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Kunitz-type proteinase inhibitors derived by limited proteolysis of the inter-alpha-trypsin inhibitor, VII. Determination of the amino-acid sequence of the trypsin-released inhibitor from bovine inter-alpha-trypsin inhibitor.

An acid-labile proteinase inhibitor, quite similar to human inter-alpha-trypsin inhibitor, was isolated from bovine serum. An acid-resistant 30-kDa inhibitor, exhibiting properties similar to human HI-30, was also isolated. Upon limited proteolysis of both bovine inhibitors, active 14-kDa domains are released which are identical with respect to molecular mass and acid resistance. The amino-acid sequence determination of these fragments revealed a strong homology to the corresponding human inhibitor HI-14 which is characterized by two covalently linked Kunitz-type domains. The reactive-site residue is leucine in the N-terminal domain (in the human inhibitor methionine) and arginine in the C-terminal domain in both bovine and human inhibitor.

Alpha-Globulins↗

Kunitz-type proteinase inhibitors derived by limited proteolysis of the inter-alpha-trypsin inhibitor, X. The amino-acid sequences of the trypsin-released inhibitors from horse and pig inter-alpha-trypsin inhibitors.

The amino-acid sequences of the acid-resistant inhibitors released from horse and pig inter-alpha-trypsin inhibitor (ITI) by tryptic proteolysis were determined. They are composed of two covalently linked Kunitz-type domains. In both cases the reactive site of their C-terminal antitryptic domains is occupied by arginine as in the homologous human and bovine inhibitors. The reactive site of their N-terminal domain exhibits only a weak interaction with polymorphonuclear granulocytic elastase and is occupied by leucine as in the strong elastase inhibitor released from bovine ITI. The differences between inhibitory activities of the ITI-derived inhibitors from horse, pig, and cattle are discussed on the basis of sequence differences in position P'2.

Alpha-Globulins↗

Kunitz-type proteinase inhibitors derived by limited proteolysis of the inter-alpha-trypsin inhibitor, VII. Characterization of the bovine inhibitor as double-headed trypsin-elastase inhibitor.

The acid-resistant 14-kDa inhibitor BI-14, released from bovine inter-alpha-trypsin inhibitor, consists of two tandem Kunitz-type domains, and is of a double-headed nature. The Arg-Thr bond connecting both domains was cleaved and the two inhibitory domains were separated. The N-terminal domain is an inhibitor of bovine chymotrypsin and elastases from porcine pancreases and human polymorphonuclear granulocytes, whereas the C-terminal domain interacts with trypsin, plasmin, and chymotrypsin. In the intact inhibitor BI-14 both domains interact independently with the proteinases.

Alpha-Globulins↗

Agonist-induced internalization of leukotriene B(4) receptor 1 requires G-protein-coupled receptor kinase 2 but not arrestins.

The leukotriene B(4) (LTB(4)) receptor (BLT1) becomes desensitized upon repeated agonist stimulation. Little is known, however, about BLT1 internalization, which follows desensitization in most G-protein-coupled receptors (GPCR). In the current study, transiently expressed BLT1 readily internalized, after LTB(4) stimulation, in RBL-2H3 cells that express high levels of endogenous GPCR kinase 2 (GRK2) but did not in COS-7 or human embryonic kidney (HEK) 293 cells, which do not overexpress GRK. The internalization of BLT1 could be blocked in RBL-2H3 cells by coexpressing dominant-negative (DN) GRK2 K220R and could be promoted in HEK293 cells by coexpressing wild-type (WT) GRK2. Coexpression of WT or DN nonvisual arrestins had no effect on BLT1 internalization. Moreover, upon stimulation with LTB(4), BLT1 did not induce arrestin-green fluorescence protein redistribution in either cell type, even in the presence of overexpressed GRK2. Coimmunoprecipitation experiments confirmed that BLT1 could associate with GRK2 but not with arrestins. A C-tail-truncated mutant of BLT1 lost the capacity to internalize and associate with GRK2 upon exposure to LTB(4), suggesting that the C-tail was required for receptor internalization and association with GRK2. Taken together, our results indicate that the C terminus of BLT1 plays a pivotal role in receptor internalization and GRK2 association. Moreover, ligand-induced BLT1 internalization is dependent on GRK2 but independent of arrestins. This may allow differential, cell-type-specific signaling in response to LTB(4), depending on GRK expression levels.

