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T Seya

Publications and source records attributed to T Seya.

At least 163 records · Page 9Linked to original sources

Heat-induced thiol-disulfide interchange reaction on the third component of human complement, C3.

The third component of human complement, C3 is composed of two disulfide-bridged polypeptide chains of Mr 120,000 (alpha chain) and Mr 70,000 (beta chain). C3 has a thioester bond that serves as a binding site for targets when C3 is activated. Heat treatment of C3 induces autolytic peptide bond cleavage at the thioester site in the alpha chain as well as rupture of the thioester bond. The alpha chain fragments are linked to each other and beta chain via disulfide bonds. This study, however, documented that prolonged heating gave rise to liberation of several fragments including beta and the larger fragment of alpha chain. Using a fluorescent thiol reagent and [14C]iodoacetamide, we analyzed thiol residues present on each fragment, and elucidated that the thiol residue exposed by rupture of the thioester bond shifts in turn to another fragment resulting in the liberation of the fragments. The results were compatible with those on C4, and suggested that the generated thiol residue induces thiol-disulfide interchange reaction. On heating of plasma, fragments of C3 were not released, while the cleavage of the alpha chain occurred more effectively. The heated C3 (56 degrees C, 15 min) became insusceptible to C3b inactivator (I) and factor H, suggesting that additional conformational change is accompanied with cleavage of the thioester bond.

Complement C3↗

The mechanism of discordant xenograft rejection.

The mechanism of discordant xenograft rejection using the guinea pig-to-rat heart graft model was studied. In this model, we found that (A) Rejection occurred rapidly, in 17.5 +/- 8.3 min (mean +/- SD) (n = 8). (B) The graft survived longer when the recipient rat was pretreated with cobra venom facter (CVF). (C) Complement hemolytic titers in serum showed significant reduction of C3 in rejection without consumption of C4 and C2, suggesting complement activation through the alternative pathway. (D) No natural antibodies were detected in this combination. Complement-dependent cytotoxicity (CDC) titer, and hemagglutination (HA) titer were lower than x1. (E) Histological examination of the rejected heart xenograft revealed a large area of myocytolysis without interstitial cellular infiltration. (F) In vitro experiments showed that rat complement attacked guinea pig erythrocytes (Egp) via the alternative pathway. These findings indicate that rejection in this discordant xenograft model of guinea pig-to-rat was caused by primary activation of complement via the alternative pathway.

Animals↗

[Structure and function of a cell-associated complement regulatory protein, membrane cofactor protein (MCP)].

Based on evidence suggesting that human leukocytes have factor I cofactor activity that is distinct from C3b/C4b receptor (CR1), we purified the cofactor protein from several human leukocyte cell-lines, and its structural and functional properties assessed. This protein migrates Mr 45,000-70,000 dalton region with a broad singlet or doublet on SDS-PAGE, specifically binds to C3b and C4b, has an acidic pI around pH 4, is rich in proline in amino acid analysis, possesses both N-linked and O-linked oligosaccharides, generates iC3b by acting as a cofactor for I-mediated C3b cleavage, and does not disassemble the C3 convertases. This protein therefore shares some common properties characteristic to complement regulatory proteins, CR1, H, and C4b-binding protein (C4bp). In addition, the functional profile of this protein is complementary to that of decay-accelerating factor (DAF) that has been known to be a protective protein for complement-mediated cell damage. We named this protein membrane cofactor protein (MCP), and suspect that the reason DAF and MCP are widely distributed on human peripheral blood cells relates to their synergistic activity profile such that complement activation on autologous tissue is inhibited.

Antigens, CD↗

Additional forms of human decay-accelerating factor (DAF).

