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Biosynthesis of the gp330/44-kDa Heymann nephritis antigenic complex: assembly takes place in the ER.

The Heymann nephritis antigenic complex (HNAC) consists of two components, i.e., 1) gp330, a large glycoprotein localized in coated pits of the proximal tubule and glomerular epithelium, and 2) a 44-kDa protein which is homologous to the human alpha 2-macroglobulin receptor-associated protein (RAP). To examine the biosynthesis and assembly of HNAC, tissue fragments prepared from collagenase-digested 1-day-old rat kidneys were radiolabeled, and gp330 and RAP were immunoprecipitated with specific antibodies. By electron microscopy the tubule organization was seen to be largely intact. Results obtained on the biosynthesis of a control brush border protein, dipeptidylpeptidase IV (DPPIV), showed that tubules prepared in this manner are capable of synthesis and posttranslational processing of brush border membrane proteins and thus are suitable for short-term (< 3 h) biosynthetic experiments in vitro. Results of pulse chase and digestion with endoglycosidase H (Endo H) indicated that the time required for newly synthesized gp330 to mature in the endoplasmic reticulum (ER) and transit the middle Golgi compartments [half time (t1/2) = 90 min] was significantly longer than that of DPPIV (t1/2 = 20 min). Coprecipitation and cosedimentation (sucrose velocity gradient centrifugation) experiments showed that gp330 associates with RAP very early after synthesis and that the 44-kDa protein remains associated with gp330 during its subsequent folding, oligomerization, and transport to the Golgi. These findings demonstrate that HNAC assembles in at least two steps. The first step is the association of gp330 with RAP forming a large (19.3S) heterodimer, which sediments with the thyroglobulin (mol wt = 669,000) standard. This step begins within 30 min of synthesis and is Ca2+ dependent. The second step, which occurs > 60 min after synthesis, is the formation of a larger heterooligomer, which results in a shift in size of the complex from 19.3 to 38.6S. Both steps occur before acquisition of Endo H resistance. These results indicate that HNAC consists of a large multimeric complex that is assembled in the rough ER.

Animals↗

The Heymann nephritis antigenic complex: megalin (gp330) and RAP.

Heymann nephritis (HN) has been extensively studied as a model of human membranous nephropathy since it was first described by Heymann in 1959. HN was induced in active form by the immunization of rats with antigens derived from the proximal tubule brush border, resulting in subepithelial glomerular immune deposits. HN was also induced passively by the injection of antibrush border antibodies into normal rats. A breakthrough in the understanding of the pathogenesis of HN was made in the 1970s, when it was established that the disease was due to the binding of circulating antibodies to glomerular components. This in turn led to a search to identify the endogenous antigen(s). In 1982, gp330 (now called megalin), a glycoprotein located in clathrin-coated pits of glomerular and proximal tubular epithelia, was identified as a target antigen. In 1990, a second protein (44 kd), now known as RAP (for receptor associated protein), that binds to megalin was also shown to be a target antigen. Both molecules have been cloned and sequenced, and their role in normal epithelial cells has been explored. It has come to light that megalin (gp330) is a member of the low-density lipoprotein receptor gene family and functions as a multiligand receptor for the uptake of a variety of macromolecules (plasminogen, protease: protease inhibitor complexes, apolipoprotein E-enriched very low-density lipoproteins, lactoferrin, among others). RAP associates with megalin and appears to function as a chaperone assisting in the folding of megalin in the endoplasmic reticulum and its transport to the cell surface. This review considers what is now known about the structure, function, and trafficking of megalin and RAP and the role of these two molecules in the pathogenesis of HN.

Amino Acid Sequence↗

Immunocytochemical and biochemical characterization of the Heymann nephritis antigenic complex in rat L2 yolk sac cells.

