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Effects of combined expression of human complement regulatory proteins and H-transferase on the inhibition of complement-mediated cytolysis in porcine embryonic fibroblasts.

The expression of human complement regulatory proteins (CRP) and H-transferase (HT) in porcine cells is one of the strategies for suppression of hyperacute rejection (HAR) of xenotransplants in human recipients. In this study, we investigated the inhibitory effect of combined expression of human complement regulators and HT on human serum-mediated cytolysis in porcine embryonic fibroblasts. For the combinated expression of human CRPs in transformed pig cells, cDNAs of human DAF, MCP, and CD59 were cloned into the same insertional plasmid under the control of pCMV IE and LTR. The double combination of CRPs, hDAF-hMCP, and hMCP-hCD59 survived over 50% in the presence of 50% human serum, compared to the control. Moreover, the cell viability was increased more than 65% and 80% in the combination of human DAF-CD59 and DAF-MCP-CD59, respectively. In addition, the combination of HT gene to hDAF-hCD59 vector increased the viability close to 80%, similar to the triple combination of CRPs. These observations suggest that the combined expression of human CRPs and HT in the same insertional vector may be more effective in protecting porcine cells from human complement-mediated cytolysis.

Animals↗

Functional characterization of soluble and membrane-bound forms of vaccinia virus complement control protein (VCP).

Vaccinia virus secretes a 35 kD protein, vaccinia virus complement control protein (VCP), that inhibits the classical and alternative pathways of complement at several points, indicating that it may be a viral analogue of human complement receptor type 1 (CR1; CD35). Structurally, however, CR1 is composed of 30 short consensus repeats (SCRs), whereas VCP consists entirely of four SCRs. We have begun a structure-function analysis of VCP to define the minimum number of SCRs necessary for function, the functional differences between VCP and CR1, and the potential therapeutic roles for VCP. We addressed these questions by creating and characterizing recombinant soluble and membrane-bound forms of VCP. We have determined that (1) VCP requires all four SCRs to bind C3b, (2) whereas CR1 binds C3b and iC3b, VCP binds C3b but not iC3b, and (3) although normally secreted, if expressed on the membrane of mammalian cells, VCP effectively protects the cells from complement-mediated lysis. Thus, VCP appears to be a compact and unique complement regulatory protein with the ability to inhibit both arms of the complement cascade, but lacking affinity for iC3b. By releasing rather than capturing iC3b-bearing complexes following inactivation of C3b, VCP may 'recycle' its active site locally among infected cells, and thereby enable the virus to evade more efficiently host immune and inflammatory responses. The unique function, compact structure, and capacity of VCP to protect mammalian cells from complement-mediated attack, suggests that it could be used both to better understand the structure-function relationship of complement regulatory proteins, in general, and also to rationally design and develop novel therapeutic agents.

Animals↗

[Action of hyperoxia on hemolytic activity of the complement system].

Normobarie oxygen exposures momentarily raise by about 20% the haemolytic activity of the guinea pig complement likely by a rise of protein synthesis. About the end of this treatment the complement activity quickly decreases back to its initial value. Hyperbaric oxygen exposure immediately decreases the haemolytic activity. This shift might be result of a release in the serum of cytoplasmic elements bearing an anticomplementary activity or of an inactivation of the complement components involved in the stress reaction appearing in the treated animals. 2 days after the first exposure, during the resting phase, the complement rate increases by about 25% then decreases slowly back to normal.

Animals↗

Membrane-bound complement regulatory activity is decreased on vaccinia virus-infected cells.

Decay accelerating factor (DAF), membrane cofactor protein (MCP), complement receptor 1 and mouse Crry are cell surface-bound complement regulatory proteins capable of inhibiting C3 convertase activity on cell membranes, and therefore provide a substantial protection from attack by homologous complement activated either by the classical or by the alternative pathway. Decrease in complement regulatory activity might lead to spontaneous complement deposition and subsequent cell injury. MoAb 5I2 can inhibit the complement regulatory activity of molecules on rat cells, resulting in deposition of homologous complement. The antigen recognized by 5I2 MoAb in rats is homologous to mouse Crry. Fifteen to 20 h after infection with vaccinia virus, in vitro cultured KDH-8 rat hepatoma cells show a strong decrease in expression of Crry-like antigen, and proved to be sensitive to complement deposition when 1:5 diluted normal rat serum was added to the culture medium as a source of complement. Addition of complement to the cultured KDH-8 cells infected with a very low dose of vaccinia virus (1 plaque-forming unit (PFU)/1000 cells) substantially reduced spreading of virus infection in the cell culture, while inactivation of complement by heat or zymosan treatment abrogated the protective effect.

Animals↗

Differential expression of the complement regulatory proteins in the human eye.

PURPOSE: The presence of complement activation products in the human eye during infection or inflammation has been well described. During complement activation the host must be protected from attack against self tissue; this is achieved by three membrane-bound complement regulatory proteins: membrane cofactor protein (MCP, CD46), decay accelerating factor (DAF, CD55), and membrane attack complex inhibiting protein (CD59). This study was undertaken to analyze the expression of these proteins in the normal human eye. METHODS: Tissues were sectioned by cryostat and both polyclonal and monoclonal antibodies to MCP, DAF, and CD59 were used. Control stains were performed with nonrelevant antibodies of the same immunoglobulin subclass and normal rabbit serum as well as by omission of the primary and secondary antibodies. RESULTS: All three proteins were found to be differentially expressed in the human eye. With anti-MCP, strong staining of the corneal epithelium and weak staining of the corneal keratocytes in stroma and photoreceptor cells was observed. Staining with anti-DAF was very strong in the corneal epithelium and the ciliary body and moderate in the corneal stroma (keratocytes) and iris. In contrast, anti-CD59 stained very strongly in the corneal epithelium, corneal stroma (keratocytes), iris, choroid, and all layers of the retina, and moderately in the ciliary body. CONCLUSIONS: Identification of MCP, DAF, and CD59 in the human eye provides evidence that a regulatory system exists to protect these cells from destruction by complement-activating events. It remains to be determined if other more specialized functions exist for these proteins, especially in the case of CD59 because of its extensive expression in the retina.