Animals↗

Extracellular matrix-associated serine protease inhibitors (Mr 33,000, 31,000, and 27,000) are single-gene products with differential glycosylation: cDNA cloning of the 33-kDa inhibitor reveals its identity to tissue factor pathway inhibitor-2.

Recently, we reported the identification and partial characterization of three serine protease inhibitors (M(r) 33,000, 31,000, and 27,000) from the extracellular matrix (ECM) of human umbilical vein endothelial cells and skin cells. Here, we report that a full-length cDNA clone for the 33-kDa inhibitor from SV-40 transformed human skin fibroblasts (t12FB) is identical to a recombinant trypsin/tissue factor pathway inhibitor called TFPI-2 from placenta. By immunoblotting, the three inhibitors from ECM and cell lysates demonstrated cross-reactivity with an antiTFPI-2 IgG. To further elucidate how these inhibitors are related, pulse-chase labeling of t12FB with [35S]methionine followed by immunoprecipitation with antiTFPI-2 IgG was performed on ECM and cytosolic proteins. A precursor-product relationship did not exist between the three inhibitors from ECM. In contrast, the various species of inhibitors from cytosolic fractions demonstrated a precursor-product relationship. Within the cytosolic fraction, 26-, 29-, and 30-kDa inhibitors were detected in the early chases (0 and 15 min) but they form precursors to the synthesis of the 33-kDa inhibitor which accumulated in the later chases (30 min to 1 h). When pulse-chase experiments were performed in the presence of tunicamycin, synthesis as well as sequestration of the three inhibitors into ECM was completely inhibited. In the presence of tunicamycin, the cells synthesized and sequestered a single 25.5-kDa inhibitor into ECM. Peak quantities of the 25.5-kDa inhibitor appeared in the ECM after 6 h chase while they were 1 h for the 27- and 31-kDa inhibitors and 3 h for the 33-kDa inhibitor. To further support that the three inhibitors are related but only differ in the extent of glycosylation, the 33-kDa inhibitor from the t12FB ECM was deglycosylated with N-glycosidase F and the products were identified by immunoblotting with antiTFPI-2 IgG. The enzyme released the 31-, 27-, and 25.5-kDa inhibitors from the 33-kDa inhibitor. Collectively, these results demonstrate that the ECM-associated 33-, 31-, and 27-kDa inhibitors are biosynthetic products of a single gene with differential glycosylation. The 25.5-kDa inhibitor is unglycosylated, whereas 27- and 30- to 31-kDa inhibitors are partially glycosylated and the 33-kDa inhibitor is fully glycosylated. Inhibition of glycosylation significantly retarded the rate of secretion of the inhibitor but did not prevent its association with ECM. Quantitation of the inhibitors with cell-conditioned medium and ECM fractions reveals that 70-75% were ECM-associated and 25-30% cell-associated. None or very little of the inhibitors (0-2%) remained in a conditioned medium. Because they are primarily associated with ECM, the inhibitors may play a major role in ECM remodeling and turnover.

Base Sequence↗

Partial structure and hormonal regulation of rabbit liver inhibitor-1; distribution of inhibitor-1 and inhibitor-2 in rabbit and rat tissues.

Inhibitor-1 purified from rabbit liver could not be distinguished from the skeletal muscle protein by chromatographic, electrophoretic and immunological criteria. Amino acid sequences comprising 68% of rabbit liver inhibitor-1 were identical to the skeletal muscle protein indicating that they are products of a single gene. Total inhibitor-1 activity in heat-treated rabbit liver extracts was similar to that in skeletal muscle extracts, and the phosphorylation state of inhibitor-1 increased from 14% to 42% in rabbit liver in vivo after an intravenous injection of glucagon. Monospecific antibodies to rabbit skeletal muscle inhibitor-1 recognised a single major protein of identical electrophoretic mobility (26 kDa) in each rabbit tissue examined (skeletal muscle, liver, brain, heart, kidney, uterus and adipose). The antibodies also recognised a single major (30 kDa) protein in the same rat tissues, except liver. The results show that while there are interspecies differences in apparent molecular mass, inhibitor-1 is likely to be the same gene product in each mammalian tissue. Inhibitor-1 was not detected in rat liver, either by activity measurements or immunoblotting, irrespective of the age, sex or strain of the animals. Immunoblotting also failed to detect inhibitor-1 in mouse liver, although it was present in guinea pig, porcine and sheep liver. The absence of inhibitor-1 in rat liver indicates that phosphorylation of this protein cannot underlie the increased phosphorylation of hydroxymethylglutaryl-CoA reductase observed after stimulation by glucagon. Monospecific antibodies to rabbit skeletal muscle inhibitor-2 recognised a 31 kDa protein in each rabbit tissue, and a 33 kDa protein in all rat tissues including liver. The results suggest that inhibitor-2 is the same gene product in each mammalian tissue.

