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Biomedical subjects

J Travis

Publications and source records attributed to J Travis.

At least 235 records · Page 13Linked to original sources

An elastase inhibitor from equine leukocyte cytosol belongs to the serpin superfamily. Further characterization and amino acid sequence of the reactive center.

Horse leukocyte elastase inhibitor rapidly forms stable, equimolar complexes with both human leukocyte elastase and cathepsin G, porcine pancreatic elastase, and bovine alpha-chymotrypsin. Formation of the inhibitor-pancreatic elastase complex results in peptide bond cleavage at the reactive site of the inhibitor so that a small peptide fragment representing the carboxyl-terminal sequence of the inhibitor is released. Sequence analysis of both this peptide, as well as that of an overlapping peptide obtained by enzymatic inactivation of native inhibitor with either Staphylococcus aureus metalloproteinase, Pseudomonas aeruginosa elastase, or cathepsin B, yields data which indicate that the reactive site encompasses a P1-P1' Ala-Met sequence. However, unlike the human endothelial plasminogen activator inhibitor, which also has a Met residue in the P1' position, oxidation of the horse inhibitor only slightly reduces its association rate constant with either of the elastolytic enzymes tested or with chymotrypsin. Comparison of the amino acid sequence at or near the reactive site of the horse inhibitor (P2-P18') with members of the serpin superfamily of proteinase inhibitors indicates that it not only belongs in this class but also represents the first example of a functionally active intracellular serpin.

Amino Acid Sequence↗

Inactivation of tissue inhibitor of metalloproteinases by neutrophil elastase and other serine proteinases.

Tissue inhibitor of metalloproteinases (TIMP) from cultured bovine dental pulp inhibits human rheumatoid synovial matrix metalloproteinase 3 (MMP-3) with a stoichiometry of 1:1 on a molar basis. Among the serine proteinases examined, human neutrophil elastase, trypsin and alpha-chymotrypsin destroyed the inhibitory activity of TIMP against MMP-3 by degrading the inhibitor molecule into small fragments. In contrast, the inhibitory activity of TIMP was not significantly reduced by the actions of cathepsin G, pancreatic elastase and plasmin. These data indicate that neutrophils which infiltrate tissues in various inflammatory conditions may play an important role in regulating TIMP activity in vivo through the action of neutrophil elastase.

Animals↗

Degradation of elastin by a cysteine proteinase from Staphylococcus aureus.

Staphylococcus aureus is known to produce three very active extracellular proteinases. One of these enzymes, a cysteine proteinase, after purification to homogeneity was found to degrade insoluble bovine lung elastin at a rate comparable to human neutrophil elastase. This enzyme had no detectable activity against a range of synthetic substrates normally utilized by elastase, chymotrypsin, or trypsin-like proteinases. However, it did hydrolyze the synthetic substrate carbobenzoxy-phenylalanyl-leucyl-glutamyl-p-nitroanilide (Km = 0.5 mM, kcat = 0.16 s-1). The proteolytic activity of the cysteine proteinase was rapidly and efficiently inhibited by alpha 2-macroglobulin and also by the cysteine-specific inhibitor rat T-kininogen (Ki = 5.2 X 10(-7) M). Human kininogens, however, did not inhibit. Human plasma apparently contains other inhibitors of this enzyme, since plasma depleted of alpha 2-macroglobulin retained significant inhibitory capacity. The elastolytic activity of this S. aureus proteinase and its lack of control by human kininogens or cystatin C may explain some of the connective tissue destruction seen in bacterial infections due to this and related organisms such as may occur in septicemia, septic arthritis, and otitis.

Animals↗

Neutrophil elastase and cathepsin G: structure, function, and biological control.

When neutrophils invade inflamed areas of the body to remove either dead or foreign components they inadvertently release potent enzymes which can, if not properly controlled, cause severe damage to healthy tissue. This can lead to a myriad of diseases including emphysema, rheumatoid arthritis, and glomuerlopnephritis, all of which are really problems of abnormal connective tissue turnover due to uncontrolled protelysis by neutrophil elastase and cathepsin G. An important step in elucidating the functions of both elastase and cathepsin G has been made by virtue of the fact that the amino acid sequence of each has been determined. Furthermore, the crystal structure of one, neutrophil elastase, is now understood. With this knowledge in mind and with the potential for a similar understanding of the mechanism of action of cathepsin G, it should soon be possible to produce synthetic inhibitors of each enzyme which can act as adjunct inhibitors to those naturally circulating in the blood or present in other tissues. As a result there is great hope for reducing the severity of injury produced by these enzymes and, therefore, in decreasing the risk for development of the debilitating diseases associated with abnormal proteolysis by neutrophil proteinases.

