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M L Shin

Publications and source records attributed to M L Shin.

At least 73 records · Page 4Linked to original sources

Activation of complement by myelin: identification of C1-binding proteins of human myelin from central nervous tissue.

Myelin isolated from central nervous tissue activates the classic pathway of complement by directly activating C1. Activation of C1 can proceed to form membrane attack complex, C5b-9, in the myelin. Such an interaction between myelin and complement may be important in diseases involving myelin damage, in view of the role of complement in membrane attack and inflammation. To identify the C1-activating protein, myelin was subjected to sodium dodecyl sulfate-polyacrylamide gel electrophoresis (SDS-PAGE) and Western blot. The blots were incubated with C1 or with whole serum complement, followed by immunostaining for C1 or C3, respectively. A duplicate strip was stained with amido black or anti-myelin antibody to visualize the myelin proteins. The results showed that two major protein bands were capable of activating C1. An approximately 56-58-kilodalton band comigrated with the W2 protein and an approximately 45-47-kilodalton band migrated along with, but slightly behind, the W1 Wolfgram doublet.

Complement Activating Enzymes↗

Membrane attack complex of complement in rheumatoid synovial tissue demonstrated by immunofluorescent microscopy.

Rheumatoid and osteoarthritic synovial membranes were examined for evidence of terminal complement pathway activation. Using antiserum highly specific for C9 neoantigen, immunofluorescent microscopy was employed to study synovial membrane specimens from 4 patients with rheumatoid arthritis, one patient with psoriatic arthritis, and 5 patients with osteoarthritis. C9 neoantigen was detected in 3 of the 4 rheumatoid membranes, the one psoriatic membrane, and one of the 5 osteoarthritic membranes. Activation of the terminal pathway of complement through C9 should be added to the spectrum of immunologic events known to occur in some rheumatoid synovial membranes.

Adult↗

Anti-peripheral myelin antibody in patients with demyelinating neuropathy: quantitative and kinetic determination of serum antibody by complement component 1 fixation.

The role of anti-peripheral nerve myelin antibody (anti-PNM Ab) in the pathogenesis of acquired demyelination of peripheral nerve is unclear, in part, due to the poor correlation between antibody and disease activity. Previous studies show that only 27-50% of patients with acute demyelinating neuropathy or Guillain-Barré syndrome (GBS) had serum Abs to peripheral nerve or PNM as demonstrated by consumption of hemolytic activity of serum complement 1 (C1) fixation and transfer assay, quantitative determinations of anti-PNM Ab showed significantly high titers in the serum of patients with GBS, chronic and recurrent polyneuritis, and paraproteinemia associated with peripheral neuropathy. All 11 patients with acute-phase GBS had Ab titers 6-56 times higher than controls. In 6 GBS patients, serial Ab determinations showed that titers were highest on admission, fell rapidly the first week, and became undetectable or barely detectable by the third week. Declining Ab titers coincided with cessation of clinical progression. In 3 GBS patients, depletion of serum IgM lowered anti-PNM Ab titers significantly, whereas IgG depletion failed to produce a similar effect. This study shows that the C1 fixation and transfer assay is a sensitive method to detect anti-PNM Ab in the serum of patients with a variety of demyelinating neuropathies and provides good correlation between Ab level and the clinical course of GBS patients. It may provide important information about the pathogenesis of the demyelinating neuropathies.

Antibodies↗

Activation of the alternative pathway of complement by human peripheral nerve myelin.

Destruction of peripheral nerve myelin (PNM) occurs as a consequence of a variety of pathologic conditions affecting the peripheral nervous system. In certain primary demyelinating neuropathies, several lines of evidence implicate complement in the pathogenesis of demyelination. In this study we demonstrate that human PNM consumes complement in vitro in the absence of specific antibody or C1 activation. Furthermore, activation of complement by PNM via the alternative pathway was shown by cleavage of C3 in normal human serum (NHS) and of B in C2-deficient serum (C2d-HS). Increasing consumption of hemolytic activity of C3 in Mg-EGTA-treated NHS was also noted with increasing amounts of PNM. Pronase treatment of PNM abolished C3 consumption, suggesting that a protein component exposed on the surface of myelin participated in the alternative pathway activation. When P0, the major amphiphilic glycoprotein of PNM, was incorporated into artificial lipid bilayers, the Po-liposomes consumed C3 activity in NHS containing Mg-EGTA. Pronase treatment of Po-liposomes abolished C3 consumption to the level of control liposomes, indicating that P0 was responsible for at least part of the activation seen with peripheral myelin.

