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J Alsenz

Publications and source records attributed to J Alsenz.

At least 19 recordsLinked to original sources

Segment spanning residues 727-768 of the complement C3 sequence contains a neoantigenic site and accommodates the binding of CR1, factor H, and factor B.

CR1, CR2, DAF, MCP, factor H, C4bp, factor B, and C3 are members of a family of structurally related molecules, the majority of which belong to the complement system. Several of these molecules also share functional features such as cofactor and decay/dissociation activity and compete with one another in binding to C3b. Since factor H appears to bind to multiple sites in C3, we investigated the relationship between the factor H- and CR1-binding sites in C3b. Factor H binding to C3b is inhibited by either the C3c or C3d fragments, and addition of both fragments together augments this inhibition. One monoclonal anti-C3c antibody, anti-C3-9, which recognizes a neoantigenic epitope expressed upon cleavage to C3 to C3b, inhibited both factor H and CR1 binding to EC3b cells. This monoclonal antibody (MoAb) also inhibited factor B binding to EC3b. Two observations further supported our hypothesis that these molecules bind to proximal sites in C3b. First, a synthetic peptide spanning this region of C3b (C3(727-768)) inhibited factor H binding. Second, antibodies raised against this peptide inhibited binding to CR1, factor H, and factor B to C3b. These data show that H binds to at least two sites in C3b: the site in the C3c fragment is within the identified CR1-binding domain while the site in the C3d fragment surrounds the CR2-binding site.(ABSTRACT TRUNCATED AT 250 WORDS)

Amino Acid Sequence

Evidence for multiple sites of interaction in C3 for complement receptor type 2 (C3d/EBV receptor, CD21).

Multivalent but not monovalent CR2 ligands are required to elicit Raji cell proliferation as well as other B cell responses. It has been reported (C. Servis and J. D. Lambris, J. Immunol. 1989. 142: 2207) that the tetrameric peptide T-(C31202-1214)4, which represents the CR2-binding site in C3d, was able to support Raji cell growth. We show here that the tetrameric peptide T-(gp350(19-30)4, which contains the CR2-binding site in gp350 protein of EBV also induces Raji cell growth and this effect is inhibited by the monomeric peptides gp350(19-30) and C3(1201-1214). We also investigated the nature of the interaction between C3 fragment and CR2 in order to explain the Raji cell growth-supporting effect exerted by C3. The following findings suggest that there are multiple sites in the C3 molecule able to interact with CR2: (1) both C3c and C3d immobilized on microspheres are able to bind to Raji cells through CR2. (2) soluble C3d inhibits to a greater extent the binding of CR2 to fixed C3d than to fixed C3b, which suggests the existence of additional CR2-binding sites within C3b not present in the C3d portion of the molecule; (3) synthetic peptides C3(1187-1214), C3(741-757) and C3(295-307) which represents regions of similarity in the C3 molecule bind specifically to CR2 on Raji cells and compete with each other for binding to the receptor and (4) preincubation of microtiter plate-fixed C3b with monoclonal or polyclonal anti-peptide antibodies (C3-9, anti-C3(727-768) recognize the N terminus of the alpha chain of C3 (including residues 741-757) inhibited CR2 binding. Therefore, these data suggest that the N terminus of the alpha chain of C3 is involved in binding to CR2.

Amino Acid Sequence

Cell surface proteins reacting with activated complement components.

The biologic activities mediated by the products of complement activation include cellular, bacterial, and viral lysis, inflammation, phagocytosis, and immunoregulation. These responses are achieved through the interaction of the activated forms of several of the complement proteins with cell membrane proteins. This report reviews aspects of the structure, ligand specificity, and function of the various complement receptors with particular emphasis on those receptors which bind to the activated fragments of C3. In addition, we briefly summarize the surface proteins on foreign particles that bind C3 and their possible role in the pathogenesis of these organisms.

Animals

Acquired C1 inhibitor (C1-INH) deficiency type II. Replacement therapy with C1-INH and analysis of patients' C1-INH and anti-C1-INH autoantibodies.

