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2.
JCI Insight ; 9(6)2024 02 22.
Article in English | MEDLINE | ID: mdl-38516886

ABSTRACT

Kidney tubules use fatty acid oxidation (FAO) to support their high energetic requirements. Carnitine palmitoyltransferase 1A (CPT1A) is the rate-limiting enzyme for FAO, and it is necessary to transport long-chain fatty acids into mitochondria. To define the role of tubular CPT1A in aging and injury, we generated mice with tubule-specific deletion of Cpt1a (Cpt1aCKO mice), and the mice were either aged for 2 years or injured by aristolochic acid or unilateral ureteral obstruction. Surprisingly, Cpt1aCKO mice had no significant differences in kidney function or fibrosis compared with wild-type mice after aging or chronic injury. Primary tubule cells from aged Cpt1aCKO mice had a modest decrease in palmitate oxidation but retained the ability to metabolize long-chain fatty acids. Very-long-chain fatty acids, exclusively oxidized by peroxisomes, were reduced in kidneys lacking tubular CPT1A, consistent with increased peroxisomal activity. Single-nuclear RNA-Seq showed significantly increased expression of peroxisomal FAO enzymes in proximal tubules of mice lacking tubular CPT1A. These data suggest that peroxisomal FAO may compensate in the absence of CPT1A, and future genetic studies are needed to confirm the role of peroxisomal ß-oxidation when mitochondrial FAO is impaired.


Subject(s)
Carnitine O-Palmitoyltransferase , Kidney , Animals , Mice , Aging/genetics , Carnitine O-Palmitoyltransferase/genetics , Carnitine O-Palmitoyltransferase/metabolism , Fatty Acids/metabolism , Kidney/metabolism , Kidney/pathology , Kidney Tubules/metabolism
3.
Matrix Biol ; 125: 1-11, 2024 Jan.
Article in English | MEDLINE | ID: mdl-38000777

ABSTRACT

Basement membranes are thin strong sheets of extracellular matrix. They provide mechanical and biochemical support to epithelia, muscles, nerves, and blood vessels, among other tissues. The mechanical properties of basement membranes are conferred in part by Collagen IV (Col4), an abundant protein of basement membranes that forms an extensive two-dimensional network through head-to-head and tail-to-tail interactions. After the Col4 network is assembled into a basement membrane, it is crosslinked by the matrix-resident enzyme Peroxidasin to form a large covalent polymer. Peroxidasin and Col4 crosslinking are highly conserved throughout the animal kingdom, indicating they are important, but homozygous mutant mice have mild phenotypes. To explore the role of Peroxidasin, we analyzed mutants in Drosophila, including a new CRISPR-generated catalytic null, and found that homozygotes were mostly lethal with 13 % viable escapers. Mouse mutants also show semi-lethality, with Mendelian analysis demonstrating ∼50 % lethality and ∼50 % escapers. Despite the strong mutations, the homozygous fly and mouse escapers had low but detectable levels of Col4 crosslinking, indicating the existence of inefficient alternative crosslinking mechanisms, probably responsible for the viable escapers. Fly mutant phenotypes are consistent with decreased basement membrane stiffness. Interestingly, we found that even after basement membranes are assembled and crosslinked in wild-type animals, continuing Peroxidasin activity is required in adults to maintain tissue stiffness over time. These results suggest that Peroxidasin crosslinking may be more important than previously appreciated.


Subject(s)
Peroxidase , Peroxidasin , Animals , Mice , Basement Membrane/metabolism , Collagen Type IV/metabolism , Drosophila/metabolism , Extracellular Matrix/genetics , Extracellular Matrix/metabolism , Extracellular Matrix Proteins/metabolism , Peroxidase/genetics
4.
Biochem Biophys Res Commun ; 689: 149237, 2023 12 31.
Article in English | MEDLINE | ID: mdl-37984175

ABSTRACT

Diabetic complications present a serious health problem. Functional damage to proteins due to post-translational modifications by glycoxidation reactions is a known factor contributing to pathology. Extracellular proteins are especially vulnerable to diabetic damage because robust antioxidant defenses are lacking outside the cell. We investigated glucose-induced inactivation of peroxidasin (PXDN), a heme protein catalyzing sulfilimine crosslinking of collagen IV that reinforce the basement membranes (BM). Experiments using physiological diabetic glucose levels were carried out to exclude several potential mechanisms of PXDN inactivation i.e., direct adduction of glucose, reactive carbonyl damage, steric hindrance, and osmotic stress. Further experiments established that PXDN activity was inhibited via heme degradation by reactive oxygen species. Activity of another extracellular heme protein, myeloperoxidase, was unaffected by glucose because its heme was resistant to glucose-induced oxidative degradation. Our findings point to specific mechanisms which may compromise BM structure and stability in diabetes and suggest potential modes of protection.