Heymann nephritis in the rat is the most widely used model of human membranous glomerulonephritis. Glycoprotein (gp)330, a large (M(r) > 550,000) membrane-associated glycoprotein, has been identified as the main antigen in this autoimmune disease. Studies of gp330 and receptor-associated protein (RAP), its 44-kd subunit, have been restricted largely to rat kidney, as no stable cultured cell line has been available that expresses gp330. We have recently identified a rat yolk sac carcinoma cell line (L2) that expresses both gp330 and RAP. In this report, we have carried out detailed morphological, immunocytochemical, and biochemical studies characterizing the biosynthesis and localization of gp330 and RAP in the L2 rat yolk sac cell line. At the electron microscope level, the L2 cells are seen to be attached by cell junctions, and their predominant morphological features include extensive networks of rough endoplasmic reticulum (ER) and numerous clathrin-coated pits found on the cell membrane. By immunocytochemistry, gp330 was localized primarily to clathrin-coated pits at the cell surface, whereas RAP was localized predominantly to the lumen of the rough ER. Pulse-chase experiments indicated that gp330 spends a prolonged time maturing in the ER of L2 cells, as transport of gp330 to the Golgi complex (based on acquisition of endoglycosidase H resistance) is slow (t1/2 = 90 to 120 minutes). Gp330 reached the L2 cell surface beginning at 2 hours after synthesis, where it could be detected by cell surface immunoprecipitation. RAP was found to be an N-linked glycoprotein, and it remained endoglycosidase H-sensitive up to 4 hours after synthesis. Co-precipitation and co-sedimentation experiments demonstrated that gp330 and RAP form a large heterodimer (M(r) approximately 669,000) immediately after biosynthesis and are further assembled into a large hetero-oligomer in the ER. These findings demonstrate that the localization and the kinetics of assembly of gp330 and RAP into the Heymann nephritis antigenic complex are similar in both L2 cells and rat kidney. They also provide new information on the intracellular processing of these two molecules and their delivery to the cell surface. Thus, the L2 cell system should facilitate further characterization of the functions and interactions of gp330 and RAP, which may shed light on the cellular and molecular mechanisms of Heymann nephritis.

Animals↗

gp330 associates with a 44-kDa protein in the rat kidney to form the Heymann nephritis antigenic complex.

Using antibodies isolated from glomeruli of nephritic rats we have previously identified a 330-kDa cell surface glycoprotein (gp330) as a major pathogenic antigen of Heymann nephritis (HN), an experimental model of human membranous glomerulonephritis. Recently, we have isolated a cDNA clone, C14, encoding a polypeptide that contains a pathogenic epitope of HN responsible for the initiation of the disease. Subsequently, another protein, alpha 2-macroglobulin receptor-associated protein (alpha 2-MRAP), which is a subunit of the receptor for human alpha 2-macroglobulin/low density lipoprotein receptor-related protein (LRP), was shown to possess a high degree of sequence homology to the C14 protein (C14p). In this report, we have investigated the relationship between gp330, C14p, and alpha 2-MRAP. Immunoprecipitation studies demonstrate that gp330 forms a heterodimeric association with a 44-kDa polypeptide that is stable to detergent extraction and long-term centrifugation. Further, immunoblotting analysis on the purified complex indicates that the 44-kDa associated protein shares immunological identity to C14p and alpha 2-MRAP. In addition, antibodies eluted from glomeruli of HN rats and antibodies to a C14 fusion protein immunoprecipitated gp330 and the 44-kDa protein, demonstrating that the epitopes responsible for the initial events of HN are accessible within the complex. Based on these data, three models are proposed to explain how pathogenic epitopes in the gp330-44-kDa, HN antigenic complex may be presented at the cell surface and initiate the onset of HN.

Animals↗

gp330 and RAP: the Heymann nephritis antigenic complex.

It is apparent that significant progress has been made in the characterization of gp330 in the years that have elapsed since its initial identification as the nephritogenic antigen of Heymann nephritis. However, there are still many gaps in our knowledge and we do not yet have a full picture of the molecular events leading to the formation of immune deposits in glomerular capillaries. Moreover, we still do not have direct information on the normal function(s) of gp330 and RAP and their trafficking in renal and other epithelia. The availability of the yolk sac and other cell lines that express gp330 and RAP together with the identification of the functional domains of RAP should greatly facilitate experimental studies designed to elucidate these problems. Progress will also be greatly facilitated in the future when the complete amino-acid sequence of gp330 becomes available, making possible further structural studies. It is our hope that new knowledge obtained on the molecular mechanisms of HN will provide insights into the molecular pathogenesis of human membranous nephropathy and will provide a strategy for the design of appropriate treatments to interrupt the process.

