PubMed Health⌕ Search

Biomedical subjects

J B Galvin

Publications and source records attributed to J B Galvin.

At least 19 recordsLinked to original sources

Assessment of the in vivo mutagenic potential of methyl tertiary-butyl ether.

Methyl tertiary-butyl ether (MTBE) is one of the highest production volume chemicals in the USA. Previous results from in vitro genetic toxicity studies suggested that it was not mutagenic. However, chronic exposure at high levels resulted in liver tumors in female mice and kidney tumors in male rats. The current program assessed in vivo genotoxicity and also explored the possibility that a mutagenic mechanism was involved in the carcinogenic process. The specific tests used included the Drosophila sex-linked-recessive-lethal test, the rat bone marrow cytogenetics test, the mouse bone marrow micronucleus test and the in vivo-in vitro hepatocyte unscheduled DNA synthesis test in the mouse. All tests produced negative results, indicating that the potential for in vivo mutagenic activity was low. These data also suggest that the tumorigenic activity was probably the result of a non-genotoxic process.

Air Pollutants↗

Pulmonary immune response of dogs after exposure to 239PuO2.

This study evaluated the cell-mediated (CMI) and humoral immune responses in four Beagle dogs five to six years after single inhalation exposures to different monodisperse 239PuO2 aerosols (0.72-1.4 microns activity median aerodynamic diameter). These exposures resulted in initial lung burdens ranging from 19 to 35 kBq. Four nonexposed dogs were used as age-matched controls. Anesthetized dogs were immunized by instillation of sheep red blood cells (SRBC) into selected lung lobes. Cells and fluids were obtained serially from blood samples and by bronchoalveolar lavage of the saline- and SRBC-treated lung lobes at 5-20 days after immunization. The CMI response evaluated by the leukocyte procoagulant activity test was similar in the saline- and SRBC-treated lobes of both groups of dogs. The humoral immune response was measured by the enzyme-linked immunosorbent assay. No differences were shown between the amount of antibody measured in the sera or lung lavages from control or Pu-exposed dogs. Histopathology of the tracheobronchial lymph nodes from the Pu-exposed dogs showed them to be fibrotic with no lymphoid cells, suggesting that these tissues could not respond to the antigen deposited in the lungs. However, both mediastinal and sternal lymph nodes did contain lymphoid tissue, and were likely to be the lymphoid tissues that produced the immunity to the antigen deposited in the lungs of the exposed dogs. Although both exposed and control dogs produced immune responses to the antigen instilled into their lungs, differences were observed in the number of neutrophils in lung lavages from the control and exposed animals. There was a dramatic influx of neutrophils into both the saline- and SRBC-treated lung lobes of the Pu-exposed dogs that was not seen in the age-matched controls. This suggests that the inhaled 239PuO2 produced chronically-active inflammation in the lung which may contribute to recruitment of lymphocytes to the lung following intrapulmonary deposition of antigen. In conclusion, the immune responses induced by lung immunization of dogs that had inhaled 239PuO2 were not suppressed by large doses of chronic alpha irradiation of the lungs and tracheobronchial lymph nodes, indicating that local pulmonary immune responses are preserved despite severe radiation-induced alteration of these tissues.

Administration, Inhalation↗

Reconstitution of rabbit thrombomodulin into phospholipid vesicles.

The influence of phospholipid on thrombin-thrombomodulin-catalyzed activation of protein C has been studied by incorporating thrombomodulin into vesicles by dialysis from octyl glucoside-phospholipid mixtures. Thrombomodulin was incorporated into vesicles ranging from neutral (100% phosphatidylcholine) to highly charged (30% phosphatidylserine and 70% phosphatidylcholine). Thrombomodulin is randomly oriented in vesicles of different phospholipid composition. Incorporation of thrombomodulin into phosphatidylcholine, with or without phosphatidylserine, alters the Ca2+ concentration dependence of protein C activation. Soluble thrombomodulin showed a half-maximal rate of activation at 580 microM Ca2+, whereas half-maximal rates of activation of liposome-reconstituted thrombomodulin were obtained between 500 microM Ca2+ and 2 mM Ca2+, depending on the composition (protein:phospholipid) of the liposomes. The Ca2+ dependence of protein C activation fits a simple hyperbola for the soluble activator, while the Ca2+ dependence of the membrane-associated complex is distinctly sigmoidal with a Hill coefficient greater than 2.4. In contrast, the Ca2+ dependence of gamma-carboxyglutamic acid (Gla) domainless protein C activation is unchanged by membrane reconstitution (1/2 max = 53 +/- 10 microM) and fits a simple rectangular hyperbola. Incorporation of thrombomodulin into pure phosphatidylcholine vesicles reduces the Km for protein C from 7.6 +/- 2 to 0.7 +/- 0.2 microM. Increasing phosphatidylserine to 20% decreased the Km for protein C further to 0.1 +/- 0.02 microM. Membrane incorporation has no influence on the activation of protein C from which the Gla residues are removed proteolytically (Km = 6.4 +/- 0.5 microM). The Km for protein C observed on endothelial cells is more similar to the Km observed when thrombomodulin (TM) is incorporated into pure phosphatidylcholine vesicles than into negatively charged vesicles, suggesting that the protein C-binding site on endothelial cells does not involve negatively charged phospholipids. In support of this concept, we observed that prothrombin and fragment 1, which bind to negatively charged phospholipids, do not inhibit protein C activation on endothelial cells or TM incorporated into phosphatidylcholine vesicles, but do inhibit when TM is incorporated into phosphatidylcholine:phosphatidylserine vesicles. These studies suggest that neutral phospholipids lead to exposure of a site, probably on thrombomodulin, capable of recognizing the Gla domain of protein C.

