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D J Birmingham

Publications and source records attributed to D J Birmingham.

At least 19 recordsLinked to original sources

Effect of enalapril therapy on glomerular accumulation of immune complexes and mesangial matrix in experimental glomerulonephritis in the nonhuman primate.

The present study is a prospective, controlled, blinded trial of enalapril therapy in experimental immune complex (IC)-mediated glomerulonephritis (GN) in the nonhuman primate (cynomolgus monkey [CYN]). Two groups of CYNs were studied: those with established GN (study A) and those in which GN was being induced (study B). In study A, 12 CYNs had GN established by 8 or 10 weeks of daily intravenous infusion of bovine gamma-globulin (BGG). These CYNs were then assigned to either 4 weeks of daily oral enalapril therapy (n = 6) or daily oral placebo therapy (n = 6). The daily BGG infusions were continued during the 4 weeks of enalapril or placebo therapy. At the start of the enalapril/placebo protocol, the two groups were similar with respect to proteinuria and level of precipitating antibody to BGG, which determined the daily BGG dose. Renal biopsy was performed in each CYN at the start and end of the 4-week period of enalapril/placebo protocol. In study B, 15 normal CYNs were immunized to BGG over a period of 4 weeks. The CYNs were then assigned to daily oral enalapril therapy (n = 8) or placebo therapy (n = 7) based on level of precipitating antibody to BGG. At this point, daily intravenous BGG was begun along with daily enalapril or placebo for 8 weeks. Renal biopsy was performed in each CYN before and at the end of this 8-week period. In study A, enalapril therapy was associated with a significant decrease in mesangial matrix volume (mean change, -27.7%; P = 0.031) and a trend toward decreased mesangial matrix deposits (mean change, -34.1%; P = 0.188). By contrast, in CYNs receiving placebo therapy, mesangial matrix volume increased compared with the enalapril group (P = 0.002) and mesangial deposits were unchanged. In study B, both the enalapril and placebo groups showed significant increases in mesangial matrix volume, mesangial deposits, mesangial cell volume, and capillary wall deposits during the 8 weeks of daily BGG infusion. However, none of the differences between the groups achieved statistical significance. Changes in mesangial cell volume and capillary wall deposits were also evaluated in study A and study B, but were not found to be different between the enalapril and placebo groups. In both study A and study B, blood pressure was lower in the enalapril groups. In conclusion, in the initial phase of IC-GN induction (0 to 8 weeks), enalapril therapy does not significantly influence the glomerular accumulation of mesangial matrix or immune deposits. However, in established IC-GN (after 8 weeks of GN induction), enalapril therapy significantly decreases the further accumulation of mesangial matrix and may decrease the further accumulation of mesangial deposits. Whether this benefit of enalapril therapy was related to lower blood pressure or to other effects of angiotensin-converting enzyme (ACE) inhibition was not determined in this study.

Angiotensin-Converting Enzyme Inhibitors

Prevention of acute murine cardiac allograft rejection: anti-CD4 or anti-vascular cell adhesion molecule one monoclonal antibodies block acute rejection but permit persistent graft-reactive alloimmunity and chronic tissue remodelling.

We treated C57BL/6 mouse recipients of DBA/2 cardiac allografts with anti-CD4 monoclonal antibodies (mAb) or anti-vascular cell adhesion molecule 1 mAb to promote long-term allograft survival and subjected both the recipient animals and the long-surviving allografts to a battery of histologic and immunologic tests. The results were similar regardless of the mAb used for antirejection therapy. At all tested times after transplantation, the allografts displayed histologic evidence of ongoing microvascular endothelial activation and interstitial leukocytic infiltration. Reverse transcription polymerase chain reaction analyses revealed continuous intragraft expression of messenger RNA for interleukin 1, interleukin 2, interleukin 4, interleukin 6, tumor necrosis factor, interferon gamma, and transforming growth factor beta. All grafts had histologic evidence of ongoing vascular and parenchymal tissue remodeling, including interstitial fibrosis and vascular neointimal hyperplasia. The graft recipients retained limiting dilution analysis--detectable, donor-reactive cytolytic T lymphocyte, and helper T lymphocyte in their spleens and produced high liters of donor-reactive alloantibodies. Variable amounts of allogeneic microchimerism were detectable in some, but not all of the long-surviving graft recipients. In general, these observations indicate that (1) a similar immune status is achieved in long-surviving allografts and their recipients when either anti-CD4 mAb or anti-vascular cell adhesion molecule-1 mAb was used for antirejection therapy, in spite of the major differences in lineage and distribution of cells targeted by these two mAbs, (2) this immune status is characterized by continuous, long-term inflammatory and immune processes very similar to those observed during acute allograft rejection, and (3) in spite of these processes the allografts continue to function, although they invariably develop a chronic rejection-like histopathologic condition that may ultimately limit graft function. In this regard, the recipients of long-surviving allografts do not seem to be tolerant of their graft alloantigens.