Animals↗

Identification of a cell line that expresses a cell surface and a soluble form of the gp330/receptor-associated protein (RAP) Heymann nephritis antigenic complex.

gp330 is a large glycoprotein located in clathrin-coated pits at the surface of the glomerular and proximal tubule epithelia in the rat kidney. It was originally identified as the target of autoimmune antibodies in Heymann nephritis (HN) and has since been shown to be a member of the low density lipoprotein receptor gene family and to form a stable association with receptor-associated protein (RAP), which together constitute the HN antigen complex (HNAC). Progress in defining the normal functions of gp330 as well as the molecular mechanisms of HN has been hampered by the lack of an available kidney cell line that expresses this protein. We here report the identification of a rat yolk sac carcinoma cell line (L2) that synthesizes HNAC and expresses it in coated pits at the cell surface. gp330 and RAP from L2 cells are immunologically identical to their kidney counterparts, and peptide maps of gp330 yielded identical peptide fragments. Characterization of the cell line revealed that there are 3.3 x 10(4) gp330 molecules per L2 cell and that the cells produce a soluble form of gp330 that is released into the medium. Heparin ligand blot analysis demonstrated that RAP but not gp330 binds heparin. By heparin affinity chromatography, gp330 and RAP copurify, indicating that the glycosaminoglycan binding site within RAP is accessible when the subunit is complexed with gp330. These results indicate that the L2 cell line provides a valid and useful model for studies on the function of HNAC and the pathogenesis of HN.

Animals↗

Antibodies to glycolipids activate complement and promote proteinuria in passive Heymann nephritis.

Passive Heymann nephritis is an experimental rat model of human membranous nephropathy induced by injection of antisera against crude renal cortical fractions such as Fx1A or rat tubular microvilli. This results in the formation of subepithelial immune deposits, the activation of the C5b-9 membrane attack complex of complement, and severe proteinuria. While the formation of immune deposits is attributed to in situ immune complex formation with antibodies specific for the gp330-Heymann nephritis antigenic complex (HNAC), activation of complement and proteinuria appear to be caused by at least one additional antibody species present in anti-Fx1A sera. We have separated by affinity absorption polyspecific antisera against Fx1A and rat microvilli into one IgG fraction directed specifically against microvillar proteins (anti-Fx1A-prot) and another IgG fraction specific for glycolipids (ant-Fx1A-lip) of tubular microvilli. When injected into rats, the anti-Fx1A-prot fraction induced immune deposits but failed to activate complement or produce proteinuria, similar to results obtained with affinity-purified anti-gp330 IgG. When the antibodies of the anti-Fx1A-lip fraction were injected alone they did not bind to glomeruli. By contrast, when the IgGs specific for the Fx1A-prot fraction (or for gp330-HNAC) were combined with those directed against the Fx1A-lip glycolipid preparation, immune deposits were formed, in situ complement activation was observed, and also proteinuria was induced. It is concluded that within anti-Fx1A and anti-microvillar sera there are at least two IgG fractions of relevance for the development of PHN: one directed against the gp330-HNAC complex which is responsible for the development of immune deposits, and a second specific for glycolipid antigen(s) which activate(s) the complement cascade.

Animals↗

Identification of a pathogenic epitope involved in initiation of Heymann nephritis.

Heymann nephritis is an experimental autoimmune disease model for human membranous nephropathy. We have recently identified a pathogenic epitope, clone 14 (C14), responsible for formation and deposition of glomerular immune complexes that is contained within the small subunit of the Heymann nephritis antigenic complex (HNAC). HNAC is a heterodimer composed of a large subunit designated gp330 and a smaller (44 kDa) subunit, which is immunologically identical to the receptor-associated protein. In this study, we prepared antibodies to fusion proteins with C-terminal deletions in the C14 sequence and assessed their ability to promote formation of immune deposits (IDs). When IgG specific for the shortest truncated fusion protein (C14/delta 3; 86 amino acids) was injected into rats, small IDs developed. In contrast, when IgG raised against the full-length C14 sequence was depleted of its reactivity toward the C14/delta 3 fusion protein (C14/delta 3-fp), no IDs could be detected. These data indicate that at least one pathogenic epitope is contained within the N-terminal 86 amino acids of C14. Since the IDs induced with the C14/delta 3-fp-specific IgG are smaller than those induced with the poly-epitope-specific anti-gp330 antibodies, it is likely that other epitopes in addition to those expressed by the C14/delta 3-fp are required for formation and growth of immune complexes.