Decay-accelerating factor (DAF) of human erythrocytes is a glycoprotein with a Mr of 65,000 that is anchored in the membrane via a glycolipid tail. During the purification of DAF, two lower m.w. forms were noted. DAF-A had an Mr of 63,000, and DAF-B had an Mr of 55,000. In a fluid phase assay, both forms accelerated the decay of the classical and the alternative C3 convertases with a specific activity similar to that of DAF. However, the decay-accelerating activity for the cell-bound C3 convertases was abolished, suggesting that neither could insert into E membranes and therefore that the glycolipid tail is altered. Analysis by molecular sieve high-pressure liquid chromatography demonstrated that DAF-A eluted with a Mr of approximately 450,000, similar to native DAF, and was thus in an aggregated form. In contrast, DAF-B eluted as a monomer with a Mr of approximately 60,000. DAF-A, but not DAF-B, bound to a hydrophobic column. To further characterize these two forms, surface-labeled human erythrocytes were incubated with phosphatidyl inositol-specific phospholipase C or papain. The phospholipase inefficiently released a form of DAF that was slightly larger (Mr of 64,000) than DAF-A. Papain efficiently released a 55,000 fragment that had the same Mr as DAF-B. To determine if DAF was cleaved by endogenous enzymes, surface-labeled erythrocytes were incubated with leukocytes. The kinetics of the leukocyte-induced degradation was similar to those observed with papain, and the released fragment aligned on seizing gels with the papain-derived fragment. We hypothesize that endogenous phospholipases and proteases cleave DAF to produce fragments similar to DAF-A and DAF-B, respectively.

Butanols↗

A polymorphism of the complement regulatory protein MCP (membrane cofactor protein or gp45-70).

Membrane cofactor protein (MCP or gp45-70) is a recently described regulatory glycoprotein of the complement system which binds iC3 or C3b and is present on human platelets, T cells, B cells, monocytes, and mononuclear-derived cell lines. On sodium dodecyl sulfate-polyacrylamide gel electrophoresis, MCP migrates as a doublet with an Mr of the upper band of 63,000 and the lower band of 58,000. The same pattern was found on all cell populations in a given individual and was stable over time. In order to further characterize the two band pattern on sodium dodecyl sulfate-polyacrylamide gel electrophoresis, MCP was isolated by affinity chromatography or immunoprecipitation from 72 healthy unrelated donors. All individuals expressed both bands and, based on the densitometric scanning of gels, three patterns were noted: upper band predominant in 65%, approximately equal distribution of upper and lower bands in 29%, and lower band predominant in 6%. These observed phenotypic frequencies fit with expectations based on Hardy-Weinberg equilibrium for a two-allele system. Family studies also support this model as none of the 26 offspring had a phenotype that deviated from the expected, assuming an autosomal codominant model of inheritance. These results are consistent with a simple two-allele system that controls the expression of the two bands of MCP.

Antigens, CD↗

Location of the interchain disulfide bonds of the fourth component of human complement (C4): evidence based on the liberation of fragments secondary to thiol-disulfide interchange reactions.

Treatment of human C4 with chemical denaturants and heat produces rapid, autolytic peptide bond cleavage of the alpha-chain. These alpha-chain fragments are linked to the parent C4 molecule through disulfide bonds. On more prolonged heating, however, there is liberation of several peptides, including the beta-chain, the gamma-chain, and a C-terminal alpha-chain fragment. This reaction is inhibited by iodoacetamide. By using a fluorescent thiol reagent and 14C-iodoacetamide, the thiol group present on each peptide was analyzed. The results suggest that the thiol residue exposed by cleavage of the thioester bond induces thiol-disulfide interchange reactions to liberate the peptides. Based on the identification of fragments liberated, the kinetics of their appearance, their sulfhydryl content, and the reported primary structure of human C4, a model of the interchain disulfide bonds is proposed in which the amino terminal portion of the alpha-chain is disulfide-linked to both the beta- and gamma-chains, whereas the carboxyl terminal portion of the alpha-chain is disulfide-linked to only the gamma-chain.

Amino Acid Sequence↗

Purification and characterization of a membrane protein (gp45-70) that is a cofactor for cleavage of C3b and C4b.

