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M T Labro

Publications and source records attributed to M T Labro.

At least 55 records · Page 3Linked to original sources

Effect of quinine and cinchonine on human neutrophils functions in vitro.

We have compared the in-vitro interactions of quinine and cinchonine, two alkaloids from cinchona bark, with human neutrophil functions. Although these molecules are structurally similar, they induced a quantitatively different depressive effect on neutrophil chemotaxis and oxidative response. Quinine produced the strongest effect at concentrations as low as 10 mg/l, which may be achievable in serum during therapeutic use of this compound. The depression induced by cinchonine was noticeable only at 100 mg/l. Chemotaxis was decreased by about 25% (formyl-methionyl-leucyl-phenylalanine) or 39% (serum) for quinine (100 mg/l) only if a constant concentration of the drug was maintained during the assay while cinchonine had no effect on this PMN function. The greatest impairment was observed for the PMN oxidative burst: this was dose-dependent whatever the stimulus used (phorbol-myristate-acetate or opsonized zymosan). After 30 min incubation in the presence of the drugs, the zymosan-induced chemiluminescence response was decreased by 96% and by 67% with quinine, 100 and 10 mg/l, respectively, and by 62% with cinchonine 100 mg/l. The myeloperoxidase-mediated iodination of PMN was reduced by 100% and 46% with quinine, 100 and 10 mg/l, respectively, whereas cinchonine decreased this function by about 95% at 100 mg/l and 14% at 10 mg/l. Superoxide anion generation was impaired by 94% (quinine 100 mg/l) or 45% (cinchonine 100 mg/l). The relevance to the clinical situation and the possible mechanisms of such effects are discussed.

Cell-Free System↗

Synergistic bactericidal interaction of josamycin with human neutrophils in vitro.

Josamycin and erythromycin have been compared for their in-vitro interaction with bactericidal killing by human neutrophils. The mechanism of this interaction was studied in two ways. First, the target organisms (Staphylococcus aureus and Pseudomonas aeruginosa) were incubated for 60 min with josamycin, erythromycin or control buffer prior to use in a human polymorphonuclear neutrophil (PMN) killing assay. Second the macrolides were added directly to acellular killing systems mimicking those acting inside the phagolysosome; oxygen-independent systems were obtained from a crude granule extract of PMN and oxygen-dependent systems consisted either of a mixture of xanthine plus xanthine oxidase or of a solution of H2O2. Whereas josamycin-pretreated P. aeruginosa were twice as sensitive to killing by PMN than were control cells, this was not the case for S. aureus. Both oxidant generating systems were more effective in destroying S. aureus in the presence of josamycin (3 and 30 mg/l). Erythromycin showed a similar synergy but only with the xanthine plus xanthine oxidase system. This synergy was observed with neither of the O2-independent systems for S. aureus, nor with any acellular system for P. aeruginosa. These data suggest that at least two kinds of mechanism may explain the bactericidal synergy observed between macrolides and PMN. The first (for macrolide-resistant species such as P. aeruginosa) could be due to alterations in the bacteria by the antibiotics, while the second (for macrolide-sensitive species such as S. aureus) could be based upon an as yet unexplained transformation of the molecules by reactive oxygen species into more "toxic" forms. These differences between josamycin and erythromycin could arise from differences in their chemical structure.

Blood Bactericidal Activity↗

Cefodizime, a new 2-aminothiazolyl cephalosporin: physicochemical properties, toxicology and structure-activity relationships.

Cefodizime is a 2-aminothiazolyl cephalosporin for parenteral use. Cefodizime has a bisubstituted thiothiazole moiety in position 3 of the cephem nucleus. The presence of this moiety does not alter the in-vitro antibacterial activity, or safety in animal studies, which are similar to those of cefotaxime, but results in an apparent long elimination half-life in rodents and dogs, and in novel immunological properties.

Animals↗

Cefodizime as a biological response modifier: a review of its in-vivo, ex-vivo and in-vitro immunomodulatory properties.