The response of two patients with autoantibody-mediated C1-inhibitor (C1-INH) deficiency to replacement therapy with C1-INH was studied over a period of 3 d. In patient 1 an acute attack of angioedema was successfully managed by infusion of 1,000 U of C1-INH concentrate. C1-INH function returned to normal levels within 30 min, while CH50 and C4 peaked after 6-7 h and C1 hemolytic activity reached 50-60% of normal after 3 d. Immediately after the injection an increase in C1-INH-anti-C1-INH complexes was observed. Based on NH2-terminal sequence analysis of the patients' Mr 96,000 C1-INH, it is concluded that this fragment is generated after cleavage of C1-INH in its active site by one of its target proteases without generating a covalent C1-INH-enzyme complex. In a second patient with a four to five times higher anti-C1-INH antibody titer, the infusion of 500 ml of plasma or of 2,000 U of C1-INH concentrate influenced neither the severity of the patient's angioedema nor the tested parameters, except for an increase in the amount of C1-INH-anti-C1-INH complexes. Analysis of patients' anti-C1-INH antibodies revealed that the antibodies recognize different epitopes within the C1-INH. This suggests that patients with acquired angioedema type II are a heterogenous group with respect to the C1-INH autoantibodies.

Amino Acid Sequence

The acquired C1-INH deficiencies with autoantibodies (AAE type II).

A new type of acquired C1-inhibitor (C1-INH) deficiency has been recognized (AAE type II) which is characterized by the presence of autoantibodies to C1-INH and by a circulating 96 KD C1-INH molecule. The clinical manifestations and biochemical abnormalities of this novel autoimmune disease resemble those found in the other forms of acquired C1-INH deficiency (AAE type I), including recurrent angioedema and low serum levels of C2, C4, C1, C1q and C1-INH activity. However, in contrast to AAE type I, AAE type II is not associated to other diseases. Evidence has been provided that the anti-C1-INH antibodies play a major role in the development and maintenance of AAE type II. These autoantibodies seem to impede C1-INH activity, thus allowing unopposed activation of the complement and/or contact system and to induce the generation of the 96 KD C1-INH species in the patients' plasma.

Angioedema

A rapid and simple ELISA for the determination of duplicate monoclonal antibodies during epitope analysis of antigens and its application to the study of C1(-)-INH.

A rapid and simple ELISA has been developed for identifying the specificities of two monoclonal antibodies recognizing either similar or distinct epitope(s) of an antigen. The method utilizes microtiter plates coated with one of the monoclonal antibodies either by direct adsorption of the purified antibody to the plastic or by immobilization of the antibody from ascites or hybridoma supernatants via immobilized polyclonal anti-mouse immunoglobulin antibodies. After preincubation of the antigen with the second monoclonal antibody, the mixture is added to the surface-immobilized first antibody. The amount of antigen bound to the first antibody is subsequently measured by rabbit polyclonal antibodies to the antigen and peroxidase-conjugated anti-rabbit immunoglobulin antibodies. Binding of antigen to the first antibody is only observed when the second monoclonal antibody binds to a distinct epitope. The major advantages of this procedure are its simplicity, rapidity and independence of radioisotopes. Using this method a library of monoclonal antibodies against human C1(-)-INH has been tested and several duplicate monoclonal antibodies have been identified. Furthermore, the above analytical procedure was capable of detecting conformational changes of the C1(-)-INH molecule induced either by binding of a monoclonal antibody to C1(-)-INH or by enzymatic cleavage of C1(-)-INH.

Antibodies, Monoclonal

Autoantibody-mediated acquired deficiency of C1 inhibitor.

