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Biomedical subjects

J Torreilles

Publications and source records attributed to J Torreilles.

At least 19 recordsLinked to original sources

[Modulation of respiratory activity of renal macrophages in sea bass (Dicentrarchus labrax) by chronic exposure to sublethal concentration of ammonia].

Sea bass (Dicentrarchus labrax) were exposed for 71 days to three different ammonia concentrations corresponding to 0, 15 and 25% of the lethal threshold concentration causing the death of half a fish population in 96 hours. The study of the respiratory burst from sea bass renal macrophages showed that the luminol dependent chemiluminescence (CL) emitted following stimulation with mezerein is higher when fishes were previously exposed to ammonia. Therefore, it seemed that chronically exposure of fishes to sublethal concentrations of ammonia primed their renal macrophages to secrete higher amounts of oxygen activated species during respiratory burst, even several days after the transfer of fishes into a standard environment. The stimulated-macrophage CL was partially inhibited by sodium azide, superoxide dismutase and a nitric oxide-synthesis inhibitor, the N5-(-1-iminoethyl)-L-ornithine monochloride, showing that hydrogen peroxide, superoxide anions and nitric oxide were released by renal macrophages from sea bass during the respiratory burst. These reactive species could react together to generate peroxynitrite, a strong bactericidal agent.

Ammonia

L-Arginine infusion after ischaemia-reperfusion of rat kidney enhances lipid peroxidation.

To assess the role of superoxide (O2-) and nitric oxide (NO) in ischaemic-reperfusion-induced acute renal failure, we investigated whether an activation of the L-arginine-NO pathway contributes to ischaemia-reperfusion-induced kidney membrane peroxidation by measurement of 4-hydroxynonenal (HNE) content in anaesthetized rats submitted to acute renal ischaemia. Following ischaemia-reperfusion injury, renal blood flow (RBF) was significantly reduced, while renal vascular resistance was significantly increased. Infusion of neither L-arginine nor D-arginine led to a recovery of RBF. L-Arginine, but not D-arginine, caused a significant increase in HNE accumulation in the ischaemic kidney. L-Arginine infusion enhanced the degree of lipid peroxidation afforded by ischaemia-reperfusion injury in the kidney suggesting that products of the endogenous L-arginine-NO pathway may react with O2- to initiate lipid peroxidation.

Aldehydes

Potential role of the peroxidase-dependent metabolism of serotonin in lowering the polymorphonuclear leukocyte bactericidal function.

Serotonin (5-hydroxytryptamine, 5-HT) significantly and dose-dependently suppressed the luminol-enhanced chemiluminescence (CL) signal generated by polymorphonuclear leukocytes (PMN) activated with phorbol myristate acetate (PMA), but did not modify either lucigenin-enhanced CL or the reduction of superoxide dismutase-inhibitable cytochrome c. Moreover, stimulation of PMNs previously incubated with 5-HT resulted in a threefold increase in 5-HT equivalents bound to the proteins of PMN. The addition of catalase or sodium azide substantially reduced this binding. The present results suggest that 5-HT metabolism is mediated by H2O2 and myeloperoxidase (MPO) released by activated PMNs. Hence 5-HT could lower the bactericidal function of these cells by competition with hypochlorite formation from halides and MPO/H2O2.

Acridines

[Reactive oxygen species and defense mechanisms in marine bivalves].

The main results published on the production of reactive oxygen intermediates by hemocytes and digestive glands of marine bivalves such as mussels, oysters or clams have been reviewed and discussed. Mussel and oyster hemocytes respond to appropriate stimuli with a burst of respiratory activity and the generation of reactive oxygen intermediates in a manner resembling the respiratory burst of mammalian phagocytes. However, interspecies differences in hemocytes-mediated antimicrobial defense mechanisms occur since clam hemocytes do not show any increase of reactive oxygen intermediate production upon similar stimulations. Hepatopancreatic gland of bivalves, as mammalian and fish liver produce reactive oxygen species during the one-electron reduction of xenobiotics, and mechanistic differences appear between bivalves and mammals. Thus, it appears that, in spite of some interspecies differences, the generation of cytotoxic reactive oxygen species is a general protective mechanism of most, if not all, animal species.