Amino Acid Sequence↗

Preliminary characterization of toxins from the straw itch mite, Pyemotes tritici, which induce paralysis in the larvae of a moth.

Homogenates of whole mites (Pyemotes tritici) paralyze larvae of the greater wax moth Galleria mellonella. Injection of these homogenates into larvae produces symptoms identical to those obtained by bites from female mites. Since the paralytic activity is destroyed by heat and proteolytic enzymes and retained during dialysis, the toxic compounds appear to be proteins. Two protein fractions which differ both in molecular weight and toxicity were found following gel filtration of whole mite extracts. Larvae that are injected with proteins from the high molecular weight (c. 250,000) fraction (designated TxP-HMW) develop flaccid-muscle paralysis after 4-12 hr, while proteins in the low molecular weight fraction (c. 21,000) (designated TxP-LMW) induce a rapid, muscle-contracting paralysis.

Animals↗

Elastase regulates the synthesis of its inhibitor, alpha 1-proteinase inhibitor, and exaggerates the defect in homozygous PiZZ alpha 1 PI deficiency.

The net balance of neutrophil elastase, an enzyme that degrades many components of the extracellular matrix, and its inhibitor, alpha-1-proteinase inhibitor (alpha 1 PI), is thought to be a critical determinant in the development of destructive lung disease, especially in individuals with homozygous alpha 1 PI deficiency. Synthesis and secretion of alpha 1 PI has been recently demonstrated in cells of mononuclear phagocyte lineage, including peripheral blood monocytes and tissue macrophages. In this study we show that alpha 1 PI gene expression in human monocytes and bronchoalveolar macrophages is affected by a novel mechanism, whereby elastase directly regulates the synthesis of its inhibitor. In nanomolar concentrations, neutrophil or pancreatic elastase mediates a dose- and time-dependent increase in steady state levels of alpha 1 PI mRNA and in the rate of synthesis of alpha 1 PI in human monocytes and bronchoalveolar macrophages. Antisera to neutrophil elastase or pretreatment of elastase with the serine proteinase inhibitor diisopropylfluorophosphate abrogates the effect of elastase on alpha 1 PI expression. Elastase also stimulates the synthesis of alpha 1 PI in monocytes from homozygous PiZZ alpha 1 PI-deficient individuals, but has no effect on the rate of secretion; hence, the enzyme mediates an effect on alpha 1 PI that increases the intracellular accumulation of inhibitor and exaggerates the intrinsic defect in secretion of alpha 1 PI that characterizes the homozygous PiZZ alpha 1 PI deficiency.

Blood Proteins↗

Molecular cloning of human neutrophil elastase.

The human U937 cell line, a promonocyte-like leukemic line, has been shown to synthesize neutrophil elastase (Senior, R. M. et al. (1982) J. Clin. Invest. 69, 384-393). We have constructed a lambda gt11 cDNA library using RNA from this cell line and isolated a clone encoding part of the protein sequence of neutrophil elastase. Nucleotide sequencing indicates the clone encodes residues 108-243 (standard chymotrypsinogen numbering) of the enzyme, plus a hitherto unsuspected 20 residue-C-terminal extension of unusual structure. Comparison of the nucleotide and amino-acid sequence of elastase with the recently reported sequence of medullasin, a proteinase isolated from bone marrow, suggests they are identical.

Amino Acid Sequence↗

The functional role of acute phase plasma proteinase inhibitors.

Human plasma contains an array of proteinase inhibitors which are utilized in the regulation of a host of biological activities, including coagulation, fibrinolysis, connective tissue turnover, and complement activation. The concentration of several of these inhibitors increase at varying rates in the acute phase state while others remain constant or actually decrease. Increases are presumably an attempt to retain rigid control over certain critical reactions, while decreases are probably due to inhibitor turnover either through consumption during complex formation or inactivation by other endogenous proteinases. Virtually all of these latter reactions take place in a reactive site loop which is an exposed region present in at least eight related serine proteinase inhibitors (Serpins) in plasma. Complex formation and inhibitor inactivation presumably act as signals for inhibitor production and turnover in the acute phase state. However, exactly how this initial stimulus for increased protein synthesis is manifested at the protein level remains to be established.

Acute-Phase Reaction↗

The reactive site of human alpha 2-antiplasmin.