Animals

The baboon erythrocyte complement receptor is a glycophosphatidylinositol-linked protein encoded by a homologue of the human CR1-like genetic element.

The human erythrocyte CA receptor (E-CR) is the type 1 complement receptor (CR1), the most common form of which is a 220,000 Mr integral membrane glycoprotein composed of 30 short consensus repeats (SCRs). The E-CR of many nonhuman primates is a smaller receptor of unknown genetic origin. Recently, we identified a chimp cDNA, termed CR1b, which represented transcription of a homologue of the human genetic element, CR1-like. The purpose of this study was to identify CR1b in the baboon and, if present, determine whether it encodes the 65,000 Mr baboon E-CR. Baboon bone marrow cDNA was amplified by PCR using primers specific for the signal peptide-encoding region of human CR1 and the 3' region of chimp CR1b. This amplification yielded a CR1b sequence predicted to encode seven SCRs followed by a hydrophobic region, with an N terminus homologous to the N terminus of baboon E-CR. Expression of baboon CR1b yielded a membrane protein that reacted with an anti-CR1 mAb, was identical in size to baboon E-CR, and, like baboon E-CR, could bind baboon C3 linked to activated thiol-Sepharose (C3i-ATS), but not human C3i-ATS. Phosphatidylinositol-specific phospholipase C (PIPLC) released CR1b from Chinese hamster ovary cells and E-CR from baboon erythrocytes, demonstrating that both of these proteins are glycophosphatidylinositol linked to the membrane. Thus, the data indicate that baboon CR1b, a homologue of the human CR1-like genetic element, encodes a glycophosphatidylinositol-linked protein that is the baboon E-CR.

Amino Acid Sequence

Effect of chronic human recombinant erythropoietin therapy on antibody responses to immunization in chronic hemodialysis patients.

There are multiple lines of evidence suggesting that human recombinant erythropoietin (rEPO) could influence immune responses by direct effects of rEPO on T or B cells. The present study tested this hypothesis by measuring antibody responses after immunization to tetanus toxoid (TT, a T cell dependent antigen) or pneumococcal capsular polysaccharide antigen (PA, a T cell independent antigen). The patients chosen for this prospective study were chronic hemodialysis patients receiving chronic rEPO therapy, and a comparable group of chronic hemodialysis patients not receiving rEPO therapy. We found that the patients immunized with PA and receiving rEPO therapy (N = 15) had IgG anti-PA responses comparable to that of those not receiving rEPO therapy (N = 15). In contrast, in the patients immunized with TT, those receiving rEPO (N = 15) developed significantly higher IgG anti-TT levels than those not receiving rEPO (N = 14) (time-group interaction P = 0.005). The peak difference between these groups was at two weeks, where the rEPO-treated patients developed a 4.1-fold mean increase in IgG anti-TT level and those not receiving rEPO developed only a 1.4-fold mean increase in IgG anti-TT level (P < 0.01). The difference in immune response to TT in the rEPO compared to the non-rEPO-treated patients could not be explained by differences between the groups in any of the parameters measured at baseline or during the post-immunization period. In conclusion, rEPO therapy increased immune response to TT but not PA, which suggests that rEPO enhances immune response to T cell dependent antigens.

Adult

Erythrocyte complement receptors.

