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J Aronovitch

Publications and source records attributed to J Aronovitch.

15 recordsLinked to original sources

Opposing effects of nitroxide free radicals in Escherichia coli mutants deficient in DNA repair.

Nitroxide free radicals have been previously shown to function as superoxide dismutase (SOD) mimics and to protect bacterial and mammalian cells against oxidative damage, particularly from superoxide and hydrogen peroxide. Although nitroxides are generally considered to be non-toxic nor mutagenic, there is no agreement regarding their potential adverse effect. Some toxic effects were observed upon using high concentration of six-membered ring derivatives. Conflicting evidence has also been reported regarding the mutagenic activity of nitroxides toward Salmonella typhimurium. It was also demonstrated that nitroxides exert two opposing effects on exonuclease III deficient cells of Escherichia coli upon exposure to naphthoquinones. The attempts to use nitroxides as contrast agents in nuclear magnetic resonance imaging (MRI) and as a new class of anti-oxidants underscore the need to examine their potential adverse effects. Since nitroxides protected xthA cells from DNA scission caused by H2O2, it was anticipated that they would provide even greater protection for recA DNA repair-deficient cells of E. coli, which are more sensitive to H2O2-induced oxidative stress. The results of the present study showed that: (a) nitroxides exert bactericidal and bacteriostatic effects on recA but not on xthA or wild-type E. coli K12 cells; (b) nitroxides and H2O2 act synergistically on recA cells, both under aerobic and hypoxic conditions; (c) the nitroxide-induced toxicity in recA cells and the synergistic effect with H2O2 were not accompanied by a decrease in the cellular level of reduced glutathione; (d) TEMPAMINE protected against DNA scission induced by H2O2 and 1,10-ortho-phenanthroline chelate of Cu(II) in xthA cells, but potentiated DNA double-strand breakage in recA cells.

2,2'-Dipyridyl↗

Verapamil increases the bacteriostatic and bactericidal effects of adriamycin on Escherichia coli.

The purpose of this study was to evaluate the effect of verapamil on adriamycin-resistant and -sensitive Escherichia coli bacterial strains. Two E. coli strains: B-SR9 and K12-KL16 were incubated with adriamycin in various concentrations in the presence or absence of verapamil. Growth and killing rates were measured using optical densities and colonogenic assays. Transmembrane transport capacity was evaluated by measuring radioactively labelled leucine uptake and intracellular potassium concentrations. While adriamycin (ADR) showed both bacteriostatic and bactericidal effects upon the two bacterial strains, the K12 strain was significantly more resistant to the drug than its peer. Subtoxic concentrations of verapamil augmented these effects in both strains. Verapamil affected bacterial transmembrane transport activity and caused potassium leakage through the cell membrane. Simultaneous exposure to adriamycin and verapamil resulted in rapid, massive damage to membrane functions, indicating accelerated killing rate. The authors concluded that verapamil acts as a potentiator of adriamycin's cytotoxicity in E. coli bacteria in a manner similar to that in multidrug resistant mammalian tumour cells. This observation suggests that the mechanisms of resistance to the drug may be similar in both species.

Antibiotics, Antineoplastic↗

Radiation-induced generation of chlorine derivatives in N2O-saturated phosphate buffered saline: toxic effects on Escherichia coli cells.

The radiolysis of aqueous chloride solutions has been investigated using pulse and steady-state methods. We have found a correlation between the yields of Cl2- and HOCl formed in pulse-irradiated N2O-saturated solutions. The yields increased with the increasing concentrations of Cl- and phosphate. Phosphate enhanced the yield of Cl2- in neutral solutions because of a proton transfer from H2PO4- to HOCl- with a rate constant of (2.6 +/- 0.5) x 10(8) M-1s-1. HOCl could not be detected in pulse-irradiated He or air-saturated, phosphate-buffered saline (PBS) solutions or in gamma-irradiated N2O, He, or air-saturated PBS solutions. The results are discussed in light of previously suggested mechanisms for the formation and decay of Cl2-. Pulse-irradiated N2O-saturated PBS solutions have a lethal effect on Escherichia coli cells, which is proportional to the amount of HOCl in the solutions. Gamma-irradiation of cells in N2O-saturated PBS solution also raises the radiosensitivity of the cells, although HOCl does not accumulate in this system. The effects of the radiation-induced toxic products on E. coli cells are similar to the effects of NaOCl. The cell membrane is probably the site of physiological injury induced by the radiation products.

Adenosine Triphosphate↗

Nitroxides block DNA scission and protect cells from oxidative damage.