Based on preliminary evidence indicating that a cell-associated protein of U937 (a human monocyte-like cell line) possessed cofactor activity and was not the C3b/C4b receptor, we sought to further characterize this protein. A sequential four-column purification procedure was devised that includes C3(H2O) affinity chromatography to isolate in reasonable yields and purity a cell-associated protein of U937 and several other human cell lines. Based on its pattern and Mr on SDS-PAGE, acidic pI, and ligand specificity, it is identical to a recently described C3(H2O) or C3b-binding membrane glycoprotein of human PBL and cell lines; having no presently identified function, it was termed gp45-70. After purifying this protein, we determined its functional capabilities and compared them to those of the other complement proteins with regulatory activity directed at components comprising the C3 convertases. This protein was the most efficient (50 times that of H) yet-described cofactor for the I-mediated first cleavage of C3b. It also was a cofactor for the first cleavage of C4b, but was not as efficient as C4bp. The second cleavage of C3b and C4b was not efficiently mediated. It had no ability to accelerate decay in the classical or alternative pathway C3 convertases. Based on this unique activity profile and ability to be surface labeled, we have renamed this molecule membrane cofactor protein (MCP). We suggest that this protein plays a major role in preventing autologous complement activation.

Antigens, CD↗

Analysis of C3b/C4b receptor (CR1) polymorphic variants by tryptic peptide mapping.

The human C3b/C4b receptor (CR1) binds the major activation and opsonic fragments of the third (C3) and fourth (C4) components of complement. CR1 is a single chain integral membrane glycoprotein widely distributed on peripheral blood cells. Four codominantly inherited allelic variants with Mrs of 160,000, 190,000, 220,000 and 250,000 have been described. To address the structural basis for this unusual polymorphism, CR1 from donors expressing three of the four allelic variants was purified from surface labeled (125I) erythrocytes by iC3-Sepharose affinity chromatography and the variants compared by tryptic peptide mapping (TPM). The TPMs of each variant contained the same major peaks and minor peak areas and were nearly identical to one another. Tryptic peptide mappings of the 190,000 Mr erythrocyte CR1, which was purified prior to iodination, were similar to those derived from surface iodinated CR1. The TPMs of erythrocyte and granulocyte CR1 from the same donor differed by a single peak of increased prominence in the granulocyte map. These results indicate a conservation in amino acid sequence for those peptides detected. In view of these data and those of other studies of the structure and genetics of CR1 and related proteins, it is suggested in this paper that the allelic variation relates to CR1, being composed of repeating amino acid sequences.

Chromatography, Affinity↗

Structural and functional studies on the human C3b/C4b receptor (CR1) purified by affinity chromatography using a monoclonal antibody.

A procedure was devised that has several advantages over previously described methods to purify CR1 from both erythrocytes (E) and the HL-60 promyelocytic cell line. Using a monoclonal antibody immunoaffinity column, CR1 was purified to homogeneity as assessed by silver staining and 2-D gel analysis. Protein purified by this method comigrates on SDS-PAGE with 125I surface-labeled CR1 isolated by immunoprecipitation or iC3-Sepharose affinity chromatograhy and can be specifically immunoblotted with a second monoclonal anti-CR1 antibody. Employing this method, CR1 can be purified to homogeneity in amounts adequate for both functional studies and biochemical microanalysis. Purified E CR1 is functionally active as assessed by its ability to specifically rebind to an iC3-Sepharose affinity column, act as a cofactor for I-mediated cleavage of C3b to C3c and C3d, g and to accelerate decay of both the classical and alternative pathway C3 convertases. Its specific activity is similar to that of CR1 purified by a method not employing the potentially denaturing washing and eluting conditions of immunoaffinity chromatography. The pIs of the two major E CR1 allotypes are both approximately 7.1. Using pooled human E CR1, an amino acid composition was derived which revealed a relatively high proline content. This has also been found in two functionally related and genetically linked complement-regulatory proteins, H and C4-binding protein, NH2-terminal sequencing of E CR1 and HL-60 CR1 was unsuccessful indicating that the NH2-terminus is blocked.

Amino Acid Sequence↗

Identification of a third component of complement-binding glycoprotein of human platelets.