Immunomodulation by antibacterial agents shows promise as a novel strategy in the treatment of infectious diseases. Cefodizime, a new oxi-imino-amino-2-thiazolyl cephalosporin, is a particularly good candidate in this context. In-vivo models of experimental infections show that prophylactic administration of cefodizime increases the survival of some strains of mice after challenge with Toxoplasma gondii or Candida albicans; its curative effect in infections due to members of the Enterobacteriaceae is better than that expected from in-vitro MIC determinations relative to other third-generation cephalosporins; this effect is even more marked in immunocompromised animals. Data obtained both in vivo and ex vivo show that cefodizime enhances various immune parameters such as phagocyte function, B lymphocyte responsiveness and delayed hypersensitivity; it may restore natural killer (NK) and phagocyte activity, as well as interleukin 1 (IL-1) and interferon production, in immunocompromised patients and animals. The in-vitro effects of this drug include enhancement of phagocyte bactericidal activity and alteration of bacterial virulence factors. The chemical basis for these various immunomodulatory properties is related to the thio-thiazolyl side-chain at position 3 of the cephem nucleus. To date, the mechanisms underlying the immunomodulatory properties of cefodizime have not been identified clearly, but it is likely that it interferes at different levels of specific and non-specific immune defences.

Adjuvants, Immunologic↗

Comparison of cefodizime with various cephalosporins for their indirect effect on the human neutrophil oxidative burst in vitro.

Cefodizime, a 2-amino-thiazolyl cephalosporin, is reported to display in-vitro, ex-vivo and in-vivo immunomodulatory properties; in particular, it enhances the survival of mice infected with cefodizime-resistant pathogens. We have used an in-vitro model to assess the indirect effect of this drug (compared with other cephalosporins) on the neutrophil (PMN) oxidative response. Pseudomonas aeruginosa was employed as the bacterial target for cefodizime and cefotaxime (MICs greater than 128 mg/l), cefsulodin (MIC 16 mg/l) and ceftazidime (MIC 32 mg/l). After overnight growth in the presence of subinhibitory concentrations of each drug (10 mg/l), the altered filamentous P. aeruginosa induced a stronger oxidative response of PMN than untreated control bacteria. For all cephalosporins this was related to alterations of bacterial structure leading to increased deposits of antibodies and/or complement. Furthermore, increased non-opsonin dependent stimulation of the PMN oxidative burst was obtained; the strongest response was observed with cefodizime-treated P. aeruginosa in the case of low responder PMN, which displayed a deficient response after stimulation by control bacteria. The possibility that cefodizime could enhance this PMN function in opsonin-deficient patients requires further investigation.

Cefotaxime↗

[Synergism of josamycin and oxidation against Staphylococcus aureus].

We have previously reported that josamycin (JM) displayed a bactericidal synergy with human neutrophils (PMN) in vitro without altering significantly various cell functions (Labro et al., Path. Biol., 1989, 37, 329-334). Since JM may concentrate into phagocytes, and partly at least into lysosomes, it was of interest to analyze if the presence of this molecule could enhance the bactericidal activity of some acellular systems mimicking those acting inside the phagolysosome, using Staphylococcus aureus as the bacterial target. Erythromycin (EM) was assessed comparatively. While none of the macrolides increased the lethal effect of a crude PMN extract (02-independent system), an enhancement of the bacterial killing by an oxidant stress was observed in the presence of the 2 molecules. However, the effect of JM was strongest that the one induced by EM: S. aureus survival after exposure to xanthine + xanthine oxidase was 38 +/- 17.2% and it was reduced to 11 +/- 5.0 and 23 +/- 15.6 with JM (30 and 3 mg/l) and 22 +/- 13.1 and 23 +/- 9.7 with EM (30 and 3 mg/l). On the other hand, S. aureus survival after exposure to H2 O2 was reduced only by JM (16 +/- 9.4 and 32 +/- 6.9% versus 43 +/- 11.2% for controls). Pretreatment of S. aureus for 60 min by JM or EM did not alter the sensitivity of the bacteria either to PMN or to acellular systems. These data suggest that JM (and at a lesser degree EM) could be transformed by reactive oxygen species generated inside the phagolysosome to become more toxic for the bacteria.(ABSTRACT TRUNCATED AT 250 WORDS)

Dose-Response Relationship, Drug↗

Comparison of the in-vitro effect of several macrolides on the oxidative burst of human neutrophils.