Animals↗

Elimination of terminal complement intermediates from the plasma membrane of nucleated cells: the rate of disappearance differs for cells carrying C5b-7 or C5b-8 or a mixture of C5b-8 with a limited number of C5b-9.

We have previously shown that multiple complement (C) channels are required for lysis of a nucleated cell in contrast to the single channel requirement for erythrocytes. To further investigate this multichannel requirement for nucleated cells, we examined the stability of terminal C complexes in the plasma membrane of Ehrlich ascites tumor cells. Ehrlich cells bearing C5b-7 or C5b-8 with or without C9 were incubated at 37 degrees C or 0 degree C for various time intervals before converting the remaining complexes to lytic C5b-9 channels. C5b-7, C5b-8, and C5b-8 in the presence of a limited number of C5b-9 complexes disappeared functionally from the plasma membrane at 37 degrees C, with initial half-lives of 31, 20, and 10 min, respectively. Disappearance of these complexes did not occur at 0 degree C, nor did disappearance occur at 37 degrees C when formed on sheep erythrocytes. The fate of C5b-8 complexes on the surface of Ehrlich cells was traced with colloidal gold particles bound to C5 determinants on C5b-8 with the use of immunoelectron microscopy. Colloidal gold could be seen on the cell surface after specific binding to cells carrying C5b-8 sites at 0 degree C. After incubating these cells at 37 degrees C, gold particles were internalized into the cell continuously via endocytic vesicles. It is postulated that terminal C complexes may stimulate or accelerate the removal of these complexes from the cell surface.

Animals↗

Ehrlich ascites cells activate the alternative pathway of the human complement system.

Incubation of Ehrlich ascites cells with normal or C1q or C2 deficient human sera results in killing of the cells. Killing occurred also in the absence of free Ca++, which supported by the fact that factor B and C3 were cleaved, leads to the conclusion that the alternative pathway of the complement system is activated on the surface of the Ehrlich ascites cells.

Animals↗

Incorporation of P0 protein into liposomes: demonstration of a two-domain structure by immunochemical and PAGE analysis.

The amphiphilic nature of P0, the major glycoprotein of peripheral nerve myelin, has been suggested previously. In the present study, purified P0 from human peripheral nerve myelin was incorporated into an artificial lipid bilayer consisting of dimyristoyl lecithin and cholesterol. The liposomes were fractionated on a sucrose gradient. The continued expression of P0 antigenicity by the liposomes was shown by specific complement consumption with a multivalent antiserum against P0 or with an IgM monoclonal antibody. Both antibodies recognized P0 expressed on the surface of peripheral nerve myelin and the P0 liposomes. P0 liposomes and peripheral nerve myelin treated with trypsin lost the surface determinant that reacted with the monoclonal antibody. Analysis of the trypsin-treated liposomes and peripheral nerve myelin by polyacrylamide gel electrophoresis revealed molecular weights for this protein of 19,500 and 20,500, respectively. Similar treatment of the P0 in the fluid phase resulted in many smaller fragments. These results indicate that P0 consists of two domains, a hydrophilic domain accessible to trypsin digestion and a hydrophobic domain, which is potentially trypsin-sensitive, but shielded by the lipid bilayer. Binding studies with an anti-P0 monoclonal antibody and polyacrylamide gel analysis of the lipid-shielded P0 fragment in liposomes and peripheral nerve myelin suggest that the orientation of the protein in the liposome is similar to that in peripheral nerve myelin.

Antibodies↗

Isolation of membrane attack complex of complement from myelin membranes treated with serum complement.

The interaction between complement and myelin membranes and its possible role in myelin damage and in the disposal of damaged myelin in vivo is of interest because activation of complement generates both opsonin(s) and membrane attack complex of complement. In our studies on the role of complement in demyelination, we have shown that isolated myelin activates serum complement in the absence of myelin-specific antibody and that membrane attack complex of complement is the required factor in antibody-mediated demyelination of mouse cerebellar explant cultures. In the present study, we examined whether activation of serum complement by myelin is associated with the formation of membrane attack complex of complement in myelin membranes. Extracts of myelin-associated proteins following incubation of myelin with fresh serum were studied by ultracentrifugation on a sucrose density gradient for detection of C5b-9 neoantigen. The subunit structure of C5b-9 was determined by sodium dodecyl sulfate-polyacrylamide gel electrophoresis, electroblotting, and immunostaining. Results indicate that the macromolecular complex consisting of late-acting complement components, C5-C9, was assembled in the target myelin membranes.

Animals↗

Species-restricted target cell lysis by human complement: complement-lysed erythrocytes from heterologous and homologous species differ in their ratio of bound to inserted C9.