Utilizing affinity chromatography, a C3-specific binding protein was isolated from 125I surface-labeled human platelets. Analysis by sodium dodecyl sulfate-polyacrylamide gel electrophoresis demonstrated two bands with mean Mr of 64,000 and 53,000, characteristic variability in the relative density of the two bands in a given individual, and the presence of N-linked complex oligosaccharides as well as sialic acid residues not associated with N-linked sugars. These characteristics are similar to those of a human leukocyte iC3- and C3b-binding glycoprotein, termed gp45-70. Further analysis showed that leukocyte gp45-70 and the platelet C3-binding glycoprotein have identical Mr and other similar structural features. Functional characterization of solubilized platelet preparations indicated that gp45-70 has cofactor activity. This membrane glycoprotein is structurally and antigenically distinct from decay accelerating factor (DAF), a complement regulatory protein previously identified on human platelet membranes. DAF and gp45-70 have complementary activity profiles inasmuch as DAF can prevent assembly of and dissociate the C3 convertases but has no cofactor activity, whereas gp45-70 has cofactor activity but no decay accelerating activity. We suggest that these two proteins function conjointly to prevent autologous complement activation.

Blood Platelets↗

Location of the inter-chain disulfide bonds of the third component of human complement.

Location of the disulfide bonds connecting three polypeptide chains (alpha 3, 27kd; 2, 43kd; beta, 75kd) of C3c has been investigated by partial reduction with cysteine followed by alkylation with 14C-monoiodoacetic acid. Treatment of C3c with cysteine produced a partially reduced fragment, composed of disulfide-linked beta and alpha 3 chains. A single thiol residue was detected on the alpha 3 chain but not on the beta chain of the fragment, suggesting that the alpha 2 chain in C3c is linked through a single disulfide bond to the alpha 3 chain but not to the beta chain.

Complement C3↗

Limited proteolysis of complement protein C3b by regulatory enzyme C3b inactivator: isolation and characterization of a biologically active fragment, C3d,g.

Limited proteolysis of C3b by C3b inactivator (factor I) consists of a two-step reaction; rapid cleavage of C3b to yield a nicked C3b derivative, iC3b, and followed by slow cleavage of iC3b to yield two antigenically distinct fragments, C3c and C3d,g. Using a fluorescence-labeled C3b as a substrate for I, we have investigated in detail the optimal conditions for the sequential cleavages of C3b by I. The pH optimum for the first cleavage was markedly affected by the ionic strength of buffers. The cleavage was maximum at pH 6.0 under physiological ionic strength but at pH 8.5 under low ionic strength (such as 1.7 mS). The second cleavage was a slow reaction and occurred only under low ionic strength and within a narrow pH range around pH 6.0. One of the products of the second cleavage, C3d,g, was isolated and shown to be a single polypeptide chain of 41,000 daltons with pI 5.0. C3d,g had leucocytosis-inducing activity, like C3d-k, which is a C3d fragment released by the action of plasma kallikrein. Trypsin digestion of C3d,g produced two fragments of 30,000 and 10,000 daltons and the 10,000-dalton fragment retained the leucocytosis inducing activity.

Animals↗

Generation of C3d,g and C3d by urokinase-treated plasma in association with fibrinolysis.

In the breakdown of fluid phase C3 in plasma, the process of conversion of iC3b to C3c and 'C3d' has not been elucidated. Using fluorescent labeled iC3b as a substrate, urokinase (UK) treated but not normal plasma was found to exhibit effective 'C3d' production. To address the relationship between the fibrinolytic activity specific for UK-activated plasma and this 'C3d' production, an assay system was developed that permitted the simultaneous determination of both activities. This method indicated that 'C3d' generation paralleled that of plasmin-dependent fibrinogen degradation. A Km of iC3b for plasmin was 3.0 X 10(-6) mol/l which is similar to the Km of fibrinogen. Plasmin cleavage of iC3b gave rise to C3d1 (Mr 42,000) and C3d2 (Mr 28,000). Purified plasmin C3d1 showed the same Mr and pI as C3d,g prepared from iC3b, by H and I. C3d2 was derived from C3d1. From these in vitro experiments with urokinase-treated plasma, we conclude that in parallel with fibrinolysis efficient cleavage of fluid phase iC3b to C3c + C3d,g and C3d occurs and we hypothesize that this is one mechanism for the generation of C3d in vivo.

Complement C3↗

Purification and functional analysis of the polymorphic variants of the C3b/C4b receptor (CR1) and comparison with H, C4b-binding protein (C4bp), and decay accelerating factor (DAF).