The protective effect of cyclic stable nitroxide free radicals, having SOD-like activity, against oxidative damage was studied by using Escherichia coli xthA DNA repair-deficient mutant hypersensitive to H2O2. Oxidative damage induced by H2O2 was assayed by monitoring cell survival. The metal chelator 1,10-phenanthroline (OP), which readily intercalates into DNA, potentiated the H2O2-induced damage. The extent of in vivo DNA scission and degradation was studied and compared with the loss of cell viability. The extent of DNA breakage correlated with cell killing, supporting previous suggestions that DNA is the crucial cellular target of H2O2 cytotoxicity. The xthA cells were protected by catalase but not by superoxide dismutase (SOD). Both five- and six-membered ring nitroxides, having SOD-like activity, protected growing and resting cells from H2O2 toxicity, without lowering H2O2 concentration. To check whether nitroxides protect against O2.(-)-independent injury also, experiments were repeated under hypoxia. These nitroxides also protected hypoxic cells against H2O2, suggesting alternative modes of protection. Since nitroxides were found to reoxidize DNA-bound iron(II), the present results suggest that nitroxides protect by oxidizing reduced transition metals, thus interfering with the Fenton reaction.

Cell Survival↗

Bactericidal activity of catecholamine copper complexes.

Washed or growing E. coli cells are killed by epinephrine, norepinephrine or dopamine in the presence of non lethal concentrations of Cu(II). Killing is enhanced by anoxia and by sublethal concentrations of H2O2. The rate of killing is proportional to the rate of catecholamine oxidation. The copper epinephrine complex binds to E. coli cells, induces membrane damage and depletion of the cellular ATP pool. The cells may be partially protected by SOD or catalase but not by OH radical scavengers. Addition of H2O2 to cells which were sensitized by preincubation with the epinephrine-copper complex, causes rapid killing and DNA degradation. Sensitized cells are not protected by BSA.

Adenosine Triphosphate↗

Hydrogen peroxide dependent oxidative degradation of DNA by copper epinephrine.

The hydrogen peroxide dependent oxidation of the epinephrine-copper complex to adrenochrome is mediated by free copper ions. The oxidation is enhanced by chloride ions and by the presence of serum albumin. The reaction is not inhibited by SOD or by hydroxyl radical scavengers. The 2:1 epinephrine or dopamine:Cu(II) complexes are able to bind to DNA and to catalyze its oxidative destruction in the presence of hydrogen peroxide. The DNA-epinephrine-Cu(II) terenary complex has characteristic spectral properties. It has the capacity to catalyze the reduction of oxygen or H2O2 and it preserves the capacity over a wide range of complex:DNA ratios. The rate of DNA clevage is proportional to the rate of epinephrine oxidation and the rate determining step of the reaction seems to be the reduction of free Cu(II) ions. The ability to form redox active stable DNA ternary complexes, suggests that under specific physiological conditions, when "free" copper ions are available, catecholamines may induce oxidative degradation of DNA and other biological macromolecules.

Copper↗

Catecholamines and virulence of Cryptococcus neoformans.

Cryptococcus neoformans was unable to utilize catecholamines (epinephrine, norepinephrine, or dopamine) as sole carbon or nitrogen sources. Therefore, catecholamines are not essential growth factors for this fungus and the brain is not a preferred nutritional niche for its growth with regard to catecholamines. To establish whether the brain is a survival niche for C. neoformans and to explain the role of phenoloxidase as a virulence factor, a wild-type strain that had phenoloxidase activity and mutants which lacked it were exposed to an epinephrine oxidative system, and the survival of both strains was tested. The oxidative system contained epinephrine as an electron donor, Fe3+ as the catalytic transition metal ion, and hydrogen peroxide as an electron acceptor. The wild-type strain was found to be resistant to this oxidative system, whereas under the same conditions the mutant strain was susceptible and its survival decreased at a rate of 4 logs per h. Damage to high-molecular-weight DNA seems to be a causative factor of cell death after exposure of the mutants to the oxidative system. These results suggest that C. neoformans may survive in the brain because of its ability to utilize catecholamines for melanogenesis and thus neutralize the harmful effects of catecholamines which are manifested in the presence of hydrogen peroxide and transition metal ions. The role of phenoloxidase in resistance to the epinephrine oxidative system is also discussed.

Catechol Oxidase↗

Ascorbic acid oxidation and DNA scission catalyzed by iron and copper chelates.

