PubMed HealthSearch

Biomedical subjects

R A Sandhaus

Publications and source records attributed to R A Sandhaus.

12 recordsLinked to original sources

Alpha 1-antitrypsin augmentation therapy.

Alpha 1-proteinase inhibitor (also known as alpha 1-antitrypsin) derived from pooled human serum (Prolastin, Miles Biologicals) has been available in the United States since 1988. Although no formal controlled prospective study has been performed to prove its efficacy, intravenous administration of Prolastin has been the accepted treatment for individuals with pulmonary emphysema due to alpha 1-antitrypsin deficiency. In addition, Prolastin has been used experimentally by inhalation for the treatment of cystic fibrosis. It has been administered with some success to treat the panniculitis associated with alpha 1-antitrypsin deficiency. As a greater number of severely impaired alpha 1-antitrypsin deficient patients receive lung transplantation, the role of Prolastin in the post-transplant therapy of these patients will need evaluation. Newer antiproteases may render Prolastin obsolete with respect to its route of administration and its pricing, however, the safety record of this drug has been impressive.

Humans

Bacterial lipopolysaccharide enhances chemoattractant-induced elastase secretion by human neutrophils.

Bacterial lipopolysaccharide (LPS) has previously been shown to enhance a number of chemoattractant-induced responses by human neutrophils. The possible role of elastase, a neutral protease with broad substrate specificity, in neutrophil-mediated vascular injury of a variety of diseases prompted us to examine a) whether or not LPS enhances the direct chemoattractant-induced secretion of elastase, b) the quantitative requirements of LPS and chemotactic factors, and c) some structural requirements of LPS for this effect. Our results show that LPS at 10 ng/ml and above, enhanced formyl-methionyl-leucyl-phenylalanine-induced neutrophil secretion of elastase, as well as secretion of myeloperoxidase and vitamin B12-binding protein. This effect was independent of cytochalasins or surface stimulation, and thus may occur during chemotactic factor stimulation in vivo. LPS also enhanced neutrophil secretory responses to the complement fragments C5a, C5a des arg, and, to a lesser degree, to leukotriene B4 and platelet-activating factor. This enhancement effect appeared to require the presence of the lipid A moiety and/or parts of the core polysaccharide but not the O-antigen portion of the LPS molecule. Our findings identify a possible LPS-dependent mechanism of neutrophil elastase-mediated tissue injury in Gram-negative infections.

Antigens, Bacterial

O2 metabolites and neutrophil elastase synergistically cause edematous injury in isolated rat lungs.

Addition of glucose oxidase (GO) increased H2O2 concentrations and decreased antielastolytic activities of beta-D-glucose containing perfusates of isolated rat lungs. Pretreatment with GO also caused acute edematous injury (increased lung weight gains, increased recovery of Ficoll in lung lavages, and increased pulmonary arterial pressures) in isolated lungs perfused with purified human neutrophil elastase (NE). Acute edematous injury in isolated lungs pretreated with GO and then NE exceeded levels found in lungs following addition of GO or NE alone or NE before GO. Simultaneous addition of catalase (an H2O2 scavenger) or methoxy-succinyl-L-alanyl-L-alanyl-prolyl-L-valine-chloromethyl ketone (an NE inhibitor, but not aminotriazole-inactivated catalase, N-tosyl-L-phenyl-alanine chloromethyl ketone (a chymotrypsin inhibitor) or N-alpha-p-tosyl-L-lysine chloromethyl ketone (a trypsin inhibitor), prevented acute edematous injury in isolated lungs perfused with both GO and NE. This observation indicated that injury was dependent on both H2O2 and NE, especially since the relative inactivating specificities of the inhibitors for H2O2 or NE, respectively, were confirmed under similar conditions in vitro. The synergistic nature of the interaction between H2O2 and NE-mediated injury was further clarified when GO- and NE-induced lung injury was prevented by addition of an oxidant-resistant NE inhibitor (Eglin-C), but not an oxidant-sensitive NE inhibitor (human alpha 1-protease inhibitor, alpha 1PI). Moreover, treatment with H2O2 also decreased the ability of alpha 1PI but not Eglin-C to decrease NE activity in vitro.(ABSTRACT TRUNCATED AT 250 WORDS)

Animals

Neutrophil-mediated injury to endothelial cells. Enhancement by endotoxin and essential role of neutrophil elastase.