The cytolytic efficiency of the terminal complement complex (C5b-9) against erythrocytes of different species is, in part, dependent on the species of C9 origin. In the present study, we have examined the interaction of C9 with erythrocytes in terms of the binding, dimerization, and insertion of C9 into the membranes of sheep and human erythrocytes lysed by human complement (C). The membranes of these C-lysed erythrocytes were analyzed for bound, dimerized, and inserted C9 by a combination of photolabeling, SDS-PAGE, electroblotting, and immunostaining techniques. We found that neither binding nor dimerization of C9 could be correlated with the relative hemolytic efficiency of human C on these erythrocytes, but that C9 insertion into the membranes of these cells varied in direct relation to the extent of lysis. Interestingly, the binding of C3 to these cells under conditions of equivalent C1 fixation also correlated with lytic efficiency. These data indicate that the C9-related differences in the cytolytic efficiency of C against erythrocytes from different species is primarily due to the efficiency of C9 insertion into these cells. Moreover, these data emphasize that neither the binding of C9 to a target membrane nor the formation of C9 dimers necessarily leads to the insertion of C9 into the membrane, suggesting the presence of membrane-bound but inactive C5b-9 complexes. Because the extent of C3 binding also correlated with the relative degree of lysis of sheep vs human erythrocytes, the possibility exists that surface-bound C3 may regulate hemolysis by directing the insertion of C9 in terminal complexes into cells.

Animals↗

Effect of erythrocyte membrane modulation by lysolecithin on complement-mediated lysis.

Alterations of the physiochemical properties of membranes, such as acyl chain length of phospholipids, cholesterol content, and disturbance of the bilayer packing, affect the efficiency of membrane attack by C5b-9. In the present study, we explored the effect of lysolecithin (LL), a naturally occurring derivative of membrane phospholipids, on membrane damage by C5b-9. Sublytic doses of the L isomer of palmitoyl-lysolecithin were incorporated into the erythrocyte membranes of guinea pig (gpE) or sheep (shE) and the cells were then lysed with C5b6-C9. Marked enhancement of complement-mediated lysis was observed with LL-treated gpE after 2 hr of incubation, whereas the lytic enhancement was either nil or only marginal in shE. Studies on the kinetics of LL incorporation and metabolism in gpE membranes with 14C-LL showed that LL was rapidly incorporated and catabolized to generate free fatty acid (FA). Maximal accumulation of labeled FA in the membrane and loss of membrane-incorporated LL, resulting in approximately equimolar amounts of LL and FA, occurred at 2 hr, concomitant with enhancement of complement-mediated lysis. In shE such a breakdown of LL occurred only minimally. This quantitative difference in LL breakdown between gpE and shE was in accord with lysophospholipase activity that was two and one-half to seven times more active in gpE than shE membranes. When an ether-linked analog of LL (1-O-hexadecyl-sn-phosphorylcholine), which is resistant to lysophospholipase, was incorporated in gpE, the lytic enhancement was not observed. The results of our experiments indicate that the membrane modulating effect of LL on lysis by C5b-9 requires the enzymatic breakdown of LL.

Animals↗

Cytolysis of nucleated cells by complement: inhibition of membrane-transmethylation enhances cell death by C5b-9.

Inhibition of transmethylation, i.e., enzymatic transfer of methyl groups to phosphatidyl ethanolamine resulting in generation and translocation of phosphatidyl choline, enhances the killing of nucleated cells by complement. Furthermore, under complement attack, transmethylation measured as incorporation of [3H]methyl groups into phosphatidyl choline is enhanced, suggesting that transmethylation functions as a membrane defense mechanism either by increasing the phosphatidyl choline synthesis or by transducing a signal that might trigger another membrane repair process.

Adenine↗

Cytolysis of nucleated cells by complement: cell death displays multi-hit characteristics.

Lysis of nucleated cells by complement was studied to determine whether the lytic process by C5b-9 conforms to a one-hit mechanism as in the case of erythrocytes. Two nucleated cell lines, Molt 4 and U937, derived from human T lymphocytes and histiocytes, respectively, were employed as targets. The antibody-sensitized cells were used to develop the titration curves, measuring cell death as a function of limiting quantities of human C6 or C5,6 complex in the presence of an excess of other complement components. The cytolysis curves generated in both experiments were sigmoidal, in sharp contrast to the monotonic curves observed in lysis of erythrocytes treated similarly. The sigmoidal curves of cytolysis indicate a cooperative action of several molecules of C6 or acid-activated C5,6 complex, C(56)a. In contrast to the multi-hit characteristics of cytolysis, dose-response measurements of the release of 86Rb indicated that only one effective molecule of C6 per cell is required for assembly of a 86Rb-releasing channel. This divergence indicates that lysis requires formation of several channels or, alternatively, assembly of large channels that are formed by several molecules of C6. Because prior studies with erythrocyte ghosts have shown that only a single effective molecule of C6 is required for assembly of a transmembrane channel, regardless of size, we prefer to interpret the multi-hit characteristics of nucleated cell lysis as an indication of a multi-channel requirement, rather than channel enlargement.