Primate erythrocytes express complement receptors (E-CR), which can extrinsically bind C3b and Cb4. This interaction allows primate erythrocytes to bind complement opsonized particles and immune complexes, a phenomenon historically referred to as immune adherence. The binding of C3b and C4b by E-CR also leads to inhibition of complement activation. The human E-Cr is the complement activation. The human E-CR is the complement receptor type 1, or CR1, which is codominantly expressed as four polymorphic allotypes, ranging in size from 190,000 to 280,000 M(r). Non-human primate E-CR are similar to CR1 in function and antigenicity and are likely homologous to CR1 in structure; however, they are one third to one half the size of CR1. The physiological role of E-CR, determined from studies in monkeys and humans, is to allow erythrocytes to perform as inert shuttles for circulating immune complexes (IC), safely directing IC to the organs of the monocyte phagocytic system, thus preventing indiscriminate IC deposition in vulnerable tissue. In IC-mediated diseases, such as systemic lupus erythematosus (SLE), detectable erythrocyte CR1 levels are reduced, an abnormality that in part is acquired during disease activity. The loss of erythrocyte CR1 may be an important pathogenic factor in the development and severity of SLE.

Animals

Primary sequence of an alternatively spliced form of CR1. Candidate for the 75,000 M(r) complement receptor expressed on chimpanzee erythrocytes.

Chimpanzee erythrocytes express a 75,000 M(r) complement receptor (E-CR) that binds C3b bearing immune complexes and is recognized by an anti-CR1 mAb (E11). Human erythrocytes express the type 1 CR (CR1), the most common form being 220,000 M(r) and consisting of 30 short consensus repeats (SCRs) for its entire extracellular region. The purpose of this investigation was to determine the structure of the 75,000 M(r) chimpanzee E-CR. A chimpanzee cell line was identified that expressed a 220,000 M(r) CR1, and a 75,000 M(r) molecule that was recognized by E11 and could bind human C3i. Utilizing this cell line, chimpanzee CR1 cDNA was amplified in overlapping segments by the PCR, using primer pairs specific for various regions of human CR1 cDNA. Direct sequencing of the PCR-amplified products revealed 6044 nucleotides encoding the entire 220,000 M(r) chimpanzee CR1. This nucleotide sequence was 98.8% homologous to that of the human 220,000 M(r) CR1. Amplification using a CR1 primer from the signal peptide and from the cytoplasmic region yielded a 1985-bp PCR product, termed CR1a. The CR1a sequence was identical with the sequence encoding SCRs 1 to 6, SCRs 28 to 30, and the transmembrane and cytoplasmic regions of chimpanzee CR1. This alternatively spliced product of chimpanzee CR1 would encode a protein of 71,000 peptide m.w. with six potential N-glycosylation sites. Amplification employing a CR1 primer from SCR 1 and from the 3' untranslated region yielded a second PCR product of 1731 bp. This sequence, termed CR1b, encoded eight SCRs, followed by a hydrophobic region that ended in a stop codon. The first six SCRs of CR1b were closer in homology to the first six SCRs of a human CR1-like genomic sequence (97.4%) than to those of the chimpanzee CR1 (94.8%). Taken together, these sequence data suggest that the 75,000 M(r) chimpanzee E-CR is encoded by CR1a, an alternative splice variant of chimpanzee CR1. The CR1b is presumably derived from an RNA species related to the CR1-like genomic sequence previously described only in humans.

Alternative Splicing

Effect of recombinant erythropoietin therapy on autoimmunity in systemic lupus erythematosus.

Previous studies of the in vitro effects of recombinant erythropoietin (rEPO) on T and B cells and studies of lymphocyte subsets in dialysis patients receiving rEPO therapy suggest that rEPO might augment immune responses. In the present study indices of autoimmunity (antinuclear antibody, anti-double-stranded DNA, and antiphospholipid antibody [immunoglobulins G and M]) were measured before, during, and after rEPO therapy in five systemic lupus erythematosus patients without renal failure (mean serum creatinine, 1.5 +/- 0.3 mg/dL). The rEPO therapy was self-administered by subcutaneous injection in doses ranging from 4,000 units once weekly to 3,000 units three times weekly for 3 to 7 months. On rEPO therapy, each patient experienced an increase in hematocrit. The mean baseline hematocrit increased from 32 +/- 2.0 to a peak of 42.2 +/- 3 (P < 0.001) at 3 to 7 months and then decreased to baseline values 1 to 2 months after rEPO was discontinued. During this time the indices of autoimmunity were not significantly changed by rEPO therapy. Systemic lupus erythematosus activity, assessed by serum C3, serum creatinine, urinalysis, and 24-hour proteinuria, also was unchanged by rEPO therapy. The rEPO therapy was generally well tolerated. However, one patient, who was also receiving replacement estrogen therapy and had high-titer antiphospholipid antibody, experienced episodes of thrombophlebitis while on rEPO therapy. In conclusion, we found no evidence that rEPO increases autoimmunity in systemic lupus erythematosus. However, we observed a temporal relationship between episodes of thrombophlebitis and rEPO therapy in a single patient with high-titer anticardiolipin antibody who was also receiving replacement estrogen therapy. These associations require further investigation.