Amino Acid Sequence↗

Trypsin inhibitors from Ascaris: the reactive P1 site of the inhibitors (a correction) and location of the inhibitors and host trypsin in cross-sections of Ascaris.

Ascaris trypsin inhibitors 1, 2, and 3 have arginine at their reactive P1 site. This corrects an earlier report that lysine is the reactive P1 site residue in Ascaris trypsin inhibitor 1 (Peanasky et al., 1974, Bayer Symposium V: Proteinase Inhibitors, pp. 649-666). The present work illustrates that the residue modification method of Fritz et al. (1969, Z. Physiol. Chem., 350, 933-944) may not be reliably interpreted when trypsin inhibitors have an unusually high lysine content (greater than 12% of the molecular weight of the inhibitor). Thus the following procedure is recommended: treat the inhibitor with maleic anhydride first and second with butanedione reagent; then remove the maleyl groups in an acid environment and determine the activity of the inhibitor. Immunoperoxidase staining shows that antibody to Ascaris trypsin inhibitor 1 binds to body wall muscle, intestine, eggs and sperm in cross-sections of Ascaris. Antibody to TLCK-porcine trypsin binds to the same tissues and at the same sites as the antibody to Ascaris trypsin inhibitor 1. This is the first demonstration that a protein that originated in the host has been found in the parasite, Ascaris. Analyses of homogenates and of extracts of separated tissues always show an excess of free trypsin inhibitor and no evidence of active trypsin. The host protein is present inside the parasite, probably as the trypsin-inhibitor complex.

Animals↗

Influence of elastin on the inhibition of leucocyte elastase by alpha 1-proteinase inhibitor and bronchial inhibitor. Potent inhibition of elastin-bound elastase by bronchial inhibitor.

We have investigated the effect of human lung elastin on the inhibition of human leucocyte elastase by human alpha 1-proteinase inhibitor and bronchial inhibitor. Elastin was unable to dissociate the elastase-inhibitor complexes during the 150 min of the elastolysis reaction. When elastase was added to mixtures of elastin and alpha 1-proteinase inhibitor, it was fully bound to the latter. The competition between elastin and bronchial inhibitor was also in favour of the latter, but a 1.5 molar excess of inhibitor over elastase was required to achieve total binding of the enzyme. About 25% of elastin-bound elastase was found to be resistant to the inhibitory effect of alpha 1-proteinase inhibitor. The major isoenzyme and the mixture of the three minor isoenzymes of elastase exhibited similar behaviour. By contrast, bronchial inhibitor was as efficient in inhibiting the elastin-bound elastase as it was in inhibiting the free enzyme. This inhibitor was also able to inhibit fully the fraction of elastin-bound elastase that was resistant to alpha 1-proteinase inhibitor. We also describe a rapid procedure for the isolation of gram quantities of alpha 1-proteinase inhibitor.

Blood Proteins↗

Human mucus proteinase inhibitor (human MPI). Human seminal inhibitor I (HUSI-I), antileukoprotease (ALP), secretory leukocyte protease inhibitor (SLPI).

