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Biomedical subjects

D Charboneau

Publications and source records attributed to D Charboneau.

10 recordsLinked to original sources

Inhibition of mesothelioma cell growth in vitro by doxycycline.

Malignant mesothelioma causes profound morbidity and nearly universal mortality that is often refractory to conventional treatment modalities of aggressive surgery, radiotherapy, or chemotherapy. Doxycycline, a commonly used antibiotic, has anti-tumor activity against several malignancies, but its anti-tumor effects on malignant mesothelioma have not been evaluated. We report here that concentrations of doxycycline achievable in serum with typical oral doses had cytostatic effects to varying extent on all eight of the mesothelioma cell lines studied but did not affect normal lung fibroblasts. Doxycycline inhibited the production of mitochondrial cytochrome c oxidase, especially in mesothelioma cells more sensitive to its cytostatic effects, and directly inhibited gelatinase A activity; both of these activities are putative mechanisms for the cytostatic activity of doxycycline in other tumor cells. Thus doxycycline may have a role as adjuvant therapy for malignant mesothelioma.

Anti-Bacterial Agents↗

Effect of anesthetics on pathogenesis of experimentally induced murine pneumococcal pneumonia.

BACKGROUND AND PURPOSE: To define the effects of three commonly used anesthetic agents--sodium pentobarbital given intraperitoneally, and inhaled halothane and methoxyflurane--on the pathogenesis of pneumococcal pneumonia and bacteremia in an experimental murine model. METHODS: Swiss outbred mice were anesthetized with either sodium pentobarbital, halothane, or methoxyflurane before intranasal infection with Streptococcus pneumonia. At defined times after infection, bacterial numbers in lungs and blood, markers of acute lung injury, and lung cytokine levels were compared. RESULTS: Mice anesthetized with inhaled halothane or methoxyflurane prior to intranasal inoculation with type-2 Streptococcus pneumoniae developed pneumonia and bacteremia distinctly different from that in mice anesthetized by intraperitoneal (IP) administration of sodium pentobarbital. Mice having brief exposure to inhaled halothane or methoxyflurane had significantly greater numbers of bacteria in lungs and blood 48 hours after inoculation, compared with mice anesthetized by IP administration of pentobarbital. Also, mice inhaling halothane had significantly decreased activities of pro-inflammatory cytokines interleukin 6 and tumor necrosis factor-alpha in lung homogenates at 24 hours after inoculation, compared with those given pentobarbital IP. CONCLUSION: Effects of anesthesia on murine models of pneumonia should be considered in the design and interpretation of studies of pneumococcal pathogenesis.

Administration, Inhalation↗

Pneumolysin in pneumococcal adherence and colonization.

The universal and highly conserved production of pneumolysin, the major pneumococcal cytolysin, among clinical isolates of Streptococcus pneumoniae and the previously reported association of pneumolysin production with increased pneumococcal adherence to respiratory epithelium in organ cultures suggest that this toxin might be important for nasopharyngeal colonization. We confirmed that pneumolysin-deficient mutant pneumococcal strains had decreased adherence to respiratory epithelial cells in vitro compared with their isogeneic wild-type strains. However, neither early nor sustained colonization by type 14 S. pneumoniae in an established murine model was dependent on bacterial production of pneumolysin. We conclude that pneumolysin production is not a major determinant of successful nasopharyngeal colonization by pneumococci.

Animals↗

Magnitude, duration, quality, and function of pneumococcal vaccine responses in elderly adults.

The suboptimal efficacy of the currently available 23-valent pneumococcal vaccine in the growing population of adults >65 years old may be related to the limited immunogenicity of the vaccine polysaccharides in this group. In this study, the majority of elderly outpatients with stable chronic illnesses generated a vigorous IgG response to seven vaccine serotypes comparable to that of healthy young adults at 1, 3, and 16 months after immunization. Moreover, the quality and function of anticapsular antibodies, measured as avidity and in vitro opsonization, were comparable between elderly and young subjects over time. However, a subset (approximately 20%) of elderly outpatients responded to fewer than two of seven serotypes tested 1 and 3 months after immunization, whereas none of the healthy young adults were such poor responders. Thus, despite the adequate mean immune responses of the elderly as a group, a substantial proportion of elderly persons may have poor responses to the currently available pneumococcal vaccine.

Adult↗

Ethanol ingestion reduces antipneumococcal activity of rat pulmonary surfactant.