Adult

Effects of complement activation products on the synthesis of decay accelerating factor and membrane cofactor protein by human mesangial cells.

We previously demonstrated that activation of terminal complement components (C8 and/or C9) increases the synthesis and expression of decay accelerating factor (DAF) on human glomerular cells. DAF is a cell membrane-associated complement regulatory protein that inhibits complement activation on cell surfaces. In the present studies we evaluated, first, the mechanisms by which complement activation stimulates DAF synthesis, and second the effect of complement activation on the synthesis. and expression of membrane cofactor protein (MCP), another complement regulatory protein, by human mesangial cells (HMC) in culture. Complement activation by immune complexes resulted in increased DAF mRNA levels by at least two mechanisms: deposition of activated C3 on HMC and generation of soluble complement activation products, specifically C5a. The increase in DAF mRNA levels induced by activated C3 or C5a was short lived (less than 4 hr). In contrast, the up-regulation of DAF mRNA levels induced by activation of the complete complement cascade persisted for at least eight hours. The effect of complement activation on DAF mRNA levels was not affected by cycloheximide, a protein synthesis inhibitor. However, cycloheximide alone resulted in a significant up-regulation of DAF mRNA levels on HMC. In contrast to those findings complement activation did not cause an up-regulation of MCP mRNA, nor an increase in the synthesis of this protein. However, by FACS, complement produced a small but significant increase of MCP protein levels on HMC. In conclusion, both MCP and DAF are present on HMC. Several activated complement components are capable of increasing DAF mRNA levels, but DAF protein levels increase only after activation of the whole complement cascade.(ABSTRACT TRUNCATED AT 250 WORDS)

Antigens, CD

Effect of chronically increased erythrocyte complement receptors on immune complex nephritis.

Experimental studies in humans and other primates have shown that the erythrocyte (E) complement receptor Type 1 (CR1), which is unique to the primate, plays an important role in clearing immune complexes (IC) from the circulation by binding C3b/C4b opsonized immune complexes and carrying the IC to liver and spleen for disposal. The results of these acute experiments suggest that increasing E-CR1 levels chronically should protect against IC-mediated glomerulonephritis (IC-GN) induced by chronic formation of IC in the circulation. In the present study this hypothesis was tested in the cynomolgus monkey (CYN). IC-GN was induced by daily bolus intravenous infusion of BGG into immunized CYN for 8, 10, or 14 weeks. Prior to and during the daily bolus infusions of BGG, sustained differences in E-CR1 levels were achieved between the experimental group (increased E-CR1 levels) and the control group (maintained or decreased E-CR1 levels), by one of two methods: (1) Twice weekly exchange transfusion. The CYN donors were blood type compatible with the recipients and had either constitutive high E-CR1 expression (3,000 to 5,000 CR1/E) or constitutive low E-CR1 expression (< 100 CR/E). The recipients of the exchange transfusions (N = 2) had constitutive mid-level E-CR1 expression. (2) Weekly phlebotomy (PL) or sham PL. CYN with mid-level E-CR1 expression were randomly assigned to receive weekly either PL (causing increased E-CR1 expression by stimulating erythropoiesis) (N = 8) or sham PL (which has no effect on E-CR1 expression (N = 9).(ABSTRACT TRUNCATED AT 250 WORDS)

Animals

Erythropoietin therapy in humans increases erythrocyte expression of complement receptor type 1 (CD35).