Animals↗

Megalin (gp330) possesses an antigenic epitope capable of inducing passive Heymann nephritis independent of the nephritogenic epitope in receptor-associated protein.

The Heymann nephritis antigenic complex (HNAC) consists of two glycoproteins, megalin (gp330), and the receptor-associated protein (RAP). HNAC is expressed on the surface of the glomerular epithelium where it plays a primary role in the pathogenesis of Heymann nephritis (HN). Several models were previously proposed describing how antibody binding epitopes in HNAC may contribute to the initiation and progression of HN. Although these models suggest that nephritogenic epitopes capable of initiating HN are present in both megalin and RAP, the structural relationship between these epitopes has not been established. Previously a nephritogenic epitope was identified and characterized in RAP that initiates immune complex formation in HN. In this report, the immunologic relationship between nephritogenic epitopes in megalin and RAP were examined to determine whether these epitopes are immunologically distinct or antigenically related. To this end, a polyclonal antibody to megalin was generated that does not recognize RAP by immunoblotting or immunoprecipitation and whether this antibody is capable of inducing passive HN was determined. It was found that antimegalin antibodies devoid of RAP cross-reactivity induced the formation of subepithelial immune deposits (passive HN) when injected into rats. Antibodies eluted from glomeruli of the injected rats recognized only megalin by immunoblotting a cortical extract and did not recognize a RAP fusion protein or any other renal protein. In addition, the eluted antibodies immunoprecipitated two proteolytic fragments of megalin (140 and 75 kd) identifying a pathogenic epitope within a smaller fragment of megalin.(ABSTRACT TRUNCATED AT 250 WORDS)

Animals↗

Circulatory antigen of Heymann nephritis. III. Presence of the 70-kD circulatory protein in the immune deposits of Heymann nephritis.

An antigen of 70 kD size has been isolated previously from normal rat serum which has immunological cross-reactivity to the Heymann nephritis antigen, F x 1A. Its role in the pathogenesis of Heymann's nephritis was unknown. In this investigation we tested for the presence of 70-kD circulatory antigen in the glomerular immune deposits of Heymann's nephritis. Further, its presence was correlated with severity of disease. It was observed that the presence of the 70-kD antigen strongly correlated with the existence of electron-dense deposits in the lamina rara externa (LRE) of the glomerular capillary wall and with pathologic proteinuria. Temporally, the presence of the 70-kD antigen in the immune deposits was followed by large electron-dense deposits, enhanced complement activity and proteinuria. The data suggest that in the growing immune complex lattice in the LRE, the 70-kD circulatory antigen by virtue of its small size, mobility and antigen cross-reactivity facilitates cross linking and coalescence of immune complexes, resulting in electron-dense immune deposits (EDD) formation which initiates complement activation and consequent proteinuria.

Animals↗

C5b-9 increases albumin permeability of isolated glomeruli in vitro.

Deposition of antibody and activation of the complement cascade are important in both naturally occurring glomerulonephritis and in experimental models including passive Heymann nephritis. We studied the effect of antibody and complement on albumin permeability of isolated glomeruli to determine the role of the terminal complement components (C5-C9) in mediating the proteinuria in nephritis. Isolated glomeruli were treated with anti-Fx1a (Heymann antibody) and then incubated them with pooled human serum, serum in which complement had been inactivated by heat, or serum deficient in C6 or C7. The albumin reflection coefficient (sigma albumin) was calculated from the volumetric response of glomeruli to transcapillary oncotic gradients produced by albumin or high molecular weight neutral dextran (252 kD). Convectional permeability to albumin (Palbumin) was calculated as 1-sigma albumin. Albumin permeability of control glomeruli was not different from 0. Albumin permeability was not altered by antibody alone but was increased to 0.65 +/- 0.04 when antibody treated glomeruli were incubated for 10 minutes with pooled serum as a source of complement. Heat treatment of serum to inactivate complement prevented the increase in permeability. Incubation for 10 minutes with serum without antibody pretreatment caused a lesser increase in permeability of isolated glomeruli (0.18 +/- 0.06). Serum deficient in either C6 or C7 did not cause an increase in albumin permeability of antibody pre-treated glomeruli, but incubation with a combination of these sera (now containing the complete cascade) increased permeability to the same extent as did pooled normal serum (0.58 +/- 0.04).(ABSTRACT TRUNCATED AT 250 WORDS)