The neutrophil has been implicated as an important mediator of vascular injury, especially after endotoxemia. This study examines neutrophil-mediated injury to human microvascular endothelial cells in vitro. We found that neutrophils stimulated by formyl-methionyl-leucyl-phenylalanine (FMLP), the complement fragment C5a, or lipopolysaccharide (LPS) (1-1,000 ng/ml) alone produced minimal endothelial injury over a 4-h assay. In contrast, neutrophils incubated with endothelial cells in the presence of low concentrations of LPS (1-10 ng/ml) could then be stimulated by FMLP or C5a to produce marked endothelial injury. Injury was maximal at concentrations of 100 ng/ml LPS and 10(-7) M FMLP. Pretreatment of neutrophils with LPS resulted in a similar degree of injury, suggesting that LPS effects were largely on the neutrophil. Endothelial cell injury produced by LPS-exposed, FMLP-stimulated neutrophils had a time course similar to that induced by the addition of purified human neutrophil elastase, and different from that induced by hydrogen peroxide (H2O2). Further, neutrophil-mediated injury was not inhibited by scavengers of a variety of oxygen radical species, and occurred with neutrophils from a patient with chronic granulomatous disease, which produced no H2O2. In contrast, the specific serine elastase inhibitor methoxy-succinyl-alanyl-alanyl-prolyl-valyl-chloromethyl ketone inhibited 63% of the neutrophil-mediated injury and 64% of the neutrophil elastase-induced injury. However, neutrophil-mediated injury was not inhibited significantly by 50% serum, 50% plasma, or purified alpha 1 proteinase inhibitor. These results suggest that, in this system, chemotactic factor-stimulated human neutrophil injury of microvascular endothelial cells is enhanced by small amounts of LPS and may be mediated in large part by the action of neutrophil elastase.

Amino Acid Chloromethyl Ketones

Epithelial permeability produced by phagocytosing neutrophils in vitro.

Neutrophils are thought to increase alveolar permeability in many types of lung injury. To investigate the contribution of neutrophils to the development of permeability pulmonary edema, we have developed an in vitro cell culture system for studying alveolar epithelial permeability. Rat alveolar type II cells, cultured for 6 to 12 days on collagen-coated Millipore filters, form a morphologically and pharmacologically polarized epithelium. The filters are mounted between 2 lucite chambers, and electrical resistance (permeability to ions) and spontaneous potential difference across the monolayer are measured continually or at frequent intervals. When neutrophils and the phagocytosable particle, opsonized zymosan (but not neutrophils or opsonized zymosan alone), were added to the apical side, the potential difference and transepithelial resistance fell dramatically after 20 min, which indicates an increase in epithelial permeability. The increase in epithelial permeability was inhibited by serum alpha-1-protease inhibitor (250 micrograms/ml), methoxysuccinyl-Ala-Ala-Pro-Val-chloromethyl ketone (0.02 mM) (an elastase inhibitor), catalase (2,500 units/ml), and superoxide dismutase (330 units/ml). In experiments with a lower concentration of phagocytosing neutrophils, a slower rate of decrease in resistance occurred, and in 3 of 13 studies, there was a definite recovery of the resistance to initial values. This study demonstrated that phagocytosing but not resting neutrophils increase the permeability of the epithelial monolayers to ions and suggests that the increased permeability in this system is mediated in part by both neutral protease(s) and oxygen radicals.

Animals

Elastases and elastin degradation.

The metabolic turnover of mature elastin fibers in adult animals is relatively slow. Although only small amounts of elastin are degraded normally, increased degradation and fragmentation of elastic fibers may play a significant role in disease processes. Elastinolytic enzymes are found in microorganisms, snake venoms, and in a number of mammalian cells and tissues, including pancreas, polymorphonuclear leukocytes, and macrophages. Elastinolytic enzymes fall into all 4 classes of proteinases (aspartic, cysteine, serine, and metallo) and show a spectrum of different specificities. All elastases studied to date have catalytic activity against protein and peptide substrates other than elastin. The presence of elastase activity is a virulence factor associated with the pathogenicity of Pseudomonas and other bacteria, dermatophytic fungi, and necrosis by rattlesnake venoms. Only elastinolytic enzymes are capable of inducing experimental pulmonary emphysema. Elastin degradation mediated by living macrophages and trophoblasts is confined to the immediate pericellular environment. Destruction of mature elastin by other mammalian elastases is probably the result of an imbalance in the normal inhibitor-proteinase ratio. The major plasma inhibitors contributing to the regulatory balance are alpha 1-proteinase inhibitor and alpha 2-macroglobulin.