Cell Line↗

Consequences of cell membrane attack by complement: release of arachidonate and formation of inflammatory derivatives.

Treatment of [3H]arachidonic acid [( 3H]C20:4)-labeled and antibody-sensitized Ehrlich ascites tumor cells with guinea pig or rabbit serum complement (C) released up to about 20 or 25% of the incorporated [3H]C20:4 into the aqueous phase as a consequence of C-induced hydrolysis of cellular phospholipid. The dose-response curve of release of [3H]C20:4 from Ehrlich ascites tumor cells, with respect to C, was approximately in the same range as the cytolytic response. In the case of [3H]C20:4-labeled and antibody-sensitized peritoneal mouse macrophages, treatment with C induced release of about 11% of the incorporated 3H as C20:4 and about 6% as prostaglandins, thromboxane B2, and hydroxyicosatetraenoic acids. C6- and C8-deficient rabbit and human sera, respectively, induced release of small amounts of [3H]C20:4 from Ehrlich ascites tumor cells and macrophages; these deficient sera also released traces of oxygenated derivatives from macrophages. Addition of purified C6 or C8 effectively restored release from both cell types, indicating that the terminal C proteins, up to and including C8, are required for the major part of the release. Our results do not rule out a possible requirement for C9.

Animals↗

Elimination of complement channels from the plasma membranes of U937, a nucleated mammalian cell line: temperature dependence of the elimination rate.

We have studied the release of radiolabeled small markers from nucleated cells carrying complement channels in order to determine the life-span of these channels at various temperatures. U937 cells, a human histiocytic cell line, were labeled with 14C-aminoisobutyric acid or 86RbCl, and treated with sublytic doses of C to form transmembrane channels. The cells were then incubated at various temperatures, and the persistence of channels was evaluated by measuring the release of the intracellular markers through the remaining channels. The results indicate that the life-span of the C channels in the plasma membranes of these cells varies markedly with temperature. Thus, at 2 degrees C, the half-life of the channels was about 2 hr, whereas at 37 degrees C, the half-life was estimated to be approximately 1 min. The rapid elimination of the transmembrane channels from the plasma membranes of these nucleated cells contrasts sharply with the long persistence of C channels in the membranes of erythrocytes or erythrocyte ghosts. It is likely that the multi-hit requirement recently reported for lysis of nucleated mammalian cells by C is due, at least in part, to the rapid disappearance of channels.

Aminoisobutyric Acids↗

Studies on demyelination in vitro: the requirement of membrane attack components of the complement system.

Anti-spinal cord antibodies (anti-SC) cause demyelination of well myelinated mouse cerebellum cultures in the presence of fresh serum. Heating the serum for 30 min at 56 degrees C abolishes the demyelinating activity. We studied the role of complement (c) in demyelination initiated by anti-SC in well myelinated mouse cerebellum cultures. Demyelination was assessed morphologically. The extent of demyelination was correlated to the dose of whole serum C as well as the dose of antibody. To evaluate the requirement of membrane attack components of C, C5b-C9, sister cultures were treated with antibody + C8 deficient human serum (C8D-HS) with and without purified human C8. Extensive demyelination was observed in C8-reconstituted cultures whereas antibody + C8D-HS did not demyelinate, indicating the essential requirement of C5b-8, and/or C5b-9. Extensively demyelinated cultures remyelinated when fresh medium was supplied, suggesting that the process of antibody and C-mediated demyelination is selective for myelin membrane in this system.

Animals↗

Activation of the fifth and sixth components of the human complement system: C6-dependent cleavage of C5 in acid and the formation of a bimolecular lytic complex, C5b,6a.