During the past 25 years, three forms of deficiency of the inhibitor of the first component of complement (C1 inhibitor) with angioedema have been recognized; two forms are hereditary and one is acquired. As compared with hereditary angioedema, the syndrome of acquired C1-inhibitor deficiency is rare, and it is usually associated with lymphoproliferative diseases. We report another type of acquired C1-inhibitor deficiency with angioedema. Two patients with recurrent angioedema but no associated diseases were found to have IgG1 autoantibodies against C1 inhibitor. The anti-C1-inhibitor antibodies prevented binding of C1 inhibitor to activated C1s. Both patients had 60 to 70 percent of normal levels of C1 inhibitor, but it was functionally inactive, with a molecular weight of 96,000 (normal C1 inhibitor, 105,000). In vitro studies of the patients' serum revealed degradation of 125I-labeled 105,000-dalton C1 inhibitor into the inactive 96,000-dalton molecule, caused by activated C1s and not found in normal human serum. We conclude that these cases of acquired C1-inhibitor deficiency resulted from a blockade of C1-inhibitor function by the anti-C1-inhibitor antibodies and from subsequent inactivation of C1 inhibitor by the now uncontrolled enzyme, activated C1s. As in other forms of C1-inhibitor deficiency, the unopposed activation of the complement system led to angioedema.

Adult

[Formation of IgG antibodies to C1 inhibitor as the cause of life-threatening angioedema].

A clinical picture with recurrent (in some cases potentially fatal) edema of skin and internal organs based not on a hereditary C1 inhibitor deficiency, but an acquired loss of C1 inhibitor activity due to antibodies is described for the first time in two patients. The clinical symptoms commenced in middle age patients between 40 and 46 years old. Anti C1 antibodies of the IgG were found in both patients. Quantitatively, these C1 inhibitor protein was in the lower range of normal, whereas no inhibitor activity could be demonstrated functionally. The function of the complement components C1, C2 and C4 was greatly reduced. The therapeutic use of C1 inhibitor concentrate at a high doses (6 X 500 U) as well as administration of high-dose corticosteroids in several emergency situations was unsuccessful.

Adult

Simplified methods for the purification, quantitation, and functional estimation of human complement C-1-inhibitor (C-1-INH) with a monoclonal anti-C-1-INH antibody.

New methods have been developed for the isolation, quantitative detection, and functional measurement of human complement C-1-inhibitor (C-1-INH). The two-step purification procedure for C-1-INH from human plasma or serum employs affinity chromatography with a monoclonal anti-C-1-INH antibody coupled to CNBr-activated Sepharose 4B followed by fractionation on a FPLC Mono Q HR 5/5 column. It yields functionally active, homogeneous C-1-INH with about 40% recovery. For quantitative estimation of C-1-INH an ELISA was performed. ELISA plates were coated with a polyclonal anti-C-1-INH antibody, serum or plasma was added and bound C-1-INH was detected with the monoclonal anti-C-1-INH antibody. The method has a sensitivity of 0.4 ng C-1-INH per assay corresponding to 20 ng/ml. For the detection of functionally active C-1-INH an ELISA was developed using C1-s-coated microtiter plates. After incubation with serum or plasma, C1-s-bound C-1-INH was monitored with the monoclonal anti-C-1-INH antibody. With this method it is possible to measure as little as 0.3 ng of functionally active C-1-INH in 20 microliter of a biological sample. All methods described in the present paper are easy to perform, rapid, sensitive, and highly reproducible.

Animals

Structural and functional analysis of the complement component factor H with the use of different enzymes and monoclonal antibodies to factor H.

The action of six different enzymes on the function and structure of Factor H was investigated by use of sodium dodecyl sulphate/polyacrylamide-gel electrophoresis, haemagglutination, two enzyme-linked immunosorbent assay systems and an assay for Factor I cofactor activity. Six monoclonal antibodies directed against the 38 kDa tryptic fragment of Factor H [which contains the binding site for C3b (a 180 kDa fragment of the third component of complement) and the cofactor activity] were also used to detect cleavage products derived from the same fragment. Elastase, chymotrypsin A4 or trypsin first cleaved Factor H to 36-38 kDa fragments carrying all six monoclonal anti-(Factor H)-binding sites. In parallel, the interaction of Factor H with surface-bound C3b was lost, whereas the cofactor function was preserved. Further cleavage of the 36-38 kDa fragments into two 13-19 kDa fragments (one carrying the MAH4 and MRC OX 24 epitopes, the other the MAH1, MAH2, MAH3 and MRC OX 23 epitopes) destroyed cofactor activity. Pepsin, bromelain or papain rapidly split off a 13-15 kDa fragment of Factor H carrying the MAH1, MAH2, MAH3 and MRC OX 23 epitopes and destroyed all tested functions of Factor H. Ficin cleaved Factor H into disulphide-linked fragments smaller than 25 kDa, but did not affect the functions of the Factor H molecule. The 38 kDa tryptic fragment of Factor H is the N-terminal end of the Factor H molecule, as determined by N-terminal sequence analysis. A model is presented of the substructure of Factor H.