We have compared the in-vitro interaction of five macrolides (roxithromycin, erythromycin, spiramycin, oleandomycin and josamycin) with human neutrophils (PMN). Only roxithromycin strongly impaired the oxidative burst of PMN assessed by luminol amplified chemiluminescence, superoxide anion generation, and myeloperoxidase-mediated iodination of proteins. This effect was observed only for high concentrations of this drug (100 and 50 mg/l). Furthermore, the sensitivity of PMN to the depressive effect of roxithromycin permitted the definition of two kinds of PMN: in Highly Sensitive (HS)-PMN, the oxidative response was completely abolished while in Moderately Sensitive (MS)-PMN, a decreased, but yet measurable (20-50% of the control), response was obtained. The roxithromycin-induced depression of PMN was time-dependent and partly reversed by washing. Chemotaxis was also impaired by roxithromycin (100 mg/l) but phagocytosis of Klebsiella pneumoniae was unaltered even at high concentrations of the drug. Since roxithromycin displays the highest intracellular uptake, compared with the other macrolides assessed in this study, this could explain the results observed here. The relevance to the clinical situation needs further study. This effect of roxithromycin could be useful to control the inflammatory process associated in certain infectious diseases, in particular if high concentrations of the drug are obtained in tissues.

Anti-Bacterial Agents↗

Synergistic interaction of josamycin with human neutrophils bactericidal function in vitro.

Josamycin, a 16-membered ring macrolide is concentrated up to 20-fold in phagocytic cells compared with serum. We have studied the in-vitro interaction of this drug with human neutrophils (PMN) bactericidal function by using two strains resistant to this antibiotic, Pseudomonas aeruginosa and Klebsiella pneumoniae, and a sensitive one, Staphylococcus aureus 209P. It was shown that josamycin-pretreated adherent PMN displayed an increased phagocytic activity (about 30 to 40%) for S. aureus or K. pneumoniae, mainly due to the recruitment of an additional phagocytizing subset of PMN. Furthermore, the bacterial killing was enhanced in josamycin-treated PMN in a dose-dependent manner for K. pneumoniae (60-130% increase in the range of concentration 0.1-25 mg/l) and independently of the dose for S. aureus (about 425-460% increase for josamycin 0.1-10 mg/l). P. aeruginosa killing by whole blood was also significantly increased in the presence of 10 and 1 mg/l of josamycin. Other PMN functions were not much altered by josamycin except an enhancement of the formyl-methionyl-leucyl-phenylalanine-induced oxidative response. Chemotaxis was only increased by the presence of a high concentration (100 mg/l) of josamycin. These data suggest that the bactericidal synergy between PMN and josamycin could be related, partly at least, to a direct enhancing effect of josamycin on some PMN functions such as phagocytosis, chemotaxis and FMLP-induced chemiluminescence. On the other hand, alterations of bacteria, either inside the phagolysosome or in the extracellular medium, could lead to an enhanced susceptibility to the phagocytes' microbial mechanisms.

Chemotaxis, Leukocyte↗

[Bactericidal synergy of josamycin and human polynuclear neutrophils in vitro].

Due to their high intracellular uptake, macrolides may interfere with phagocytes antibacterial system. We have studied the interaction of josamycin with bactericidal activity of human neutrophils (PMNs) or whole blood, in vitro. PMNs preincubated with josamycin (100-0.1 mg/l) display an increased phagocytic ability for K. pneumoniae, independently of the concentrations of josamycin; this effect appears to correlate with the recruitment of an additional population of phagocytizing PMNs without alteration of the mean number of PMN-associated bacteria, whatever the experimental conditions (adherent or non adherent PMNs). PMNs bactericidal function is also enhanced in the presence of josamycin in a dose-dependent manner (mean increase 60 to 370% for josamycin 0.1 to 10 mg/l). Bactericidal activity of whole human blood for P. aeruginosa (a strain resistant to the lytic effect of serum) is increased with a mean survival (CFUt min/CFU 0 min) of 24 and 71% at 60 and 120 min respectively, in the presence of josamycin 10 mg/l, and 42 and 128% in the presence of josamycin 1 mg/l, compared to the survival of the control, 68 and 166%. PMNs functions are not altered by josamycin with the exception of an enhancement of the oxidative burst induced by formylmethionyl-leucyl-phenylalanine, a synthetic compound similar to bacterial derivatives. In conclusion, we have shown a synergic interaction between phagocytes and josamycin for the killing of bacteria resistant to this antibiotic (MiC greater than 128 mg/l). This could be due either to an alteration of some PMN membrane receptors or to alterations of bacteria which render them more sensitive to natural bactericidal mechanisms and/or more able to activate these mechanisms.