Because chronic ethanol ingestion decreases pulmonary clearance of Streptococcus pneumoniae in rats, and extracellular antipneumococcal factors in rat surfactant are important in the early clearance of pneumococci from the rat alveolus, the effects of ethanol ingestion on surfactant bactericidal activity were investigated. Normal surfactant from chow-fed rats showed potent anti-pneumococcal activity, even against bacteria growing in nutrient-rich media under favorable conditions. In contrast, surfactant from ethanol-fed rats and from calorie-restricted control-fed rats had significantly reduced antipneumococcal activity compared with surfactant from chow-fed rats. The reductions in surfactant bactericidal activity produced by ethanol ingestion or caloric restriction did not appear to be mediated through changes in either the total amount or the distribution of fatty acids, the antipneumococcal factors in normal surfactant. Rather, ethanol ingestion, and to a lesser extent caloric restriction, produced a surfactant inhibitor of free fatty acids that was partially characterized as a hydrophobic protein.

Alcohol Drinking↗

Distinct roles for pneumolysin's cytotoxic and complement activities in the pathogenesis of pneumococcal pneumonia.

Pneumolysin, the major Streptococcus pneumoniae cytotoxin, contributes to the early pathogenesis of invasive pneumococcal pneumonia by facilitating intrapulmonary bacterial growth and invasion into the blood. Pneumolysin is a multifunctional toxin, with distinct cytolytic ("hemolytic") and complement-activation ("complement") activities that have been mapped to several regions of the molecule. To characterize the specific contributions of pneumolysin's hemolytic and complement properties to the pathogenesis of pneumococcal pneumonia, we compared the in vivo effects of type 2 S. pneumoniae mutant strains, which produce pneumolysins deficient in these activities. The absence of either pneumolysin's hemolytic or complement activities rendered mutant strains less virulent than the wild-type strain during pulmonary infection. Pneumolysin's hemolytic activity correlated with acute lung injury and bacterial growth at 3 and 6 h after endotracheal instillation. In contrast, pneumolysin's complement activity correlated with bacterial growth and bacteremia at 24 h after pulmonary infection. Pneumolysin's complement activity was not associated with the degree of alveolar-capillary injury or recruitment of leukocytes during initial pulmonary infection. However, pneumolysin's complement activity inhibited killing of mutant bacteria in an in vitro complement-dependent neutrophil killing assay. Thus, both pneumolysin's hemolytic and complement activities made specific contributions to the early pathogenesis of pneumococcal pneumonia at different stages of infection and by different mechanisms.

Animals↗

Dual function of pneumolysin in the early pathogenesis of murine pneumococcal pneumonia.

Streptococcus pneumoniae is one of the most common etiologic agents of community-acquired pneumonia, particularly bacteremic pneumonia. Pneumolysin, a multifunctional cytotoxin, is a putative virulence factor for S. pneumoniae; however, a direct role for pneumolysin in the early pathogenesis of pneumococcal pneumonia has not been confirmed in vivo. We compared the growth of a pneumolysin-deficient (PLY[-]) type 2 S. pneumoniae strain with its isogenic wild-type strain (PLY[+]) after direct endotracheal instillation of bacteria into murine lungs. Compared with PLY(-) bacteria, infection with PLY(+) bacteria produced greater injury to the alveolar-capillary barrier, as assayed by albumin concentrations in alveolar lavage, and substantially greater numbers of PLY(+) bacteria were recovered in alveolar lavages and lung homogenates at 3 and 6 h after infection. The presence of pneumolysin also contributed to the development of bacteremia, which was detected at 3 h after intratracheal instillation of PLY(+) bacteria. The direct effects of pneumolysin on lung injury and on the ability of pneumococci to evade local lung defenses was confirmed by addition of purified recombinant pneumolysin to inocula of PLY(-) pneumococci, which promoted growth of PLY(-) bacteria in the lung to levels comparable to those seen with the PLY(+) strain. We further demonstrated the contributions of both the cytolytic and the complement-activating properties of pneumolysin on enhanced bacterial growth in murine lungs using genetically modified pneumolysin congeners and genetically complement-deficient mice. Thus, pneumolysin facilitates intraalveolar replication of pneumococci, penetration of bacteria from alveoli into the interstitium of the lung, and dissemination of pneumococci into the bloodstream during experimental pneumonia. Moreover, both the cytotoxic and the complement-activating activities of pneumolysin may contribute independently to the acute pulmonary injury and the high rates of bacteremia which characterize pneumococcal pneumonia.