Subject(s)
Diabetes Mellitus , Hemeproteins , Hyperglycemia , Humans , Peroxidase/metabolism , Reactive Oxygen Species , Heme , Extracellular Matrix Proteins/metabolism , Glucose , Peroxidasin
5.
Biochem Biophys Res Commun ; 681: 152-156, 2023 Nov 12.
Article in English | MEDLINE | ID: mdl-37776746

ABSTRACT

Peroxidasin (PXDN) is an extracellular peroxidase, which generates hypobromous acid to form sulfilimine cross-links within collagen IV networks. We have previously demonstrated that mouse and human renal basement membranes (BM) are enriched in bromine due to PXDN-dependent post-translational bromination of protein tyrosine residues. The goal of the present study was identification of specific brominated sites within renal BM. A comprehensive analysis of brominated proteome of mouse glomerular matrix had been performed using liquid chromatography-tandem mass spectrometry. We found that out of over 200 identified proteins, only three were detectably brominated, each containing a single distinct brominated tyrosine site i.e., Tyr-1485 in collagen IV α2 chain, Tyr-292 in TINAGL1 and Tyr-664 in nidogen-2. To explain this highly selective bromination, we proposed that these proteins interact with PXDN within the glomerular matrix. Experiments using purified proteins demonstrated that both TINAGL1 and nidogen-2 can compete with PXDN for binding to collagen IV and that TINAGL1 can directly interact with PXDN. We propose that a protein complex, including PXDN, TINAGL1, nidogen-2 and collagen IV, may exist in renal BM.

6.
bioRxiv ; 2023 Jul 19.
Article in English | MEDLINE | ID: mdl-37503104

ABSTRACT

Basement membranes are thin strong sheets of extracellular matrix. They provide mechanical and biochemical support to epithelia, muscles, nerves, and blood vessels, among other tissues. The mechanical properties of basement membranes are conferred in part by Collagen IV (Col4), an abundant protein of basement membrane that forms an extensive two-dimensional network through head-to-head and tail-to-tail interactions. After the Col4 network is assembled into a basement membrane, it is crosslinked by the matrix-resident enzyme Peroxidasin to form a large covalent polymer. Peroxidasin and Col4 crosslinking are highly conserved, indicating they are essential, but homozygous mutant mice have mild phenotypes. To explore the role of Peroxidasin, we analyzed mutants in Drosophila, including a newly generated catalytic null, and found that homozygotes were mostly lethal with 13% viable escapers. A Mendelian analysis of mouse mutants shows a similar pattern, with homozygotes displaying ~50% lethality and ~50% escapers. Despite the strong mutations, the homozygous escapers had low but detectable levels of Col4 crosslinking, indicating that inefficient alternative mechanisms exist and that are probably responsible for the viable escapers. Further, fly mutants have phenotypes consistent with a decrease in stiffness. Interestingly, we found that even after adult basement membranes are assembled and crosslinked, Peroxidasin is still required to maintain stiffness. These results suggest that Peroxidasin crosslinking may be more important than previously appreciated.