Human alpha 2-antiplasmin rapidly forms a stable, equimolar complex with either its target enzyme, plasmin, or with trypsin. Perturbation of the inhibitor-trypsin complex results in peptide bond cleavage at the reactive site of the inhibitor with the concomitant release of a small peptide fragment which apparently represents the carboxyl-terminal segment of the inhibitor. Sequence analysis of this fragment, together with that of an overlapping peptide obtained by treatment of native inhibitor with either Staphylococcus aureus V8 proteinase or human neutrophil elastase, yields data which indicate that the reactive site of alpha 2-antiplasmin encompasses a P1-P'1 Arg-Met sequence. However, unlike alpha 1-1-proteinase inhibitor which has a Met residue in the P1-position, oxidation of alpha 2-antiplasmin has no effect on its inhibitory activity toward either plasmin, trypsin, or chymotrypsin, indicating the lesser mechanistic importance of the P'1-residue during enzyme inactivation by this inhibitor.

Amino Acid Sequence↗

Molecular cloning of human cathepsin G: structural similarity to mast cell and cytotoxic T lymphocyte proteinases.

Human cathepsin G is a serine proteinase with chymotrypsin-like specificity found in both polymorphonuclear leukocytes (neutrophils) and the U937 leukemic cell line. Utilizing RNA from the latter, we have constructed a cDNA library in lambda gt11 and isolated a clone which apparently codes for the complete amino acid sequence of this enzyme. Analysis of the sequence reveals homology with rat mast cell proteinase II (47%) but a greater degree of identity (56%) with a product of activated mouse cytotoxic T lymphocytes. The close relationship between the three proteins indicates similarities in substrate specificity and in biosynthesis which we predict involves removal of a two amino acid activation peptide during or just before packaging into their respective storage granules.

Amino Acid Sequence↗

Serum alpha-1 proteinase inhibitor in advanced cancer: mass variants and functionally inert forms.

In 1984, we reported that while immunoreactive levels of serum alpha-1 proteinase inhibitor (API) increased significantly in nine patients with advanced solid tumors, the functional activity of the inhibitor, as measured by the serum trypsin inhibitory capacity, did not increase proportionately. This suggested that a portion of the circulating API was functionally inert. We have now assayed immunoreactive titers and trypsin inhibitory capacity of serum API of 49 patients with advanced carcinomas and 27 healthy controls. Immunoreactive levels of API (expressed as percentage of normal pooled serum which was taken as 100%) in cancer subjects were significantly elevated as compared to normals (mean +/- SE: 233 +/- 9.0% versus 102 +/- 2.0%, P less than 0.05). Although the trypsin inhibitory capacity of the cancer group (16.0 +/- 0.9 units/ml) was significantly elevated (P less than 0.05) as compared to normals (9.9 +/- 0.1 units/ml), this increase was less than that in the immunoreactive titer of API, suggesting the existence of functionally inert API in serum. The fraction of API which was functionally active in this group of cancer patients was 71.0 +/- 3.0% which was significantly less than the normal 98.0 +/- 2.0% (P less than 0.05). In 12 patients followed serially, both immunoreactive levels of API and the trypsin inhibitory capacity increased significantly at the time of clinical progression of disease. There was a significant correlation between increasing absolute granulocyte count and increasing trypsin inhibitory capacity (correlation coefficient 0.66; P less than 0.001). Neither disease progression nor increasing granulocyte count, however, was associated with increasing proportion of functionally inactive API. The inactive form of API had the same molecular weight as the native molecule as shown by gel permeation chromatography and sodium dodecyl sulfate-polyacrylamide gel electrophoresis/Western blot analysis of cancer sera. Therefore, the inactive form was not due to a complex between API and a tumor-derived protease or to proteolytic fragmentation of the native API. Elastase inhibitory capacity of cancer sera with subactive API was essentially identical with trypsin inhibitory capacity indicating that the active site methionine was not oxidized in the inert API. Sodium dodecyl sulfate-polyacrylamide gel electrophoresis/Western blot analysis showed that both normal and cancer serum API existed as two mass variants, at Mr 58,000 and 56,000. Both variants formed complexes with elastase and were functionally active.

Blood Proteins↗

Primary structure of human neutrophil elastase.

The complete amino acid sequence of human neutrophil elastase has been determined. The protein consists of 218 amino acid residues, contains two asparagine-linked carbohydrate side chains, and is joined together by four disulfide bonds. Comparison of the sequence to other serine proteinases indicates only moderate homology with porcine pancreatic elastase (43.0%) or neutrophil cathepsin G (37.2%). In particular, many of the residues suggested to play important roles in the mechanism by which the pancreatic elastase functions are significantly changed in the neutrophil enzyme, indicating alternative types of binding with the human proteinase.

Amino Acid Sequence↗

Interaction of mouse macrophage elastase with native and oxidized human alpha 1-proteinase inhibitor.