The asorbic acid (AH-) auto-oxidation rates catalyzed by copper chelates of 1,10-phenanthroline (OP) or by iron chelates of bleomycin (BLM) are only slightly higher than the oxidation rates catalyzed by the metal ions. AH- oxidation in the presence of DNA is accompanied by degradation of the DNA. The rates of DNA scission by the metal chelates are markedly higher than the rates induced by the free metal ions. AH- oxidation is slowed down in the presence of DNA which forms ternary complexes with the chelates. The ternary complexes react slowly with AH- but induce DNA double strand breaks more efficiently than the free metal chelates. With OP, DNA is degraded by the reaction of the ternary complex, DNA-(OP)2Cu(I), with H2O2. AH- oxidation in the presence of DNA was biphasic, showing a marked rate increase after DNA was cleaved. We suggest that this sigmoidal pattern of the oxidation curves reflects the low initial oxidative activity of the ternary complexes, accelerating as DNA is degraded. Using O2- produced by pulse radiolysis as a reductant, we found that AH- oxidation with (OP)2Cu(II) induced more DNA double strand breaks per single strand break than bipyridine-copper. The site specific DNA damaging reactions indicated by these results are relevant to the mechanism of cytotoxic activities of bleomycin and similar antibiotics or cytotoxic agents.

Ascorbic Acid↗

Immunoadsorption of histidinol dehydrogenase in the presence of urea.

Urea inhibits the activity of histidinol dehydrogenase from Escherichia coli B, prevents precipitation of the enzyme by specific antibodies and dissolves immunoprecipitates which were formed in the absence of urea. However, immunoadsorption of the enzyme to Sepharose-bound antibodies can take place in the presence of high concentrations (5-8 M) of urea. The immobilized antibody-bound enzyme exhibits almost full activity after removal of the urea and is inhibited by soluble specific antibodies in the presence of urea. The possibility of using immunoadsorption in the presence of urea for the study of insoluble proteins is discussed.

Alcohol Oxidoreductases↗

On the cytotoxicity of vitamin C and metal ions. A site-specific Fenton mechanism.

The toxicity of ascorbate towards phage lambda and the phages T2-T7 has been investigated. At room temperature the T-odd and lambda bacteriophages are highly susceptible to ascorbate-induced damage, whereas the T-even phages are practically resistant. The toxicity of ascorbate is dependent on the presence of copper (or iron) and oxygen, although oxygen is not required in the presence of H2O2. Hydrogen peroxide is essential for the ascorbate-induced phage inactivation and the damage is prevented by catalase. At the concentrations used, most of the copper ions are bound to the phage particles. Chelating agents such as EDTA or histidine fully protect the phages, whereas salicylate only reduces the rate of phage inactivation. OH scavengers such as sucrose, formate, mannitol, tert-butyl alcohol or poly(ethylene glycol) have no protective effect. Experiments with DNA labeled phages indicate that both phage adsorption and DNA injection are impaired as a result of the exposure to ascorbate and copper. The failure to express the viral genetic information as a result of single and double-strand breaks in the DNA, probably also contribute to the loss of the plaque-forming ability of the phages. The results are interpreted in terms of a 'site-specific' Fenton mechanism according to which the binding of the transition metal ions to the biological target is a prerequisite for the production of damage. The bound metal ion is reduced either by O(2), ascorbate or other reductants and is subsequently reoxidized by H2O2 yielding OH. radicals. This cyclic redox reaction of the metal generates OH. radicals which react with vital macromolecules with a high probability of causing 'multi-hit' damage. This 'site-specific' formation of OH. radicals, which takes place near the target molecules, accounts both for the high damaging efficiency and for the failure of OH. scavengers to protect against it.

Ascorbic Acid↗

Purification and properties of histidinol dehydrogenase from Escherichia coli B.

Histidinol dehydrogenase has been purified from a derepressed mutant of Escherichia coli B. A molecular weight of about 91,000 was estimated by gel filtration. The native enzyme seems to be composed of two similar subunits which have a molecular weight of 52,000 as determined by sodium dodecyl sulphate-polyacrylamide gel electrophoresis. The pI of the enzyme as determined by isoelectric focusing is 4.75. The enzyme is maximally active at pH 9.5. It is highly specific for NAD+ and histidinol, with a Km (NAD+) of 0.57 mM and a Km (histidinol) of 14 microM. Mn2+ is required for maximal activity. The enzyme is completely inactivated by 8 M-urea but regains its activity very quickly upon removal of the urea. Mn2+ and histidinol protect the enzyme from heat inactivation.

Alcohol Oxidoreductases↗