The expression of complement receptor Type 1 (CR1, CD35) on erythrocytes (E) is unique to humans and other primates. E-CR1, a C3b/C4b receptor that also acts as cofactor for Factor I, appears to be important in clearing C3/C4-opsonized immune complexes from the circulation, in controlling complement activation in the circulation, and in regulating antibody formation. This study was undertaken to determine whether therapy with recombinant human erythropoietin (rEPO) might increase E-CR1 expression in humans. The rationale is that young erythrocytes express more E-CR1 than old erythrocytes. Thus, conditions that stimulate erythropoiesis should increase E-CR1 expression. The hypothesis that stimulating erythropoiesis by rEPO therapy can increase E-CR1 expression was tested in six anemic chronic hemodialysis (ESRD) patients and five systemic lupus erythematosus (SLE) patients without renal failure. Before the rEPO therapy, three of the SLE patients were anemic and two were not. The ESRD patients were studied before and during 9 or 10 mo of rEPO therapy. The SLE patients were studied before, during, and after 7 mo of rEPO given by sc injection two or three times weekly. It was found that rEPO therapy was associated with a progressive increase in the average number of CR1/E in each of the ESRD patients and in the anemic SLE patients: mean baseline CR1/E was 210 +/- 50 (SE) for the ESRD patients and 125 +/- 35 for the SLE patients.(ABSTRACT TRUNCATED AT 250 WORDS)

Adult

Rate of antigen entry into the circulation in experimental versus naturally occurring immune complex glomerulonephritis.

This study tested the hypothesis that the rate of antigen entry into the circulation in systemic lupus erythematosus (SLE), a naturally occurring immune complex glomerulonephritis (IC-GN), is slow compared with that of traditional experimental models of IC-GN, in which the antigen is delivered rapidly as a daily iv bolus. This hypothesis was tested by comparing rates of decline of the third component of complement (C3) and of circulating neutrophils (PMN) in SLE patients with active disease with those of cynomolgus monkeys (CYN) undergoing induction of experimental IC-GN by means of a daily bolus infusion of antigen. It has previously been shown that, as antigen enters the circulation and forms circulating IC, C3 levels and circulating PMN decline acutely. Thus, acute changes in these parameters can be surrogates for the rate of antigen entry into the circulation. In the CYN undergoing induction of IC-GN (N = 11), infusion of the antigen (bovine gamma-globulin) over 10 min resulted in acute declines in C3 levels (25 +/- 6.6%; P = 0.0018 and PMN counts (59 +/- 9%; P < 0.0002). In addition, the CYN experienced the onset of acute respiratory distress and hypotension. By contrast, in patients with active SLE (N = 9), C3 and white blood cell counts measured at 24-h intervals did not change significantly, and episodes of acute hypotension or respiratory distress were not observed. In the CYN, the onset of visible vasculitic lesions in the omentum were also documented within minutes of the infusion of bovine gamma-globulin. The rapidity of onset of these vascular lesions suggests that the tempo at which lesions develop in experimental models of IC disease is faster than that of naturally occurring IC diseases. It was concluded that, in naturally occurring IC diseases, antigen probably enters the circulation slowly over prolonged periods of time, rather than as large boluses over short periods of time, as in traditional experimental models of IC-GN. Thus, models of IC-GN involving a daily bolus infusion of antigen may not be clinically relevant, particularly when IC clearing mechanisms are tested, because the efficiency of these mechanisms may be markedly influenced by the rate at which IC form in the circulation.

Animals

Cytomegalovirus inhibits major histocompatibility class II expression on infected endothelial cells.

Persistent human cytomegalovirus (HCMV) infections are responsible for significant morbidity and mortality in immunocompromised individuals. One mechanism by which HCMV may develop persistence after primary infection is through inhibition of host cell human leukocyte antigen (HLA) class II expression with resultant escape from normal antiviral immune surveillance. Immunofluorescence flow cytometry of human endothelial cell (EC) cultures infected with HCMV AD169 and an EC propagated strain, VHL/E, showed a marked reduction in interferon-gamma (IFN-gamma)-induced surface expression of HLA-DR. This inhibition did not occur when EC were treated with ultraviolet-inactivated virus and IFN-gamma. HCMV, as determined by dual-labeling immunohistochemistry, inhibited induction of surface and cytoplasmic class II antigens specifically in infected cells. HCMV infection also inhibited IFN-gamma and tumor necrosis factor-alpha up-regulation of HLA class I expression. Northern blot analysis of infected, IFN-gamma-treated human umbilical vein endothelial cells revealed an absence of class II mRNA. Persistence of HCMV may result in part from its ability to inhibit HLA class II induction in infected cells.