Native and oxidized alpha 1-proteinase inhibitor (alpha 1-PI) were compared as substrates for the metalloproteinase macrophage elastase. At substrate concentrations at which native alpha 1-PI was readily degraded by macrophage elastase, oxidized alpha 1-PI was hardly degraded at all. Incubation of macrophage elastase with oxidized alpha 1-PI before the addition of native alpha 1-PI showed that oxidized alpha 1-PI was not an inhibitor of macrophage elastase. Competition experiments with up to twofold excess oxidized alpha 1-PI did not interfere with the degradation of native alpha 1-PI by macrophage elastase. Sequence analysis of amino acids in degraded native alpha 1-PI showed that macrophage elastase attacked a single peptide bond between Pro-357 and Met-358, the latter representing the P1 reactive-site residue of alpha 1-PI. In oxidized alpha 1-PI, Met-358 was converted to methionine sulfoxide and macrophage elastase hydrolyzed the bond between Phe-352 and Leu-353. These data suggest that methionine may be the primary cleavage site for macrophage elastase and not leucine, as previously thought.

Amino Acid Sequence↗

The inactivation of human plasma alpha 1-proteinase inhibitor by proteinases from Staphylococcus aureus.

The interaction of three proteinases (seryl, cysteinyl, and metallo-) from Staphylococcus aureus with human plasma alpha 1-proteinase inhibitor has been investigated. As expected, none of the enzymes was inactivated by this protein, each, instead causing the conversion of the native inhibitor into an inactive form of decreased molecular weight. Amino-terminal sequence analysis indicated that inhibitor inactivation had occurred by peptide bond cleavage near the reactive center of this protein. When the inhibitor was modified by this treatment, it became resistant to both pH and temperature denaturation and, in contrast to the intact denatured protein, did not undergo further proteolytic degradation. This process of inactivation of alpha 1-proteinase inhibitor by pathogenic proteinases could result in a deregulation of its target enzyme, neutrophil elastase, and, therefore, may be important in the consumption of some plasma proteins by this enzyme during septicemia.

Amino Acid Sequence↗

Recombinant DNA-derived forms of human alpha 1-proteinase inhibitor. Studies on the alanine 358 and cysteine 358 substituted mutants.

The specificity and reactivity of human alpha 1-proteinase inhibitor has been investigated by in vitro mutagenesis of the reactive site P1 methionine 358 residue to alanine 358 and cysteine 358. A comparison of the second-order association rates of both uncharged mutants with 9 serine proteinases indicated that each reacted similarly to either the normal plasma inhibitor or to a mutant containing valine in this position (Travis, J., Owen, M., George, P., Carrell, R., Rosenberg, S., Hallewell, R. A., and Barr, P. J. (1985) J. Biol. Chem. 260, 4384-4389) when tested against either neutrophil or pancreatic elastase. However, oxidation, carboxymethylation, or aminoethylation of the cysteine mutant to yield a charged P1 residue resulted in a significant decrease in association rates with both elastolytic enzymes, and aminoethylation created an excellent trypsin and plasmin inhibitor. These results indicate that the specificity of alpha 1-proteinase inhibitor is determined in a general manner by the class of amino acid residue in the P1 position. Substitution within the same category, such as from valine to alanine or cysteine among the aliphatic hydrophobic residues, has little effect on association rates with the elastolytic enzymes tested. However, alteration from an uncharged to a charged residue may cause considerable changes in both inhibitor specificity and reactivity as noted here with the cysteine derivatives and also previously with a natural variant in which methionine 358 to arginine 358 conversion resulted in the production of a potent thrombin inhibitor (Owen, M. C., Brennan, S. O., Lewis, J. H., and Carrell, R. W. (1983) N. Engl. J. Med. 309, 694-698).

Alanine↗

X-ray crystal structure of the complex of human leukocyte elastase (PMN elastase) and the third domain of the turkey ovomucoid inhibitor.

Orthorhombic crystals diffracting beyond 1.7 A resolution, have been grown from the stoichiometric complex formed between human leukocyte elastase (HLE) and the third domain of turkey ovomucoid inhibitor (OMTKY3). The crystal and molecular structure has been determined with the multiple isomorphous replacement technique. The complex has been modeled using the known structure of OMTKY3 and partial sequence information for HLE, and has been refined. The current crystallographic R-value is 0.21 for reflections from 25 to 1.8 A resolution. HLE shows the characteristic polypeptide fold of trypsin-like serine proteinases and consists of 218 amino acid residues. However, several loop segments, mainly arranged around the substrate binding site, have unique conformations. The largest deviations from the other vertebrate proteinases of known spatial structure are around Cys168. The specificity pocket is constricted by Val190, Val216 and Asp226 to preferentially accommodate medium sized hydrophobic amino acids at P1. Seven residues of the OMTKY3-binding segment are in specific contact with HLE. This interaction and geometry around the reactive site are similar as observed in other complexes. It is the first serine proteinase glycoprotein analysed, having two sugar chains attached to Asn159 and to residue 109.

Animals↗