Animals

Elastase-induced emphysema: retention of instilled proteinase in the rat.

Airway instillation of proteinases with the ability to degrade elastin has been used to produce disease in the rat analogous to human pulmonary emphysema. This study examined the retention, localization, and fate of endotracheally instilled elastase using 125Iodine labeled enzyme and immunoperoxidase histochemistry. Porcine pancreatic elastase labeled with 125I was detected in rat lungs through 96 h after instillation; over half of the label was still present after 7 h. Similar results were obtained when elastase was reacted with a specific, catalytic site inactivator prior to instillation. Trypsin and denatured elastase, however, were cleared much more rapidly from the lung (less than half of the label present after 30 min). When lungs were homogenized after instillation of active elastase, the soluble fraction contained elastase bound to rat alpha1-antitrypsin. In addition, a small amount of label (less than 10%) appeared bound to insoluble components for extended periods of time. Using immunoperoxidase histochemistry, it was found that exogenous elastase was rapidly contained with pulmonary alveolar macrophages, as well as associated with alveolar septums and other parenchymal structures. Similar results were obtained with elastase from both porcine pancreas and human neutrophils. These results suggest that exogenous elastase in the rat, and perhaps endogenous elastolytic enzymes in humans, may have several fates in the lungs: complex formation with endogenous inhibitors, containment within the macrophage, and/or association with connective tissue targets.

Animals

Experimental emphysema induced with purified human neutrophil elastase: tissue localization of the instilled protease.

Human neutrophilic polymorphonuclear leukocyte (PMN) elastase was purified by affinity chromatography to greater than 95% homogeneity as judged by disc-gel electrophoresis. Dog lung elastin was prepared from alveolar-enriched tissue by prior extraction of soluble and collagenous lung proteins with 0.1 M NaOH at 98 degrees C. Digestion of the remaining insoluble residue by the purified PMN enzyme was monitored by Lowry assay of acid-soluble peptides released. The PMN enzyme possessed 60% of the digestive activity of crystallized porcine pancreatic elastase (weight:weight comparison) when tested in vitro against this substrate in phosphate-NaCl buffer at pH 7.5. Whole tissue studies were then performed in lungs of laboratory animals. One-ml samples containing purified PMN elastase were instilled into lavaged and saline-perfused isolated dog lung at the level of the sixth to seventh generation bronchus. Treatment with 384 mug of the PMN enzyme produced anatomic emphysema after a 90-min incubation at room temperature, which was comparable to that produced by 100 mug of porcine pancreatic elastase. Frozen sections of treated and control lungs were examined for the presence of PMN elastase by the indirect immunoperoxidase method using a monospecific rabbit antiserum against PMN elastase as the primary stain. Light microscopy revealed elastase bound to connective tissue in the treated lungs, in close proximity to aldehyde-fuchsin-counterstained elastic fibers. A similar experiment was tn of enzyme solutions containing 1;0 mg of elastase per ml produced discrete lesions within 90 min, as before. Light microscopic studies in conjunction with the indirect immunoperoxidase staining method again demonstrated elastase in association with connective tissue elements in the lesion area. In addition, part of the instilled protease could be demonstrated within alveolar macrophages. Electron microscopy combined with immunoperoxidase staining revealed direct attachment of th einstilled enzyme to elastic fibers within alveolar septa. In enzyme-treated tissue, some septa showed severe depletion of intercellular structures with the exception of colalgen, which was generally preserved. These results show that human leukocyte elastase penetrated dog alveolar septal connective tissue after airway instillation and that the enzyme attaches to elastic fibers, inducing histologic changes comparable to thos seen in human emphysema.

Animals