Animals↗

Proteolytic formation and properties of functional domains of thrombomodulin.

Thrombomodulin is an endothelial cell surface protein which complexes with thrombin to accelerate protein C activation. To gain insight into the mechanisms of thrombomodulin-membrane association, limited proteolytic digestions of thrombomodulin with trypsin and elastase were performed. Trypsin digestion resulted in two major fragments (Mr = 54,000 and 27,000), both of which bound to phosphatidylcholine/phosphatidylserine vesicles. Elastase digestion also yielded two major fragments (Mr = 50,000 and 25,000), but only the smaller fragment bound to the phospholipid vesicles. The larger fragment obtained from both enzymatic digestions retained the ability to accelerate protein C activation. The Mr = 54,000 fragment from the trypsin digest retained a high affinity for thrombin (Kd less than or equal to 0.5 nM), a Km for protein C of approximately equal to 8 microM, and a half-maximal Ca2+ dependence of 0.3 mM. The Mr = 50,000 fragment from elastase digestion had a lower affinity for thrombin (Kd approximately equal to 6 nM) than intact thrombomodulin, and the Km for protein C was decreased to 0.3 microM in the presence of 0.3 mM Ca2+. The Ca2+ dependence of protein C activation with the Mr = 50,000 fragment was distinctly different from that of thrombomodulin or the active tryptic fragment. The active elastase fragment exhibited a Ca2+ optimum at 0.3 mM and activity rapidly decreased with further increases in Ca2+. At the Ca2+ optimum, the Km for protein C was similar to that observed on endothelial cell surfaces or with thrombomodulin reconstituted into liposomes. Our data demonstrate that thrombomodulin has one or more membrane-binding domains and that an active soluble form with catalytic activity can be generated by limited proteolytic digestion. Digestion with elastase appears to expose a site on thrombomodulin capable of recognizing the gamma-carboxyglutamic acid domain of protein C (residues 1-44 of the light chain). Whether this is the same site which is exposed on thrombomodulin upon incorporation into phospholipid vesicles (see accompanying manuscript) remains to be determined.

Binding Sites↗

Comparison of cell-mediated and humoral immunity in the dog lung after localized lung immunization.

This study evaluated cell-mediated immunity (CMI) and antibody production serially in control and immunized lung lobes of beagle dogs. A fiberoptic bronchoscope was used to immunize selected airways in the left cardiac lung lobe with 10(10) sheep red blood cells (SRBC); the right cardiac lobe received saline as control. The immune responses produced by this localized lung immunization were evaluated in cells and fluids obtained from blood and serial bronchial washings of the immunized and control lung lobes from 5 to 21 days after immunization. The antigen-specific production of procoagulant activity (LPCA) and inhibition of migration of alveolar macrophages by SRBC antigen were used to measure CMI in lavage cells from immunized and control lung lobes. The level of specific IgM and IgG antibody in lavage fluid from the control and immunized lung lobes was evaluated with the enzyme-linked immunosorbent assay (ELISA). The results of this study showed a significantly greater percentage of neutrophils and lymphocytes in the lavage fluid from the immunized lung lobes than from the control lung lobes. The increased number of lymphocytes in the immunized lung lobes showed a positive correlation with increased antibody concentrations. In contrast to the antibody response, CMI as measured by LPCA and MIF assays was positive, with nearly equal responses in control and immunized lung lobes. Even though there were only a few lymphocytes in the control lung lobes, there were apparently enough specific immune lymphocytes present that produced mediators after antigen stimulation to result in positive CMI responses.

Animals↗

Toxicity of hexavalent chromium to the alveolar macrophage in vivo and in vitro.

In vivo and in vitro systems were used to evaluate hexavalent chromium toxicity to alveolar macrophages. Rat alveolar macrophages were exposed to 2 micrograms calcium chromate (CaCrO4, insoluble) or 2 micrograms chromium trioxide (CrO3, soluble) in live animals, in vivo, and in tissue culture, in vitro, collected by lavage from the lung. Chemiluminescence and oxygen consumption were measured as indicators of toxicity. Trypan blue dye exclusion was used to determine macrophage viability. In vivo exposure of the macrophage to either chromium compound showed no toxic effects at a 2-micrograms dose. Macrophages exposed in tissue culture, however, had values significantly different from controls. The untreated controls for both exposure methods were compared to evaluate differences resulting from methods alone.

Animals↗

Metabolism of phenanthridine to phenanthridone by rat lung and liver microsomes after induction with benzo[a]pyrene and Aroclor.

The comparative metabolism of phenanthridine (3,4-benzoquinoline) by rat lung and liver microsomes has been investigated. The array of metabolites produced by induced lung and liver are qualitatively similar. Phenanthridone has been identified as a phenanthridine metabolite produced by induced rat liver and lung. Phenanthridone is directly mutagenic in Salmonella tester strain TA-98 while phenanthridine is not. Although phenanthridone is more mutagenic than phenanthridine after incubation with rat liver 9000g supernatant fraction, it is less cytotoxic to Chinese hamster ovary cells in vitro.

Animals↗

Isobutane. CAS# 75-28-5.

Explore the source record for details and available documents.

Administration, Inhalation↗