Blood Bactericidal Activity↗

Influence of subinhibitory concentrations of ceftriaxone on opsonization and killing of Pseudomonas aeruginosa by human neutrophils.

Ceftriaxone, a 2-aminothiazolyl cephalosporin does not alter human neutrophil (PMN) bactericidal function. However, low concentrations of ceftriaxone induce some bacterial strains to be more sensitive to PMN killing. We have studied the effect of a subinhibitory concentration of ceftriaxone (10 mg/l) on Pseudomonas aeruginosa (MIC greater than 128 mg/l). After an overnight exposure to this concentration of ceftriaxone, P. aeruginosa elongated into filaments. PMN killing of ceftriaxone-treated bacteria was better than killing of control bacteria. This enhanced killing was correlated with an increased sensitivity to oxygen-dependent bacterial killing. Furthermore, the altered bacteria induced a greater oxidative response of PMN which was independent of their chemiluminescence response after stimulation by control P. aeruginosa. This increased oxidative burst was attributable to both non-opsonodependent stimulation and to increased deposit of opsonins.

Ceftriaxone↗

Effects of amodiaquine, chloroquine, and mefloquine on human polymorphonuclear neutrophil function in vitro.

This study concerns the in vitro interaction with human polymorphonuclear neutrophils (PMNs) of amodiaquine, chloroquine, and mefloquine, three antimalarial drugs currently in use for the treatment and prophylaxis of malaria. It was found that mefloquine (100 and 50 micrograms/ml) significantly altered PMN viability while the other two drugs did not. Neutrophil chemotaxis was impaired by chloroquine (100 micrograms/ml) and mefloquine (greater than 10 micrograms/ml) but not by amodiaquine. Phagocytosis was decreased by about 50% in the presence of chloroquine (100 micrograms/ml) or mefloquine (10 micrograms/ml). The three antimalarial drugs altered neutrophil oxidative metabolism as assessed by luminol-amplified chemiluminescence. The strongest effect was observed with mefloquine, which abolished almost completely the neutrophil burst at concentrations of greater than 10 micrograms/ml whatever the stimulus used. This effect was not reversed by washing. Chloroquine and amodiaquine also impaired this PMN response by approximately 80 and 50%, respectively, but only at the highest concentration used (100 micrograms/ml). In the case of amodiaquine, the neutrophil response was restored by washing, except for stimulation with opsonized particles. After washing, the depressive effect of chloroquine was reversed completely in the case of phorbol myristate acetate stimulation and partly in the case of opsonized particle stimulation, but the formylmethionyl-leucyl-phenylalanine-induced response was not restored. These data show that although they are structurally related, amodiaquine and chloroquine exhibit qualitatively and quantitatively different depressive effects on PMN function and probably interfere at different points of cell activation, although the precise mechanisms are as yet unresolved.

Amodiaquine↗

[Interaction of roxithromycin with human polymorphonuclear neutrophils in vitro and ex vivo].

Roxithromycin (RU 28965) a new semisynthetic macrolide has been reported to display an antibacterial spectrum and activity in vitro similar to those of others macrolides. However, roxithromycin seems more efficient than erythromycin in in vivo experimental infections (mice). We have previously reported that roxithromycin increases the ability of human neutrophils (PMN) for bactericidal activity (S. aureus) or phagocytosis (K. pneumoniae) in vitro without altering other PMN functional parameters. In this study, roxithromycin (single dose-300 mg) was given to 6 human volunteers. The neutrophils collected 90 min after ingestion display a significant increased ability to phagocytose and kill S. aureus and K. pneumoniae. Furthermore chemotaxis, oxidative burst and myeloperoxidase activity of the PMN after roxithromycin ingestion were enhanced compared to those of PMN before ingestion. This discrepancy between immunomodulating effect of roxithromycin in vitro and in vivo outlines the complexity of in vivo experimental models and requires further studies in vivo in particular in patients suffering from sepsis.