Human mucous secretions contain a proteinase inhibitor which is produced locally and inhibits, besides trypsin and chymotrypsin, granulocytic elastase and cathepsin G as well as mast cell chymase and tryptase. The various inhibitors isolated from different sources (bronchial mucus, parotid secretion, seminal plasma, cervical mucus, etc.) and named accordingly (bronchial mucus inhibitor, BMI; human seminal inhibitor I, HUSI-I; cervical mucus inhibitors, CUSI; antileukoprotease, ALP; secretory leukocyte protease inhibitor, SLPI) proved to be identical or derived from a mature inhibitory protein encoded by a single gene of the human genom. Therefore, this inhibitor should be named mucus proteinase inhibitor, MPI. Such a neutral terminus would help to avoid misleading interpretations of already published data and also of the biological role of this inhibitory protein because the MPI may serve several and different physiological functions.

Humans↗

Regulation of Proteinase Inhibitor Synthesis in Tomato Leaves : IN VITRO SYNTHESIS OF INHIBITORS I AND II WITH mRNA FROM EXCISED LEAVES INDUCED WITH PIIF (PROTEINASE INHIBITOR INDUCING FACTOR).

Messenger RNA was isolated from young excised tomato leaves, induced to accumulate proteinase Inhibitors I and II with the proteinase inhibitor inducing factor (PIIF), and translated in vitro in a rabbit reticulocyte lysate system. Translatable messenger RNAs specific for Inhibitors I and II were present in PIIF-induced leaves but were not present without PIIF induction. The nascent in vitro-synthesized inhibitors migrated with an apparent molecular weight 2,000 to 3,000 daltons larger than that of the two inhibitors isolated from leaves. The molecular weights of the preinhibitors were identical whether translated from mRNA from PIIF-induced leaves or translated from mRNA isolated from wounded leaves. Incubation of excised PIIF-induced plants in CO(2)-free air doubled the rate of in vivo synthesis of Inhibitor I over that in normal air (Ryan CA 1977 Biochem Biophys Res Commun 77: 1004-1008) but did not affect the rate of in vivo Inhibitor II accumulation. The rate of incorporation of (35)SO(4) (2-) into soluble proteins was 70% less when leaves were incubated in CO(2)-free air rather than normal air. Messenger RNA isolated from PIIF-induced plants incubated in the presence or absence of CO(2) was translated in vitro. The amount of in vitro-translatable mRNA present for each inhibitor (per microgram total mRNA) was the same in leaves incubated in either atmosphere. Therefore, the increased rate of synthesis and accumulation of Inhibitor I in a CO(2)-free atmosphere does not appear to result from an increased level of mRNA but appears to be controlled at a posttranscriptional level.

Journal Article↗

[About degradation products of the inter-alpha-trypsin inhibitor in serum. I. The inter-alpha-trypsin inhibitor as precursor of the acid stable trypsin-plasmin-inhibitor of the serum (author's transl)].

The humoral inter-alpha-trypsin inhibitor is to define as precursor of the acid stable trypsin-plasmin-inhibitor in the serum. The inhibitor is filtrated by the glomerulum and excreted in the urine. The serum level of the inhibitor is increased in nephropathy. Using a new assay for the intact precursor it was found that during inflammation the decreased precursor level indicates an increased turnover, though the glomerular filtration of the acid-stable inhibitor is within normal range. The increase of the precursor level during nephropathy indicates that the kidney is the main degradation organe for the inter-alpha-trypsin inhibitor. Nevertheless, an increase of the acid-stable inhibitor is to be seen. This fact is only to explain if it is assumed that the inter-alpha-trypsin inhibitor is permanently degraded everywhere in the organism.

Fibrinolysin↗

Calculation of inhibitor Ki and inhibitor type from the concentration of inhibitor for 50% inhibition for Michaelis-Menten enzymes.

The use of I50 (concentration of inhibitor required for 50% inhibition) for enzyme or drug studies has the disadvantage of not allowing easy comparison among data from different laboratories or under different substrate conditions. Modifications of the Michaelis-Menten equation for treatment of inhibitors can allow both the determination of the type of inhibition (competitive, noncompetitive, and uncompetitive) and the Ki for the inhibitor. For competitive and uncompetitive inhibitors when the assay conditions are [S] = Km, then Ki = I50/2. For different conditions of [S] there is a divergence between competitive and uncompetitive inhibitors that may be used to identify the type of inhibitor. The equation for Ki also differs. For noncompetitive inhibitors the Ki = I50 and this relationship is valid with changing [S]. The equations developed require a single substrate, reversible-type inhibitors, and kinetics of the Michaelis-Menten type. Examples of the use of the equations are illustrated with experimental data from scientific publications.