Four CR1 variants have been found in the normal population and are designated CR1-A (190,000 daltons), CR1-B (220,000 daltons), CR1-C (160,000 daltons), and CR1-D (250,000 daltons). In the present study, we first developed an improved chromatographic purification scheme for CR1 that does not employ a C3b affinity step. CR1 variants (A, B, and C) were then isolated, and their individual functional activity was assessed. Each possessed similar co-factor activity for I-mediated cleavage of C3(H2O), as well as for the inhibitory activity for fluid phase C3 convertases. These results indicate that, despite relatively large Mr differences, in the purified state these three CR1 variants have similar functional activities. The functional activity of CR1 was also compared with C4bp, H, and decay accelerating factor (DAF) in fluid phase assays designed to assess the inhibition of the C3 convertases and co-factor activity. On a molar basis, CR1 had approximately the same inhibitory activity as C4bp for the classical pathway convertase, and had the same as H for the alternative pathway convertase. These results indicate that CR1 encompasses the functional capabilities of both proteins. They also raise a number of interesting genetic and structural questions in regard to these complement regulatory proteins, because C4bp is thought to have multiple C4b binding domains, whereas H is reported to bind one C3b. DAF was an approximately fourfold better inhibitor of the alternative pathway convertase than CR1 or H, but was a fourfold less efficient inhibitor of the classical pathway convertase than CR1 or C4bp. The effective inhibitory capacity of DAF in these fluid phase assay systems suggests that the DAF substrate specificity is for the convertases. Fluid phase CR1 was twofold less efficient than H in serving as a co-factor for the first cleavage of fluid phase C3b, and hardly mediated the second cleavage. These data are in contrast to the co-factor activity of CR1 on a cell membrane, and provide additional evidence for the local environment being a critical modulator of the function of proteins that regulate the activation of C3.

Complement Activating Enzymes↗

Generation of the bioactive kallikrein-derived fragment, C3d-k, by HANE-plasma.

Recent studies have concluded that after complement activation the final physiologic degradation products of C3 are C3c and the fragment of relative molecular mass (Mr) 42,000 which contains the C3d and C3g domains and was therefore named C3d,g. Using fluorescent labelled C3b as a substrate, we have determined the putative C3d,g ('C3d,g') producing activity of both normal and hereditary angioneurotic oedema (HANE) plasmas. In normal plasmas, the rate of production of C3d,g was 1.0 +/- 0.2 X 10(-10) mol/ml/h and this activity was blocked by antibodies to I. In contrast, HANE, plasmas (deficient in C1INH) showed more than twice as much 'C3d,g' production as normal plasmas and both antibodies to I and kallikrein were required to inhibit this activity. Because of this result, a more sensitive gel system was employed to detect the Mr 42,000 peptide and two 'C3d,g' fragments of approximately equal intensity with Mr of 42,000 and 43,000 were defined. Incubation of purified kallikrein with labelled iC3b produced a C3d,g-like fragment, C3d-k, that aligned with the band of 43,000 Mr generated in HANE plasma. These results indicate that HANE plasma, in contrast to normal plasma, generates the bioactive C3d-k fragment. C1INH blocks the activities of kallikrein and C1s, and C3d-k generation in HANE plasma is probably secondary to the proteolytic activity of kallikrein.

Angioedema↗

Isolation of an iC3b forming enzyme from peritoneal polymorphonuclear leukocytes of guinea pigs.

We have investigated fluid phase cleavage of C3b by peritoneal polymorphonuclear leukocytes of guinea pigs and found that polymorphonuclear leukocytes expressed an iC3b forming enzyme as well as C3b receptor with maturation in peritoneal cavity. The iC3b forming enzyme was found to be distinct from C3bINA, a physiological iC3b forming enzyme in plasma, since the activity was inhibited by monoiodoacetic acid and did not require a cofactor plasma protein, beta 1H, for the cleavage of C3b into iC3b. The iC3b forming enzyme is gradually released upon incubation of PMN at 37 degrees C. The molecular weight of the iC3b forming enzyme was estimated to be 48,000 from gel filtration on Sephadex G-200.

Animals↗