Blotting, Northern

Platelet involvement in experimental immune complex-mediated glomerulonephritis in the nonhuman primate.

Abundant glomerular platelet deposition is a hallmark of certain animal models of immune complex (IC)-mediated glomerulonephritis (GN). By contrast, conspicuous platelet deposition is uncommon in the IC-GN seen in humans. This could result from intrinsic differences between human and animal platelets, which are known to be present. To assess whether abundant glomerular platelet deposition can occur in humans with IC-GN, the present studies were undertaken in nonhuman primates (cynomolgus monkeys, CYN), with active experimental IC-GN induced by 12 weeks of daily intravenous infusion of bovine gamma globulin (BGG). CYN are appropriate for these studies because, like humans, CYN platelets do not express the C3b receptor but do express receptors for the Fc region of IgG (FcR gamma II). Furthermore, in this model of IC-GN, which is indistinguishable from IC-GN seen in humans, it is possible to time the biopsy to coincide with a period of peak activity of the GN. The present studies proceeded as follows: ten CYN were studied before and after intravenous infusion of BGG sufficient to achieve conditions near antigen/antibody equivalence for circulating precipitating antibody to BGG. The infusion of BGG, which was given over 10 minutes, resulted in an acute reduction in circulating platelets (mean 43% +/- 5 SE, P < 0.001). However, renal biopsies performed before and five minutes after the acute reduction in circulating platelets showed that relatively few of the platelets removed from the circulation lodged in glomeruli (platelets/glomerular cross section: 0.2 +/- 0.06 before BGG vs. 0.88 +/- 0.31 after BGG, P = 0.035). In five of the CYN studied under the above protocol, autologous platelets were labeled with 111In and reinfused into the CYN just prior to the BGG infusion. These studies confirmed the paucity of platelet deposition in kidney but showed major uptake of the 111In-labeled platelets by liver and spleen (mean +/- SE 111In CPM/mg of tissue: kidney cortex 18 +/- 8, liver 132 +/- 42, and spleen 808 +/- 127, P = 0.038, comparing kidney to liver or spleen by paired t-test). Thus, the platelets removed from the circulation were taken up at the sites which are also the principal sites of IC uptake (liver and spleen), and over the time interval that coincides with the period of maximum uptake of IC by liver and spleen, after BGG infusion. In vitro studies, discussed herein, showed that BGG anti-BGG IC bind to CYN platelets via FcR gamma II.(ABSTRACT TRUNCATED AT 400 WORDS)

Animals

Stimulating erythropoiesis increases complement receptor expression on primate erythrocytes.

Erythrocyte complement receptors (CR) are unique to primates and play a role in the clearance of immune complexes from the circulation. Immune complex-mediated diseases (e.g., systemic lupus erythematosus, SLE) cause decreased erythrocyte CR levels, resulting in decreased capacity of the erythrocytes to bind immune complexes that form in the circulation. Thus, raising erythrocyte CR levels might benefit patients with immune complex-mediated diseases. Because young erythrocytes express more CR than old erythrocytes, increasing erythropoiesis should increase the average number of CR expressed per erythrocyte. The present study was undertaken to test that hypothesis. Erythropoiesis was stimulated in nine cynomolgus monkeys (CYN) by weekly phlebotomy (30% of blood volume was removed, erythrocytes were discarded, and leukocytes were returned to the animal) for 8 weeks. Sham phlebotomy (30% of blood removed, then all components returned to the animal) was carried out weekly in four additional CYN for a period of 4 to 8 weeks. Sham phlebotomy did not change any of the parameters measured. However, phlebotomy resulted in a progressive increase in the mean number of CR expressed per erythrocyte (CR/erythrocyte): 2780 +/- 700 to 4230 +/- 820, P less than 0.0005. The increase in erythrocyte CR was first detected at about 2 weeks after the start of phlebotomy and was sustained through the course of phlebotomy. The increase in CR/erythrocyte included an increase in the percentage of erythrocyte expressing CR in clusters (37.9 +/- 6.4 vs 50.8 +/- 8.7%, P less than 0.01) as demonstrated by a flow cytometry study of the binding of fluorescent beads coated with anti-CR1 antibody. No significant change in leukocyte or platelet counts were observed. We conclude that stimulating erythropoiesis causes an increase in CR/erythrocyte. The magnitude of the increase suggests that it could be biologically significant.