Binding, Competitive↗

Kunitz-type proteinase inhibitors derived by limited proteolysis of the inter-alpha-trypsin inhibitor, IX. Isolation and characterization of the inhibitory parts of inter-alpha-trypsin inhibitors from several mammalian sera.

The inhibitory parts of inter-alpha-trypsin inhibitor-like proteins from several mammalian sera (sheep, goat, horse, donkey, pig, rabbit, rat and dog) were released by limited proteolysis with trypsin and were isolated by reversible binding to immobilized trypsin. The inhibitors are very similar with respect to their stability in acids, molecular masses and amino-acid compositions. They are different, however, in their inhibitory properties. In view of the known covalent structures of the inhibitory parts of the human and bovine inhibitors, homologous covalent structures consisting of two tandem Kunitz-type domains are suggested also for the isolated inhibitors. Bovine trypsin, bovine chymotrypsin and porcine plasmin are inhibited by all investigated inhibitors, most likely via their C-terminal domain. The inhibitors from horse, donkey, rabbit, rat and dog serum interact also with elastase from human polymorphonuclear granulocytes, those from sheep, goat and pig serum inhibit in addition porcine pancreatic elastase and bovine chymotrypsin via their N-terminal Kunitz-type domain. It is supposed that the amino-acid residue in position P1 of the N-terminal Kunitz-type domain is responsible for the characteristic inhibitory properties of each inhibitor.

Alpha-Globulins↗

Crystal structures of bovine chymotrypsin and trypsin complexed to the inhibitor domain of Alzheimer's amyloid beta-protein precursor (APPI) and basic pancreatic trypsin inhibitor (BPTI): engineering of inhibitors with altered specificities.

The crystal structures of the inhibitor domain of Alzheimer's amyloid beta-protein precursor (APPI) complexed to bovine chymotrypsin (C-APPI) and trypsin (T-APPI) and basic pancreatic trypsin inhibitor (BPTI) bound to chymotrypsin (C-BPTI) have been solved and analyzed at 2.1 A, 1.8 A, and 2.6 A resolution, respectively. APPI and BPTI belong to the Kunitz family of inhibitors, which is characterized by a distinctive tertiary fold with three conserved disulfide bonds. At the specificity-determining site of these inhibitors (P1), residue 15(I)4 is an arginine in APPI and a lysine in BPTI, residue types that are counter to the chymotryptic hydrophobic specificity. In the chymotrypsin complexes, the Arg and Lys P1 side chains of the inhibitors adopt conformations that bend away from the bottom of the binding pocket to interact productively with elements of the binding pocket other than those observed for specificity-matched P1 side chains. The stereochemistry of the nucleophilic hydroxyl of Ser 195 in chymotrypsin relative to the scissile P1 bond of the inhibitors is identical to that observed for these groups in the trypsin-APPI complex, where Arg 15(I) is an optimal side chain for tryptic specificity. To further evaluate the diversity of sequences that can be accommodated by one of these inhibitors, APPI, we used phage display to randomly mutate residues 11, 13, 15, 17, and 19, which are major binding determinants. Inhibitors variants were selected that bound to either trypsin or chymotrypsin. As expected, trypsin specificity was principally directed by having a basic side chain at P1 (position 15); however, the P1 residues that were selected for chymotrypsin binding were His and Asn, rather than the expected large hydrophobic types. This can be rationalized by modeling these hydrophilic side chains to have similar H-bonding interactions to those observed in the structures of the described complexes. The specificity, or lack thereof, for the other individual subsites is discussed in the context of the "allowed" residues determined from a phage display mutagenesis selection experiment.

Amino Acid Sequence↗

Monoclonal antibodies against the heparin-dependent protein C inhibitor suitable for inhibitor purification and assay of inhibitor complexes.

