated by two-dimensional NMR with regard to the resonances arising from protons that surround the copper site. These protons have magnetic properties that are intermediate between those belonging to residues coordinated to the paramagnetic metal center and the diamagnetic residues. Nuclear Overhauser enhancement spectroscopy spectra have been recorded by using a new procedure and with different mixing times and different spectral widths, in order to observed dipolar connectivities between isotropically shifted and diamagnetic resonances. Scalar-correlated spectra were obtained with both correlation spectroscopy and total-correlation spectroscopy experiments. The original X-ray coordinates of the Cu, Co enzyme were used in order to obtain the appropriate interproton distances. The data allowed us to assign more than 20 new resonances to protons which cover a wide region around the copper ion, including two protons belonging to the catalytically important Arg141 residue. The results represent significant progress in the effort to elucidate the three-dimensional features of the region surrounding the active site of Cu, Zn superoxide dismutase in solution and a tool for a deeper investigation of the reaction mechanism of the enzyme.

Animals↗

Evidence for antiviral activity of glutathione: in vitro inhibition of herpes simplex virus type 1 replication.

The role of glutathione (GSH) in the in vitro infection and replication of human herpes simplex virus type 1 (HSV-1) was investigated. Intracellular endogenous GSH levels dramatically decreased in the first 24 h after virus adsorption, starting immediately after virus challenge. The addition of exogenous GSH was not only able to restore its intracellular levels almost up to those found in uninfected cells, but also to inhibit > 99% the replication of HSV-1. This inhibition was concentration-dependent, not related to toxic effects on host cells and also maintained if the exogenous GSH was added as late as 24 h after virus challenge, i.e. when virus infection was fully established. Electron microscopic examination of HSV-1-infected cells showed that GSH dramatically reduced the number of extracellular and intracytoplasmic virus particles, whereas some complete nucleocapsids were still detected within the nuclei of GSH-treated cells. Consistent with this observation, immunoblot analysis showed that the expression of HSV-1-glycoprotein B, crucial for the release and the infectivity of virus particles, was significantly decreased. Data suggest that exogenous GSH inhibits the replication of HSV-1 by interfering with very late stages of the virus life cycle, without affecting cellular metabolism.

Animals↗

A potent chain-breaking antioxidant activity of the cardiovascular drug dipyridamole.

The antioxidant properties of the antithrombotic drug dipyridamole have been studied using lipid oxidation assays based on the generation of peroxy radicals by azo compounds. Dipyridamole was observed to prevent both peroxidation of arachidonic acid micelles in aqueous solution and peroxidation of methyl linoleate in organic solvents; in contrast to vitamin E, dipyridamole was found to scavenge both hydrophilic and hydrophobic radicals. The rate constant for the reaction of dipyridamole with methyl linoleate peroxyl radicals at 37 degrees C was calculated as 2 x 10(6) M-1s-1, in comparison to 1 x 10(6) M-1s-1 of vitamin E under the same conditions. The antioxidant efficiency of the drug was confirmed in experiments with radiolysis-induced oxidation and through measurements of malondialdehyde production and diene formation. As a result of radical scavenging, a relatively stable dipyridamole radical was formed that could be detected by electron spin resonance spectroscopy. The particular antioxidant properties of dipyridamole may explain the vasodilating and antiplatelet effects of this cardiovascular drug.

Antioxidants↗

Immunocytochemical study of binding and internalization of carrier-free Cu, Zn Superoxide dismutase by cultured rat hepatocytes.

Internalization of superoxide dismutase-gold complex by isolated liver cells has been shown to occur via receptor-mediated endocytosis. As colloidal gold may act as a carrier in this process, carrier-free human Cu, Zn superoxide dismutase was incubated with cultured rat hepatocytes. Light and electron microscopy immunocytochemistry revealed the binding and internalization of free native human Cu, Zn superoxide dismutase (hSOD) by cultured rat hepatocytes. Immunocytochemical demonstration of binding to the cell surface (hepatocytes were incubated with hSOD for 15 min. at 4 degrees C) and internalization (hepatocytes were incubated with hSOD for 15, 30 and 60 min. at 37 degrees C) of the carrier-free superoxide dismutase was achieved by using a monoclonal antibody selectively reacting with the human protein. The results obtained indicate that carrier-free superoxide dismutase is bound and internalized by rat hepatocytes in primary cultures and that the enzyme can enter the cells via a receptor-mediated endocytosis pathway. We followed the binding and the internalization process of hSOD thus validating the use of the native enzyme in the therapy of free radical-related diseases.

Animals↗