Animals↗

Initial events in the formation of immune deposits in passive Heymann nephritis. gp330-anti-gp330 immune complexes form in epithelial coated pits and rapidly become attached to the glomerular basement membrane.

The nephritogenic antigen of Heymann's nephritis (HN), gp330, was previously demonstrated (4-9) to be a resident glycoprotein of coated pits in the glomerular and proximal tubule epithelium of rats, and anti-gp330 IgG given intravenously was found to form IDs in glomeruli (passive HN). The purpose of this study was to investigate the detailed events that occur in the formation of IDs in passive HN. HN was induced by the injection of either 125I-labeled or unlabeled anti-gp330 IgG. At various times after injection (15 min to 8 d) the kidneys of some of the injected rats were fixed by perfusion, and the distribution of the rabbit IgG was determined by immunofluorescence and by immunoelectron microscopy. Glomeruli were isolated from the kidneys of injected rats and used for isolation of GBM fractions or for elution of the bound IgG. At 15 min to 1 h after injection, the rabbit IgG was localized by immunocytochemistry exclusively in coated pits along the podocyte plasmalemma facing the GBM. By 1-8 d, anti-gp330 IgG was detected in larger electron-dense IDs often located under the slit diaphragms. Serial sectioning revealed that each of the IDs maintained contact with a coated pit at some level. When GBMs isolated from rats given radiolabeled anti-gp330 IgG were examined by electron microscopy, the IDs were found to remain attached to the GBMs as early as 15 min after injection and coisolated with them at all time points. By double-immunolabeling of the isolated GBMs with two sizes of gold particles, both the antigen (gp330) and the anti-gp330 IgG could be demonstrated in IDs at all time points. When the amount of radiolabeled anti-gp330 bound to GBM fractions was compared with that of isolated glomeruli, it was found that 20% of the radiolabel remained bound to the purified GBMs at 15 min after injection, and 90% at 3 d. The bound IgG was released only by treatments that disrupt antibody-antigen complexes (high and low pH), but not by the other treatments we tried (detergent, high salt, heparinase, or collagenase digestion). When the IgG bound to glomeruli was eluted with acid citrate buffer 3 d after injection, it was found to specifically immunoprecipitate only gp330 from detergent-solubilized 125I-labeled kidney microvillar vesicles. By isoelectric focusing the eluate was found to be enriched in IgGs with acidic isoelectric points.(ABSTRACT TRUNCATED AT 400 WORDS)

Animals↗

A major pathogenic antigen of Heymann nephritis is present exclusively in the renal proximal tubule brush border--studies with a monoclonal antibody against pronase-digested tubular antigen.

We have isolated a nephritogenic 120-kD antigen from rat renal tubule brush border that induces rat Heymann nephritis. A MoAb that recognized this antigen reacted exclusively with the brush border on indirect immunofluorescence and immunoelectron microscopy. Rabbit antiserum against this antigen also reacted exclusively with the brush border. With the injection of this antiserum, rabbit IgG became detectable along the glomerular basement membrane (GBM) after 3 days. Our 120-kD antigen was shown to have a close relationship with gp330 based on the following: (i) this antigen can induce active Heymann nephritis as gp330; (ii) our MoAb reacted with the immune deposits of nephritic kidneys induced not only by the 120-kD antigen but also by gp330, and conversely, rabbit antiserum against gp330 reacted with those induced by the 120-kD antigen as well as gp330; and (iii) by immunoblotting, polyclonal antibodies against the 120-kD antigen reacted with gp330 and polyclonal antibodies against gp330 reacted with the 120-kD antigen. These observations indicate that antigen present exclusively in the brush border can induce active Heymann nephritis, and the common antigenic determinants shared by brush border and the coated pits of glomerular epithelium may not be a prerequisite to induce nephritis. A more precise relationship between the 120-kD antigen and reported C14 fusion protein or 40-kD alpha 2MRAP remains to be established.