Animals↗

Toxicity of pneumolysin to pulmonary alveolar epithelial cells.

Mortality during the first several days of pneumococcal pneumonia has not decreased appreciably over the past 30 years, despite the widespread use of antibiotics. Disruption of the alveolar epithelial barrier is likely an initial step in the pathogenesis of pneumococcal pneumonia. We report that soluble factors from Streptococcus pneumoniae can directly injure isolated rat alveolar epithelial cells. Using biochemical and immunological techniques, we identified pneumolysin as a major soluble S. pneumoniae toxin for alveolar epithelial cells. Alveolar epithelial cells at 24 or 72 h after isolation were equally sensitive to injury by purified pneumolysin. Purified pneumolysin substantially increased alveolar permeability in an isolated perfused rat lung model. Electron microscopy revealed that instilled pneumolysin caused widespread lung injury, primarily to type I alveolar epithelial cells. Pneumolysin toxicity to alveolar epithelial cells may be important in the pathogenesis of acute lung injury during pneumococcal pneumonia and may facilitate pneumococcal bacteremia.

Animals↗

Toxicity of pneumolysin to pulmonary endothelial cells in vitro.

Pneumococcal pneumonia and bacteremia are associated with appreciable mortality, most of which occurs very early in the course of infection. An initial step in the pathogenesis of pneumococcal pneumonia may include disruption of the pulmonary endothelial barrier with subsequent alveolar hemorrhage. We sought to determine whether soluble factors from Streptococcus pneumoniae can directly injure pulmonary endothelial cells in vitro and to identify pneumococcal toxins that may be involved in endothelial cell injury. Suspensions of S. pneumoniae (10(8) organisms per ml) caused significant injury to cultured bovine pulmonary artery endothelial cells in a time-dependent manner. The degree of endothelial cell cytotoxicity differed among S. pneumoniae strains; among the strains tested, a type 14 strain was the most cytotoxic and a type 3 strain was the least cytotoxic. During autolysis, type 14 S. pneumoniae released a soluble endothelial cell cytotoxin that was distinct from S. pneumoniae capsular and cell wall polysaccharides. The soluble cytotoxin was further characterized as a thiol-activated, heat-sensitive protein that coeluted with purified pneumolysin during gel filtration. The identity of the S. pneumoniae endothelial cell cytotoxin as pneumolysin was further supported by the ability of purified pneumolysin and the inability of S. pneumoniae mutants which lack pneumolysin to injure endothelial cells, as well as by the inhibition of the soluble S. pneumoniae cytotoxin by a neutralizing antibody to pneumolysin. Pneumolysin appears to be the major S. pneumoniae soluble cytotoxin for pulmonary endothelial cells in vitro and may be an important factor in the pathogenesis of alveolar hemorrhages in S. pneumoniae infections.

Animals↗

Studies of ammonia loading: effects of rate of delivery and enhanced removal of NH4 on blood levels of ammonia and coma induction.

Using dose-response curves, the dose of NH4Ac inducing coma in one-half of the animals was increased by 60 to 80% after 1 mmol of arginine. The larger increase occurred in larger rats but was not proportional to the increase in weight. Incremental subcoma doses of NH4 raised the amount of NH4 required for inducing coma and the brain level of ammonia at the point of coma. After a portacaval shunt the results were similar, although lower doses of NH4 were required from the beginning. Blood ammonias after a loading dose (1.25 mmol) of NH4 were influenced by the duration of a preinfusion of NH4 and by the preinjection of various amino acids involved in the disposal of NH4 in the urea cycle. The amount of reduction in blood ammonia by ornithine and arginine compounds was less the longer the preinfusion of NH4. Blood ammonia was not lowered by glutamate at any time but was increased with longer preinfusion periods. Hepatectomy (Hx) reduced the removal of an NH4 load. After a modest load (0.85 mmol) of NH4, blood ammonia increased 5-fold, over that of sham-operated rats, with 70% Hx and 15-fold with 90% Hx. Ornithine reduced these blood ammonias by about 50%. Arginine had no effect. These studies indicate ways of reducing toxicity of NH4 and factors that predispose to or enhance toxicity.

Amino Acids↗