Animals

Nitration of tyrosyl-residues from extra- and intracellular proteins in human whole blood.

We measured the amounts of tyrosine and 3-nitrotyrosine (NO2-tyrosine) in proteins of plasma and polymorphonuclear leukocytes (PMN) from human whole blood before and after activation with phorbol ester (PMA) or calcium ionophore (A 23187). In unstimulated blood, no significant nitration of tyrosine was detected into PMN proteins, but a NO2-tyrosine/tyrosine ratio of 0.7% was detected in plasma proteins. When blood was activated with PMA, the NO2-tyrosine/tyrosine ratio stayed at 0.7% in plasma proteins, but it increased to 1.4% in PMN proteins, indicating a peroxynitrite production within the cells. In blood activated with calcium ionophore, the NO2-tyrosine/tyrosine ratio was 1.2% in plasma proteins and 2.1% in PMN proteins. Incubation of blood with a NO-synthase inhibitor before stimulation inhibited such a protein tyrosine nitration. To ensure that NO2-tyrosine detected in intracellular proteins did not result from the enzymatic posttranslational tyrosylation of PMN proteins, the incorporation of 14C labeled tyrosine into PMN proteins after activation with PMA or A23187 was studied. The addition of a 10 fold excess of NO2-tyrosine did not modify the course of protein tyrosylation. Because tyrosine nitration is an irreversible reaction, NO2-tyrosine could be accumulated into proteins and could act as a cumulative index of peroxynitrite production.

Blood Proteins

[Protection of oxidation of LDL by nitric oxide: implication in atherogenesis].

Superoxide (O2-) and nitric oxide (.NO) are free radicals which are known to react together leading to peroxynitrite anions that can decompose to form nitrogen dioxide (NO2) and hydroxyl radical (OH degrees). .NO has been reported to have a dual effect on LDL oxidation (pro or antioxidant). In the present study we have investigated in vitro the action of exogenous .NO on human LDL oxidation promoted by oxygen, copper or (2,2'-azobis (2-aminodinopropane hydrochloride)(ABAP). .NO was given as NO donnor (sodium nitroprussiate or S-nitroso-L-glutathione) from 10 to 500 microM. Oxidation of LDL was measured by monitoring continuously conjugated diene formation at 234 nm. Exogenous .NO inhibited in a dose dependent manner the progress of spontaneous LDL oxidation. Copper--or ABAP--induced oxidation were characterized by lag, propagation and decomposition phases. Exogenous .NO decreased the propagation rate of LDL oxidation and the level of maximal diene production. These effects are different of these of alpha-tocopherol, a chain-breaking antioxidant. In our experimental conditions, .NO exhibited antioxidant activities. In vivo, the continuous release of endogenous .NO could protect LDL from cell-induced oxidation.

Amides

[Does nitric oxide stress exist?].