Adult↗

Expression and distribution of cell-membrane complement regulatory glycoproteins along the human respiratory tract.

Complement in the human respiratory tract protects the host from invading microorganisms and from other inhaled insults. However, complement may also lyse the host's respiratory tract cells, leading to tissue injury. In many extrapulmonic tissues, cells express cell-membrane complement regulatory glycoproteins that protect the cells from complement-induced lysis. To determine whether these glycoproteins are expressed in human respiratory tract tissue, we studied tissue biopsies of healthy and diseased human respiratory tract from nose to alveoli for the presence of four cell-membrane complement regulatory glycoproteins (membrane cofactor protein [MCP], decay-accelerating factor [DAF], CD59, and complement receptor type 1 [CR1]) using an immunoperoxidase technique. In addition, to establish a model for in vitro studies of these glycoproteins in respiratory cells, we studied whether they are expressed in cultured nasal epithelial cells, using the same technique. Altogether, 26 tissue specimens from 22 patients were studied. We found that normal human respiratory tract from nose to alveoli express MCP, DAF, and CD59, but not CR1, and that this expression increases in inflammation and in lung cancer. In addition, expression in nasal epithelial cells is retained under cell culture conditions. These findings suggest that human respiratory tract tissue may regulate complement activation on its surface in order to avoid self-injury. We propose that imbalances in the mechanism that regulates cell-membrane complement may predispose the respiratory tract to tissue injury and disease, and that iatrogenic modulation of such imbalances may help to prevent these adverse consequences.

Adolescent↗

Human monocyte recognition of complement-coated lymphoblastoid cells.

The macrophage system in man plays a significant role in the detection of foreign cells. The mechanisms by which macrophages recognize malignant cells, however, are not well understood. We used human monocytes and four lymphoblastoid cell (LC) lines derived from human acute lymphocytic leukemia to investigate the initial recognition of tumor cells by monocytes. IgM antibody mediated the binding of these cells to monocytes only in the presence of complement. The stepwise addition of complement components to IgM-coated LC indicated that C3 was necessary to monocyte binding. Similarly, monocyte recognition of IgM-coated LC was maximal in the presence of sera from patients with congenital C5 or C6 deficiency, but absent in the presence of sera deficient C4 or from a patient with congenital C2 deficiency. Complement activation was associated with C3 consumption and the deposition of substantial amounts of C3 on to LC. Although 3H-C3 bound to LC appeared stable for 2 hours, approximately 4.0 +/- 2 X 10(5) 3H-C3 per LC was necessary for monocyte recognition, compared to approximately 2.7 +/- 0.5 X 10(3) 3H-C3 per RBC. The data indicate that LC can be recognized by monocytes through complement by mechanisms similar to nonmalignant target cells. However, substantial amounts of C3 are necessary to induce monocyte recognition of IgM-coated LC and, thus, such complement mediated recognition may be inefficient.

Cell Communication↗

Role of the complement system in antigen-induced bronchoconstriction and changes in blood pressure in the guinea pig.

Systemic anaphylaxis involves life-threatening bronchoconstriction and a serious hypotensive response often complicated by cardiac arrhythmias. The purpose of the present study was to determine whether complement system activation is essential to the bronchoconstriction and the changes in blood pressure seen in guinea pig models of anaphylaxis. The soluble complement receptor 1 (sCR1; BRL 55730) was used to inhibit activation of the classical and alternative pathways of complement in the guinea pig, and to determine whether this inhibition prevents bronchoconstriction and changes in blood pressure induced by i.v. antigen injection in guinea pigs that are either passively or actively sensitized to the antigen ovalbumin. sCR1 at 15 mg/kg did not affect significantly either the antigen-induced bronchoconstriction or the changes in blood pressure in a guinea pig passively sensitized with immunoglobulin G antibody to ovalbumin. However, it shortened the duration of the antigen-induced increase in blood pressure and inhibited the antigen-induced decrease in circulating platelets in an actively sensitized guinea pig. Continued studies using a cumulative dose of sCR1 of 105 mg/kg administered over a 24-hr period demonstrated that sCR1 attenuated the bronchoconstrictor response and the decrease in circulating platelets and prevented the hypotension induced by antigen in an actively sensitized guinea pig. At a cumulative dose of 105 mg/kg, sCR1 did not inhibit the bronchoconstrictor or blood pressure response to either histamine or bradykinin, indicating that its attenuation of cardiovascular and respiratory reactivity is specific for complement-related processes. The anaphylactic response was accompanied by complement activation as evidenced by cleavage of the C3 molecule. In the presence of sCR1, no C3 cleavage products were detectable in the plasma. Our studies demonstrate that complement activation is an essential step in the antigen-induced bronchoconstriction and the changes in blood pressure in an actively sensitized guinea pig model of anaphylaxis. Continued studies of the differing mechanisms and mediators of anaphylaxis are of importance, and the complement system clearly warrants consideration as a source of those mediators.

Animals↗