Amino Acids

[Localization of functionally important areas of the regulator protein factor H using monoclonal antibodies].

Four monoclonal antibodies to the control protein of the complement system, factor H, were used to try to localize functionally important domains on the molecule. Attempts to inhibit the interaction of C3b and H in ELISA and agglutination assays by means of these monoclonal antibodies showed that two of them, namely MAH 1 and MAH 2, recognized an epitope in close proximity to the binding site for C3b on H. The determinants defined by MAH 3 and MAH 4 are localized at a certain distance from this binding site, the MAH 4 epitope being situated closer to it than the MAH 3 epitope. The cofactor function of H with respect to C3b inactivator was inhibited by the same monoclonal antibodies which interfered with the binding of H to C3b. Since MAH 1, MAH 2, MAH 3 and MAH 4 all bind to the same tryptic 38 KD fragment of H, the binding site for C3b on H, as well as the cofactor activity seem to reside on this fragment.

Agglutination Tests

Localization of the complement-component-C3b-binding site and the cofactor activity for factor I in the 38kDa tryptic fragment of factor H.

Trypsin treatment of human factor H (H160) [enzyme/substrate ratio 1:100 (w/w), 30 min, 37 degrees C] generated a 38 kDa (H38) and a 142 kDa (H142) fragment linked by disulphide bonds (H38/142). The fragments were purified by reduction with 2-mercapto-ethanol, gel filtration on a Sephadex G-200 column and affinity chromatography with monoclonal anti-(factor H) antibody coupled to Sepharose 4B. This monoclonal antibody bound to a site in the 38 kDa fragment. To localize the C3b binding site in factor H we used two enzyme-linked immunosorbent assays (e.l.i.s.a.). For the first test, e.l.i.s.a. plates were coated with C3b; H160, H38/142, H38 and H142 were added, and their binding was monitored by goat anti-(factor H) and peroxidase-labelled rabbit anti-goat antibodies. Only intact factor H bound to the C3b-coated plates. For the second test, e.l.i.s.a. plates were coated with comparable amounts of factor H or its fragments, and C3b was offered at several dilutions. In contrast with the results from the first assay, C3b bound to intact factor H, H38/142 and H38 but not to H142, thus characterizing H38 as the fragment carrying the C3b-binding site. To identify the fragment responsible for the cofactor activity of factor H (cleavage of fluid-phase C3b by factor I), 125I-C3b was incubated with either H38 or H142 and factor I. H142 had no cofactor activity, whereas H38 had the same cofactor function as intact H. To further investigate the relationship between the C3b-binding site and the site of factor H essential for its cofactor activity, we made use of monoclonal antibodies directed against the H38. Those antibodies inhibiting the binding of C3b to H160 also inhibited the cofactor function, whereas those without effect on the C3b binding also did not interfere with the cofactor activity. This suggests that the C3b-binding site and the site essential for the cofactor activity of factor H are both localized in the 38 kDa tryptic fragment of factor H in close proximity or are identical.

Antibodies, Monoclonal

Role of C3b receptors in the enhancement of interleukin-2-dependent T-cell proliferation.