Ten years ago, the term "oxidative stress" (sigma -O2) was created to define oxidative damage inflicted to the organism. This definition brings together processes involving reactive oxygen species production and action such as free radical production during univalent reduction of oxygen within mitochondria, activation of NADPH-dependent oxidase system on the membrane surface of neutrophils, flavoprotein-catalyzed redox cycling of xenobiotics and exposure to chemical and physical agents in the environment. Since the discovery of the nitric oxide biosynthetic pathway, the deleterious effects of uncontrolled nitric oxide generation are generally classified as oxidative stress. Indeed, products of the reaction of NO and superoxide lead to oxidants such as peroxinitrite, nitrogen dioxide and hydroxyl radical, which are involved in mechanisms of cell-mediated immune reactions and defence of the intracellular environment against microbiol invasion. However NO can also regulate many biological reactions and signal transduction pathways that lead to a variety of physiological responses such as blood pressure, neurotransmission, platelet aggregation, endothelin generation or smooth muscle cell proliferation. Then the uncontrolled NO production can lead to a variety of physiological and pathophysiological responses similar to a Nitric Oxide Stress: activation of guanylate cyclase and production of cGMP: overstimulation of the inducible L-arginine to L-citrulline and NO pathway by bactericidal endotoxins and cytokines has been shown to promote undesired increases in vasodilatation, which may account for hypotension in septic shock and cytokine therapy. stimulation of auto-ADP-ribosylation and modification of SH-groups of glyceraldehyde-3-phosphate dehydrogenase in a cGMP-independent mechanism: by this way, NO in excess can strongly inhibits this important glycolytic enzyme and reduce the cellular energy production. inhibition of ribonucleotide reductase: extensive inhibition of this key enzyme in DNA synthesis in the presence of large amounts of NO could lead to important antiproliferative effects; inhibition of cytochrome P450-dependent metabolism: in Kupffer cells and hepatocytes, LPS-induced overproduction of NO has been shown to inhibit cytochrome P450-dependent metabolism and to mediate the suppression of hepatic metabolism. Moreover, NO synthetized in the peripheral nervous system is known to mediate nonadrenergic noncholinergic (NANC) neurotransmission. Overstimulation of NO synthases might therefore contribute to pathophysiological states such as: gastrointestinal motility, reflux oesophagitis, asthma, adult respiratory distress syndrome (ARDS) and chronic pulmonary artery hypertension. To these NO-mediated biological functions, one could add the biological effects of NO-derivatives such as N-nitrosocompounds, which act as carcinogenic agents, or C-nitrosocompound which were recently used as "zinc-ejecting" agents to inhibit HIV-1 infectivity of human T-lymphocytes.(ABSTRACT TRUNCATED AT 400 WORDS)

Free Radicals

[Nitric oxide and lipid peroxidation].

Nitric oxide (NO) is a free radical produced enzymatically in biological systems from the guanidino group of L-arginine. Its large spectrum of biological effects is achieved through chemical interactions with different targets including oxygen (O2), superoxide (O2o-) and other oxygen reactive species (ROS), transition metals and thiols. Superoxide anions and other ROS have been reported to react with NO to produce peroxynitrite anions that can decompose to form nitrogen dioxide (NO2) and hydroxyl radial (OHo). Thus, NO has been reported to have a dual effect on lipid peroxidation (prooxidant via the peroxynitrite or antioxydant via the chelation of ROS). In the present study we have investigated in different models the in vitro and in vivo action of NO on lipid peroxidation. Copper-induced LDL oxidation were used as an in vitro model. Human LDL (100 micrograms ApoB/ml) were incubated in oxygene-saturated PBS buffer in presence or absence of Cu2+ (2.5 microM) with increasing concentrations of NO donnors (sodium nitroprussiate or nitroso-glutathione). LDL oxidation was monitored continuously for conjugated diene formation (234 nm) and 4-hydroxynonenal (HNE) accumulation. Exogenous NO prevents in a dose dependent manner the progress of copper-induced oxidation. Ischaemia-reperfusion injury (I/R), characterized by an overproduction of ROS, is used as an in vivo model. Anaesthetized rats were submitted to 1 hour renal ischaemia following by 2 hours of reperfusion. Sham-operated rats (SOP) were used as control. Lipid peroxidation was evaluated by measuring the HNE accumulated in rats kidneys in presence or absence of L-arginine or D-arginine infusion. L-arginine, but not D-arginine, enhances HNE accumulation in I/R but not in SOP (< 0.050 pmol/g tissue in SOP versus 0.6 nmol/g tissue in I/R), showing that, in this experimental conditions, NO produced from L-arginine, enhances the toxicity of ROS. This study shows that the pro- or antioxydant effects of NO are different in vivo and in vitro and could be driven by environmental conditions such as pH, relative concentrations of NO and ROS, ferryl species.

Animals

[Casein-derived peptides can promote human LDL oxidation by a peroxidase-dependent and metal-independent process].