Animals↗

Induction of Heymann nephritis with a gp330/megalin fusion protein.

There is considerable evidence that glomerular deposits in Heymann nephritis, a rat model of membranous nephritis, result from shedding of immune complexes formed on podocytes and that the principal antigen is part of the extracellular domain of a cell surface glycoprotein receptor called gp330 or megalin. It has also been reported that the immunogen that induces Heymann nephritis is a complex formed between gp330 and the receptor-associated protein RAP. The recent elucidation of the primary structure of gp330 makes it possible to investigate the ability of defined portions of gp330, devoid of RAP, to induce Heymann nephritis. In the present study we show that a gp330-glutathione-S-transferase fusion protein, containing 137 amino acid residues (1114 to 1250) of the ectodomain, induces active Heymann nephritis and that heterologous antibodies against this fusion protein produce passive Heymann nephritis. By immunofluorescence, typical glomerular immunoglobulin deposits were found, but complement components were lacking and the rats did not develop proteinuria. In the active model, we obtained evidence indicating that the deposits contained portions of the ectodomain of gp330, including regions other than those of the fusion protein. Thus, the deposits were stained by polyclonal antibodies to gp330 and to the gp330 fusion protein, as well as by two monoclonal antibodies reactive with portions of the ectodomain of gp330, only one of which reacted with the fusion protein in vitro. Antibodies against the cytoplasmic domain of gp330 did not stain. Furthermore, we found that RAP was able to bind to gp330 in the glomerular deposits but not to the gp330 fusion protein in vitro. The results show that the region of gp330 spanning amino acid residues 1114 to 1250 contains peptides capable of inducing pathogenic antibodies of Heymann nephritis without a contributory role of RAP.

Amino Acids↗

The immunopathogenesis of membranous nephropathy.

Membranous nephropathy is an important disease: it is one of the leading primary causes of the nephrotic syndrome in adults, and, in up to a third of patients, causes progressive renal impairment resulting in end stage renal failure. Ever since histological techniques demonstrated the presence of glomerular immunoglobulin deposits in this disease the immune system has been implicated in pathogenesis. Initial ideas focussed on the deposition of circulating immune complexes, but the development of an animal model (Heymann nephritis) suggested the alternative mechanism of antibody reacting with an intrinsic glomerular antigen. However, attempts to find evidence for this Heymann type mechanism in the human disease have, in general, been unsuccessful. This article briefly reviews the development of ideas about the pathogenesis of membranous nephropathy, and proposes the hypothesis that the disease is caused by formation of low affinity non-complement fixing IgG4-containing immune complexes.

Animals↗

Analysis of the Heymann nephritogenic glycoprotein in rat, mouse, and human kidney.

Passive Heymann nephritis is induced in rats by intravenous administration of antiserum raised against antigens of the renal proximal tubule. Evidence by Kerjaschki and Farquhar indicates that the critical nephritogenic is a high molecular weight glycoprotein (HMWgp) of rat renal brush border membrane. Their immunocytochemical studies also localize the nephritogenic antigen to the glomerular epithelial cell surface and may explain in situ formation of immune complexes at this locus in Heymann nephritis. We have confirmed the observations of Kerjaschki and Farquhar by demonstrating the HMWgp in extracts of rat brush border membrane and isolated glomeruli on sodium dodecyl sulfate-polyacrylamide (SDS-PA) (5%) gels. An antiserum raised to purified rat HMWgp identifies the antigen from rat or mouse kidney on Western blots. However, unlike rodent kidney, we were unable to detect a comparable HMWgp in extracts of human kidney on SDS-PA gels and found no cross-reactive material on Western blots of human brush border membrane proteins. Our observations suggest that human kidney lacks the nephritogenic antigen critical to initiation of Heymann nephritis in rodents.

Animals↗