The mechanism by which the complement system influences immune responses to T-cell-dependent antigens has not yet been clarified. That is why we studied the effect of the third complement component (C3) on different T-cell-dependent processes using well-defined mouse T-cell lines. While C3 did not influence the interleukin-2 (IL-2) production of the ST2/K-9 helper T-cells, the IL-2-dependent proliferation of the ST1 line was shown to be dose-dependently enhanced by C3. It is proved that neither the haemolytic activity of C3 nor the C3a fragment had any role in the process. The effect of C3 on the IL-2-dependent T-cell growth is even more enhanced (up to five-fold) when using polymerised C3. When the ST1 cell line is cultured in the presence of the cross-linked ligand, T-cells formed 80% less rosettes with red blood cells coated with antibody and mouse or human C3b. It is strongly suggested that C3--particularly when aggregated--exerts its enhancing effect on the growth of IL-2-dependent cell lines by binding to C3b receptors present on such T-cells.

Animals

Use of monoclonal antibodies against factor H to investigate the role of a membrane-associated protein antigenically related to H in C3b-receptor function.

Three murine monoclonal IgG1 kappa-antibodies, MAH-1, MAH-2, and MAH-3, were raised against factor H purified from human plasma. In cross-inhibition studies MAH-3 did not compete with MAH-1 and MAH-2, and vice versa, for the binding to H, whereas MAH-1 and MAH-2 inhibited each other. MAH-1 and MAH-2 inhibited the binding of H to C3b attached to an ELISA plate as well as to C3b bound to sheep erythrocytes by means of the classical pathway convertase and of C3b to H attached to an ELISA plate. The determinant defined by MAH-1 and MAH-2 was no longer accessible on H bound to C3b. In contrast, MAH-3 interfere with the binding of H to C3b or vice versa only to a smaller extent but recognized a determinant still accessible on H bound to C3b and was able to agglutinate EAC14o23b-H in an indirect Coombs test. All three antibodies were shown to bind to tonsil cells and Raji cells in an indirect cell ELISA. The membrane-associated molecule detected by these antibodies had an apparent m.w. of 140,000 D in SDS-PAGE. All three antibodies partially inhibited the binding of EAC14o23b to tonsil lymphocytes and, in the presence of 0.1 mM DFP, to Raji cells; binding of EAC14o23bi and EAC14o23d to tonsil cells was not affected. We conclude that MAH-3 recognizes a determinant distinct from the ones recognized by MAH-1 and MAH-2, the latter possibly defining identical epitopes that are located close to the binding site for C3b. The fact that these two distinct epitopes could be detected on a 140,000-D membrane-associated protein from lymphoid cells strongly suggests that this molecule is at least antigenically related to serum H and shares with H a region carrying the binding site for C3b. The rosette inhibition studies imply that this structure is important for the binding of C3b-coated particles to lymphoid cells.

Animals

Coupling of C3b to erythrocytes by disulfide bond formation: preparation of EC3b for hemolytic and complement receptor assays.

We describe a new method of preparing C3-coated erythrocytes by coupling C3 to thiol-activated erythrocytes. The procedure involves three steps. Firstly, sheep erythrocytes were treated with N-succinimidyl 3-(2-pyridyldithio) propionate (SPDP) to introduce 3-(2-pyridyldithio) propionyl residues into membrane proteins. Secondly, C3 was cleaved with trypsin or CoVF, Bb enzyme to obtain C3b exposing the SH group (C3b-SH). Finally, the C3b-SH was coupled to the thiol-activated erythrocytes (TA-E) through thiol/disulfide exchange to form the TA-EC3b conjugate. E coated with C3d was prepared by treating TA-EC3b with KSCN inactivated serum and plasmin. Studying the rosette formation between TA-EC3b or TA-EC3d and cells expressing C3b (CR1) and C3d (CR2) receptors and the inhibition thereof with anti-CR1 and anti-CR2 antibodies as well as with C3-sheep E membrane protein complexes, we found that TA-EC3b and TA-EC3d bound exclusively to CR1 and CR2, respectively. In addition, TA-EC3b like EAC1423b bound factors B and H as tested by hemolytic and direct binding assays. The advantage of TA-EC3 for complement receptor and hemolytic assays are the simplicity of the preparation method and the general applicability of the TA-EC3.

Animals