The results of the present study revealed that peptides derived from bovine casein hydrolysates can promote peroxidase-dependent oxidation of human low-density lipoproteins (LDL). The reaction was independent of the free metal ions but required casein-derived peptides with tryosyl-residues, implying that the tyrosyl radical is a diffusible catalyst that conveys oxidizing potential from the active site of the heme enzyme to LDL lipids. This mechanism is independent of the peroxidase used to oxidize tyrosyl residues since myeloperoxidase and horseradish peroxidase mediate a similar LDL peroxidating process. Vitamin E, ascorbic acid, butylated hydroxytoluene and reduced glutathione delayed LDL oxidation and were consumed during the reaction, they transfered hydrogen to repair tyrosine.

Antioxidants

[Free radicals and natural or synthetic chemiluminescent systems].

Studies of chemical mechanisms involved in the reactivity of natural or synthetic chimioluminescent compounds show that chimioluminescent phenomena result always from redox reactions associated with energy transfers and often with electron transfers. Therefore, analytical methods based on chimioluminescence are very well adapted to detect and evaluate the free radicals: reactive oxygen species, nitric oxide and non oxygenated radicals, which are generated in biological systems.

Animals

[Measurement of nitric oxide and biological systems].

Interest in NO measurement strongly increased with the discovery that NO is endogenously produced by living tissues. This review describes the major techniques for quantification of NO and derivatives in biological models.

Electron Spin Resonance Spectroscopy

Boomerang effect between [Met]-enkephalin derivatives and human polymorphonuclear leukocytes.

[Met]-enkephalin or its precursor, pre-[Met]-enkephalin, were exposed to activated oxygen species produced by human phorbol myristate acetate (PMA)-stimulated polymorphonuclear leukocytes (PMNs) and then analyzed by high-pressure liquid chromatography (HPLC). The chromatograms recorded at the tyrosine maximum wavelength (lambda em 300 nm and lambda ex 280 nm) showed the formation of new peptides by oxidation of methionyl residue in position 5 and ortho, meta, or para hydroxylation of phenylalanyl residue in position 4. The chromatograms recorded at the dityrosine maximum wavelength (lambda em 400 nm and lambda ex 325 nm) showed the formation of new dimeric peptides which contained two [Met]-enkephalin-derivatives linked by a dityrosyl group. These new peptides were tested for chemiluminescence response to PMA-stimulated PMNs. [Met]-enkephalin, pre-[Met]-enkephalin, and the methionyl-oxidized derivatives suppressed the PMA-induced respiratory burst of PMNs. Conversely, after hydroxylation by activated oxygen species released by stimulated PMNs, these peptides enhanced the PMA-induced respiratory burst of PMNs. In the same conditions, dimeric peptides had no effect.

Amino Acid Sequence

Neutrophil-catalysed dimerisation of tyrosyl peptides.

Evidence is given that tyrosyl-peptides are dimerised by polymorphonuclear leukocytes leading to a new family of compounds. The products formed are homo- and hetero-dimeric peptides with linkage between the tyrosyl residues. This corresponds to a dityrosine structure as determined by analytic and spectroscopic data.

Amino Acid Sequence

4-Hydroxynonenal content lower in brains of 25 month old transgenic mice carrying the human CuZn superoxide dismutase gene than in brains of their non-transgenic littermates.

Basic peroxidation in brains of normal 2 month old mice was compared to that in brains of 25 month old mice by measurement of 4-hydroxy-2-nonenal and protein carbonyl contents. No significant age-related differences in 4-hydroxy-2-nonenal were observed, showing that lipid peroxidation is not a determining factor in cerebral aging. However, protein carbonyls increased with age in brains, indicating accumulation of age-related cell constituent damage. The role of excess CuZn superoxide dismutase in basal lipid peroxidation in mouse brains was studied by comparison of eight 25 month old transgenic mice and eight non-transgenic littermates. Higher 4-hydroxy-2-nonenal concentrations were found in normal mouse brains. These data suggest an increased protective role of CuZn superoxide dismutase against lipid peroxidation in transgenic mouse brains.

Aging

Is malonaldehyde a valuable indicator of lipid peroxidation?