Two different monoclonal antibodies against the heparin-dependent inhibitor of human activated protein C were produced, using cleaved modified inhibitor for immunization and partially purified inhibitor for screening of the hybridomas. One of the antibodies recognized free and complexed forms of the inhibitor in immunoblotting experiments. The other antibody was used to develop an assay for APC-PCI inhibitor complexes. Using the assay the formation of complexes was studied in plasma, both in the presence and absence of heparin. The rate of complex formation was similar to that reported previously for the loss of activated protein C amidolytic activity in plasma. The same antibody was also immobilized on Sepharose and used to purify the inhibitor from fresh human plasma. The purified material appeared as two narrowly spaced bands with Mr about 57,000 in SDS-PAGE. The average yield from 1 liter of fresh plasma was 1 mg of inhibitor. The purified inhibitor formed SDS stable complexes with activated protein C and urokinase that could be identified in immunoblots using specific antibodies.

Antibodies, Monoclonal↗

A possible evolutionary relationship between plant trypsin inhibitor, alpha-amylase inhibitor, and mammalian pancreatic secretory trypsin inhibitor (Kazal).

The amino acid sequence of the carboxyl-terminal half of barley trypsin inhibitor was found to be significantly similar to the whole sequence of bovine pancreatic secretory trypsin inhibitor (Kazal). Kazal type inhibitors and related proteins are known for the extraordinary mode of divergence among animals, and the present observation extends this to a plant for the first time. The present observation together with our previous finding of sequence homology between barley trypsin inhibitor and wheat alpha-amylase inhibitor (Odani, S., Koide, T., & Ono, T. (1982) FEBS Lett. 141, 279-282) suggest an unusual evolutionary relationship between cereal enzyme inhibitors and animal proteinase inhibitors of the Kazal type.

Amino Acid Sequence↗

Hydrogen exchange kinetics of bovine pancreatic trypsin inhibitor beta-sheet protons in trypsin-bovine pancreatic trypsin inhibitor, trypsinogen-bovine pancreatic trypsin inhibitor, and trypsinogen-isoleucylvaline-bovine pancreatic trypsin inhibitor.

Hydrogen exchange rates of six beta-sheet peptide amide protons in bovine pancreatic trypsin inhibitor (BPTI) have been measured in free BPTI and in the complexes trypsinogen-BPTI, trypsinogen-Ile-Val-BPTI, bovine trypsin-BPTI, and porcine trypsin-BPTI. Exchange rates in the complexes are slower for Ile-18, Arg-20, Gln-31, Phe-33, Tyr-35, and Phe-45 NH, but the magnitude of the effect is highly variable. The ratio of the exchange rate constant in free BPTI to the exchange rate constant in the complex, k/kcpIx, ranges from 3 to much greater than 10(3). Gln-31, Phe-45, and Phe-33 NH exchange rate constants are the same in each of the complexes. For Ile-18 and Tyr-35, k/kcpIx is much greater than 10(3) for the trypsin complexes but is in the range 14-43 for the trypsinogen complexes. Only the Arg-20 NH exchange rate shows significant differences between trypsinogen-BPTI and trypsinogen-Ile-Val-BPTI and between porcine and bovine trypsin-BPTI.

Animals↗

Solution conformation of a synthetic bis-headed inhibitor of trypsin and carboxypeptidase A: new structural alignment between the squash inhibitors and the potato carboxypeptidase inhibitor.

The trypsin carboxypeptidase peptide inhibitor (TCPI) which inhibits both trypsin and carboxypeptidase A has been chemically engineered by modification of the Ecballium elaterium trypsin inhibitor II (EETI-II). The solution conformation of TCPI, studied by two-dimensional nuclear magnetic resonance, was shown to be very close to those of squash inhibitors. Only limited deviations of the trypsin binding loop compared to its location in the EETI-II/trypsin complex were detected. It was also shown that the position of the C-terminal tail did not significantly change from the position observed in the complex between carboxypeptidase A and the potato carboxypeptidase inhibitor (PCI). The conformation of TCPI was carefully compared with the PCI one and a new structural alignment between the two microproteins is proposed. This alignment points out the very good conservation in the two inhibitors of a subdomain comprising segments 7-15, 19-22 and 25-28. Most importantly, the 2-19 disulfide bridge of TCPI was not structurally conserved in PCI and appeared to be rather unimportant for the early folding process of these molecules. This result agrees with the recent observation that the 2-19 bridge is the last to be formed in the folding of the squash inhibitor EETI-II and suggests that this is also the case during the folding of the potato carboxypeptidase inhibitor.

Amino Acid Sequence↗