Animals

Complement activation induces the expression of decay-accelerating factor on human mesangial cells.

In the present study we evaluated the effect of complement activation by immune complexes (IC) on the expression of decay-accelerating factor (DAF) on human mesangial cells (MC). MC in culture were incubated with an Ag (DNP-Gelatin) that binds to fibronectin present in the MC matrix. Subsequently, MC were incubated with anti-DNP antibodies in the presence of human serum. By immunoperoxidase staining we showed that these incubations resulted in IC formation and deposition of human C3 and terminal complement components (C5b-9) on the mesangial matrix and on the surface of MC. By immunoperoxidase staining and by RIA we showed that IC formation and complement activation significantly increased DAF expression on the MC plasma membrane. The induction of DAF expression was a consequence of deposition of terminal complement components on the MC because, zymosan-activated serum and IC formation in the presence of C5- or C8-deficient serum failed to increase MC DAF expression. Furthermore, the observed increased DAF expression was the consequence of increased DAF synthesis by MC. Thus, both cycloheximide and actinomycin D blocked the increase on MC DAF observed after incubation with IC and serum. MC DAF had biophysical and functional characteristics similar to DAF in other cells. Thus, 1) MC DAF was resistant to trypsin but was removed from the MC membrane by pronase; 2) phosphatidylinositol-specific phospholipase C removed 48 +/- 4% of MC DAF indicating that MC DAF is anchored in the cell membrane by phosphatidylinositol groups; 3) DAF isolated from MC-inhibited complement-mediated hemolysis and demonstrated a molecular mass of 83 kDa. In conclusion, deposition of terminal complement components on human MC trigger new synthesis and membrane expression of DAF. Because DAF protects cells against complement-mediated lysis, we postulate that DAF may protect glomerular cells during IC and complement-mediated glomerulonephritis.

CD55 Antigens

Experimental immune complex-mediated glomerulonephritis in the nonhuman primate.

This study was undertaken to develop a model of immune complex (IC)-mediated glomerulonephritis (GN) in the nonhuman primate that could be used in subsequent studies to examine critically the role of the erythrocyte complement receptor (E-CR) in the pathogenesis of IC-mediated disease. Cynomolgus monkeys were chosen for study because they constitutively express E-CR levels that are either less than, equal to, or greater than that seen in normal man. After immunization with bovine gamma globulin (BGG), the GN induction protocol was begun in 10 cynomolgus by initiating daily i.v. administration of BGG in amounts sufficient to achieve or exceed antigen/antibody equivalence (assessed by the quantitative precipitin assay) for precipitating antibody present in the plasma volume. We found that within eight weeks of daily BGG administration of all the cynomolgus developed IC-mediated GN, irrespective of the initial E-CR level of the animals. However, the high E-CR cynomolgus tended to receive the higher BGG doses because of higher initial antibody levels to BGG. When the total number of glomerular deposits (determined by morphometric studies) per total BGG dose for each animal was plotted against the initial CR/E of that animal, there was a tendency for the animals with higher CR/E levels to have a lower number of glomerular deposits/BGG dose (r = 0.62, P = 0.06). Also, the total number of glomerular deposits correlated with the severity of the GN. During the early weeks of the GN induction protocol, the IC that formed in vivo (assessed by infusion of 125I-BGG) bound in large amounts to the circulating erythrocytes of the cynomolgus with medium or high E-CR levels. However, when tested after the onset of heavy proteinuria, which occurred between weeks 5 and 8 of daily BGG administration, the IC that formed in the circulation bound only poorly to circulating erythrocytes. By this time the E-CR levels had declined to 43 +/- 9% of initial values (P less than 0.01). This study demonstrates that: 1) A workable model of IC-mediated GN has been developed in the nonhuman primate. 2) During the induction of GN, CR/E and the ability of the erythrocyte to bind IC in vivo are decreased significantly. This suggests that an intact E-CR system could play a role in the protection against IC-mediated disease. However, further study will be needed to test that hypothesis critically. The present model should be useful in such studies.

Animals