Acidification of C5 and C6 or serum to pH 6.4 at 0 degrees C, followed by neutralization, generates a factor-designated C(56)a that causes lysis of nonsensitized erythrocytes in the presence of C7, C8, and C9. C(56)a is functionally similar to alternative pathway-generated C5b,6 in respect to the formation of C5b,6,7 sites on cells, the potentiation of lytic activity by membrane-bound C3b or the membrane-active agent A2C, and the required species compatibilities between target membranes and terminal components for optimal activity. The formation of C(56)a complex from purified components C5 and C6 proceeds independently of the classical or alternative pathway C5 convertases and requires the simultaneous H+ ion treatment of the components. The generation of C(56)a from C5 and C6 and the physicochemical properties of the complex were studied in detail and compared with those of C5b,6. Acid generation of C(56)a is dose-dependent on C5 and C6 and its efficiency is similar to that of the conventional convertase in the production of lytic activity. Sucrose gradient ultracentrifugation of C(56)a containing activated 125I-C5 demonstrated a shift in sedimentation from that of native C5 to 11S, which is consistent with C5,6 complex formation. C(56)a sedimentation was identical to C5b,6, and both migrated coincident with lytic complex activity. These complexes, however, are not identical because unlike C5b,6, C(56)a is unstable at 37 degrees C, demonstrating a nonlinear decay curve. In the presence of C7, both complexes exhibit similar first order decay with a T1/2 of 3 min at 37 degrees C. SDS-PAGE autoradiographic analysis of the C5-subunit structure of 125I-C5 in C(56)a and the Zx-activated C5b,6 complex prepared from purified components showed similar alpha-chain cleavage to several fragments of 109,000, 100,000, and 58,000 daltons. Conversion to lower m.w. peptides by acid treatment was more extensive. Comparison of the 125I-C5 polypeptide chains in the membrane attack complex extracted from guinea pig erythrocyte membranes, prepared by acid activation or classical pathway lysis with whole serum, demonstrated similar C5 alpha-chain cleavage to a predominant subunit of 102,000 daltons. Acid activation also produced a 109,000 dalton C5 alpha'-fragment barely detectable with classical pathway activation. Low pH treatment of C5 alone did not inactivate C5 function, form a lytic complex on the subsequent addition of C6, or cleave the C5 alpha-chain. Thus, it is postulated that local high H+ ion concentration during simultaneous acidification of C5 and C6 allows complex formation with the concomitant C6-dependent cleavage of the C5 alpha-chain and the generation of lytic capacity.

Centrifugation, Density Gradient↗

On the lysis of paroxysmal nocturnal hemoglobinuria erythrocytes by complement: dual role of C3b.

The efficiency of cytolysis by the terminal complement proteins C5b-9 can be markedly enhanced by C3b molecules bound on the target cell membrane (Hammer et al. 1976). This enhancement was shown to be proportional to the number of C3b molecules on the cell membrane. The present experiments have shown that the hemolytic efficiency of the complement membrane attack system is two to five times greater on paroxysmal nocturnal hemoglobulinuria erythrocytes (PNHE) than on normal human E. This difference is attribute to a derivative of C3, probably C3b, on PNHE since it was abolished by anti-C3 but not by anti-C2. The efficiency of C5b-9 to lyse PNHE was only partially decreased by C3b inactivator and beta 1 H, indicating that the C3b on PNHE is not readily inactivated by its regulatory proteins. Furthermore, cells from a single severely affected patient consumed 3-fold more C5b6 than normal human E yet concommitantly measured membrane fluidity was normal. From these observations we conclude that cell-bound C3b on PNHE serves two functions: (a) it increases the hemolytic efficiency of membrane attack components of the complement system; and (b) it provides sites for assembly of the alternative pathway convertases.

Complement C3b↗

Complement activation by isolated myelin: activation of the classical pathway in the absence of myelin-specific antibodies.

Many pathological conditions of the central nervous system involve damage to and removal of myelin membrane. Very little is known about initiation of this membrane damage and the mechanisms of disposal of the damaged tissue. We are interested in the interaction between complement (the components of complement are designated C1, C2, C3, etc.) and myelin membranes and the possible role of complement in amplifying myelin damage and in the disposal of damaged myelin in vivo, because activation of complement generates both membrane-attack complexes and opsonin(s). In this study, we found that isolated rat or human myelin consumes complement in the absence of specific antibodies. Activation of complement was demonstrated by showing C3 cleavage in fresh serum incubated with myelin. Incubation of central nervous system myelin with C2-deficient serum produced no C3 consumption and only minor factor B conversion, thus excluding the alternative pathway of activation. Involvement of the classical pathway was shown directly by the C1 fixation and transfer assay. Myelin incubated with C2-deficient serum or with purified C1 and then washed contained C1 activity that could lyse sheep erythrocytes sensitized with anti-Forssman IgM antibody and carrying C4, together with C2 and C3-C9. Membranes in brain tissues other than myelin (heavy membrane fraction obtained on sucrose density gradient centrifugation) were unable to activate C1.

Animals↗