Adult↗

Cefodizime (HR 221) potentiation of human neutrophil oxygen-independent bactericidal activity.

The enhanced bactericidal activity of human neutrophils induced by cefotaxime and cefodizime, two methoxy-imino-amino- 2-thiazolyl cephalosporins, is linked to the cell stimulation of oxygen-dependent and oxygen-independent killing systems, respectively. Cefotaxime enhances both the killing and the oxidative response of neutrophils to opsonized particulate stimuli (bacteria for both activities and opsonized zymosan for the oxidative burst). These effects were not observed with non-opsonized particles (bacteria or zymosan) or soluble stimuli. On the contrary, cefodizime enhances killing of opsonized and non-opsonized bacteria by neutrophils regardless of treatment with phenylbutazone which blocks neutrophil oxidative metabolism. Cefodizime does not universally alter the oxidative burst induced by various stimuli, but has been shown to enhance the bactericidal activity of crude extracts of neutrophil granules. The data suggest that cefodizime and non O2-dependent killing systems of neutrophils cooperate in killing bacteria.

Cefotaxime↗

Interaction of ceftriaxone with human polymorphonuclear neutrophil function.

Ceftriaxone, an amino-2-thiazolyl cephalosporin, has been shown to cooperate in vitro with human neutrophils for the killing of some bacteria. In this work the direct interaction with human leucocyte bactericidal function has been studied. Ceftriaxone (1000 to 1 mg/l) did not alter neutrophil chemotaxis or superoxide anion production. It also did not interfere with the chemiluminescence response of isolated PMN although a paradoxical depressive effect was observed with whole human blood in the case of zymosan stimulation. The killing of Staphylococcus aureus and Klebsiella pneumoniae was not enhanced by ceftriaxone and phagocytosis was significantly depressed only with adherent neutrophils but not when using neutrophils in liquid medium. It is concluded that the synergy observed between leucocyte and ceftriaxone for bacterial killing cannot be related to a direct stimulation of neutrophil functions and should depend on bacterial alteration.

Blood Bactericidal Activity↗

Effect of ceftriaxone-induced alterations of bacteria on neutrophil bactericidal function.

Two bacterial strains (Staphylococcus aureus and Klebsiella pneumoniae) were exposed to subinhibitory concentrations of ceftriaxone. After an overnight culture in presence of 1 MIC of ceftriaxone either in broth or on solid medium S. aureus showed enlarged forms which were better phagocytosed (increase about 40%) and killed (increase about 50%) than control staphylococci. Exposure of K. pneumoniae to 0.1 MIC ceftriaxone resulted in filamentation of bacteria. When grown in the presence of 0.01 MIC, K. pneumoniae did not elongate into filaments but were significantly more phagocytosed (increase about 40%) or killed (increase about 170%) than control bacilli. The mechanism of the greater sensitivity to PMN killing of the altered S. aureus and K. pneumoniae was assessed either with phenylbutazone-treated PMN or by in-vitro exposure to crude granule extracts of PMN. The altered bacteria displayed a significant susceptibility to the non-oxidative killing mechanism while untreated bacteria were unaffected by the non-oxidative system. These data could explain the synergy observed between ceftriaxone and leucocytes in the killing of some micro-organisms.

Blood Bactericidal Activity↗

Inhibitory effect of K-562 malignant cells on locomotion of human neutrophils.

Certain tumor cells generate factors that inhibit neutrophil chemotaxis. The present study was designed to explore, in K-562 malignant cells, the release of such factors that may alter the neutrophil locomotion. The supernatant, separated from the K-562 malignant cells cultured in vitro for 48 hours, was lyophilised and extracted with ethanol 80%. This ethanol extract (SE-K562) inhibited neutrophil locomotion. Both random and locomotion induced either by formyl-methionyl-leucyl-phenylalanine (FMLP) or serum were inhibited. SE-K562 was partially purified by Sephadex chromatography and the analysis of the eluted active fraction by SDS electrophoresis led one band of about 8 kd. No one inhibitory effect was observed with appropriate controls. In conclusion, K562 malignant cells in culture release a low molecular weight factor (8 kd) that inhibits all forms of PMN locomotion i.e. random locomotion and locomotion induced either by FMLP or serum.

Cell Line↗