Malonaldehyde (MDA), a decomposition product of lipid hydroperoxides which is used as an indicator of oxidative damage to cells and tissues, reacts, in vitro, with hydrogen peroxide to form undetermined degradation products. Since human polymorphonuclear leukocytes (PMNs) release reactive oxygen species including hydrogen peroxide when stimulated with phorbol myristate acetate (PMA), we incubated specific amounts of MDA with resting PMNs and PMA-stimulated PMNs. The amount of MDA recovered after 30 min incubation with stimulated cells, as determined by MDA-thiobarbituric acid assay, was 25% lower than that recovered with resting cells. In the presence of catalase 18% of MDA disappeared and in the presence of superoxide dismutase 15% disappeared. This indicates that measurements of MDA production in living systems, in the presence of reactive oxygen species, could be underestimated.

Catalase

Reciprocal effects between opioid peptides and human polymorphonuclear leukocytes--I. Chemical modifications of Leu-enkephalin by phorbol myristate acetate-stimulated polymorphonuclear leukocytes.

When L-tyrosyl-glycyl-L-phenylalanyl-L-leucine (Leu-enkephalin) is exposed to the activated oxygen species produced by phorbol myristate acetate (PMA)-stimulated polymorphonuclear leukocytes (PMNs), hydroxylation of the phenylalanyl residue in position 4 of the peptide occurs, producing hydroxy-phenylalanyl derivatives which are identified by HPLC analysis and mass spectrometry. Attack of hydroxyl radicals generated by the Cu (II)/ascorbate system upon Leu-enkephalin also produces isomeric o-, m- and p-hydroxy-phenylalanyl derivatives. When PMNs are incubated with a synthetic peptide, L-tyrosyl-glycyl-glycyl-L-tyrosyl-L-leucine used as a model of hydroxylated Leu-enkephalin, their chemiluminescence response to PMA activation is higher than that of PMNs incubated with Leu-enkephalin.

Chromatography, High Pressure Liquid

Reciprocal effects between opioid peptides and human polymorphonuclear leukocytes--II. Enhancement of phorbol myristate acetate-induced respiratory burst in human polymorphonuclear leukocyte by opioid peptides previously exposed to activated oxygen species.

Activated oxygen species (AOS) have often been shown to promote strong modifications in peptide structures and thus in their biological functions. In the present study, the immunomodulatory effects of Leu-enkephalin, beta-endorphin, dynorphin and some fragments are evaluated, before and after exposure of peptides to AOS, by studying their influence on human polymorphonuclear leukocyte (PMN) respiratory burst. None of the tested opioid peptides (modified or not) were shown to affect resting oxidative metabolism in the PMNs. The effects of peptides on phorbol myristate acetate (PMA)-stimulated production of AOS were measured in a lucigenin-enhanced chemiluminescence assay. Before AOS exposure, the opioid peptides suppressed the PMA-stimulated respiratory burst in human PMNs and a U-shaped dose-response relationship was observed. Conversely, after AOS exposure the opioid peptides enhanced the PMA-stimulated respiratory burst in human PMNs and an inverted U-shaped dose-response relationship was observed. In both cases, the maximal effect was reached at peptide concentrations of 10(-10)M-10(-12) M.

Binding Sites

Nickel (II) as a temporary catalyst for hydroxyl radical generation.

Many in vivo studies show peroxidative damage during nickel toxicity, suggesting the generation of oxygen-activated species. Using the murexide (5,5'-nitrilodibarbituric acid ammonium salt) bleaching technique, we attempted to spectroscopically determine whether there are any histidylpeptides-Ni (II) complexes able to catalyze a nickel-dependent reduction of hydrogen peroxide leading to free oxygen radical production. We show that peptides containing the glycyl-glycyl-L-histidyl sequence trigger nickel-dependent production of oxygen radicals which can damage proteins, cause a rapid loss of tryptophan and a significant production of bityrosine and also induce peroxidation of polyunsaturated fatty acids. During the reaction, the histidine residue in the peptide is selectively damaged and breakdown of the peptide switches off hydroxyl-radical production.

Amino Acid Sequence