7.
Cell Mol Gastroenterol Hepatol ; 13(5): 1483-1509, 2022.
Article in English | MEDLINE | ID: mdl-35093588

ABSTRACT

BACKGROUND & AIMS: During liver fibrosis, tissue repair mechanisms replace necrotic tissue with highly stabilized extracellular matrix proteins. Extracellular matrix stabilization influences the speed of tissue recovery. Here, we studied the expression and function of peroxidasin (PXDN), a peroxidase that uses hydrogen peroxide to cross-link collagen IV during liver fibrosis progression and regression. METHODS: Mouse models of liver fibrosis and cirrhosis patients were analyzed for the expression of PXDN in liver and serum. Pxdn-/- and Pxdn+/+ mice were either treated with carbon tetrachloride for 6 weeks to generate toxin-induced fibrosis or fed with a choline-deficient L-amino acid-defined high-fat diet for 16 weeks to create nonalcoholic fatty liver disease fibrosis. Liver histology, quantitative real-time polymerase chain reaction, collagen content, flowcytometry and immunostaining of immune cells, RNA-sequencing, and liver function tests were analyzed. In vivo imaging of liver reactive oxygen species (ROS) was performed using a redox-active iron complex, Fe-PyC3A. RESULTS: In human and mouse cirrhotic tissue, PXDN is expressed by stellate cells and is secreted into fibrotic areas. In patients with nonalcoholic fatty liver disease, serum levels of PXDN increased significantly. In both mouse models of liver fibrosis, PXDN deficiency resulted in elevated monocyte and pro-fibrolysis macrophage recruitment into fibrotic bands and caused decreased accumulation of cross-linked collagens. In Pxdn-/- mice, collagen fibers were loosely organized, an atypical phenotype that is reversible upon macrophage depletion. Elevated ROS in Pxdn-/- livers was observed, which can result in activation of hypoxic signaling cascades and may affect signaling pathways involved in macrophage polarization such as TNF-a via NF-kB. Fibrosis resolution in Pxdn-/- mice was associated with significant decrease in collagen content and improved liver function. CONCLUSION: PXDN deficiency is associated with increased ROS levels and a hypoxic liver microenvironment that can regulate recruitment and programming of pro-resolution macrophages. Our data implicate the importance of the liver microenvironment in macrophage programming during liver fibrosis and suggest a novel pathway that is involved in the resolution of scar tissue.


Subject(s)
Non-alcoholic Fatty Liver Disease , Peroxidases , Animals , Collagen/metabolism , Extracellular Matrix Proteins/metabolism , Fibrosis , Humans , Liver Cirrhosis/pathology , Macrophages/metabolism , Mice , Non-alcoholic Fatty Liver Disease/pathology , Peroxidases/genetics , Reactive Oxygen Species/metabolism
8.
Proc Natl Acad Sci U S A ; 117(27): 15827-15836, 2020 07 07.
Article in English | MEDLINE | ID: mdl-32571911

ABSTRACT

Bromine and peroxidasin (an extracellular peroxidase) are essential for generating sulfilimine cross-links between a methionine and a hydroxylysine within collagen IV, a basement membrane protein. The sulfilimine cross-links increase the structural integrity of basement membranes. The formation of sulfilimine cross-links depends on the ability of peroxidasin to use bromide and hydrogen peroxide substrates to produce hypobromous acid (HOBr). Once a sulfilimine cross-link is created, bromide is released into the extracellular space and becomes available for reutilization. Whether the HOBr generated by peroxidasin is used very selectively for creating sulfilimine cross-links or whether it also causes oxidative damage to bystander molecules (e.g., generating bromotyrosine residues in basement membrane proteins) is unclear. To examine this issue, we used nanoscale secondary ion mass spectrometry (NanoSIMS) imaging to define the distribution of bromine in mammalian tissues. We observed striking enrichment of bromine (79Br, 81Br) in basement membranes of normal human and mouse kidneys. In peroxidasin knockout mice, bromine enrichment of basement membranes of kidneys was reduced by ∼85%. Proteomic studies revealed bromination of tyrosine-1485 in the NC1 domain of α2 collagen IV from kidneys of wild-type mice; the same tyrosine was brominated in collagen IV from human kidney. Bromination of tyrosine-1485 was reduced by >90% in kidneys of peroxidasin knockout mice. Thus, in addition to promoting sulfilimine cross-links in collagen IV, peroxidasin can also brominate a bystander tyrosine. Also, the fact that bromine enrichment is largely confined to basement membranes implies that peroxidasin activity is largely restricted to basement membranes in mammalian tissues.


Subject(s)
Basement Membrane/metabolism , Bromine/metabolism , Extracellular Matrix Proteins/metabolism , Peroxidase/metabolism , Animals , Biopsy , Bromates/metabolism , Bromides , Cells, Cultured , Collagen Type IV/metabolism , Humans , Hydrogen Peroxide/metabolism , Imines/metabolism , Kidney/cytology , Mice , Mice, Inbred C57BL , Mice, Knockout , Proteomics , Peroxidasin
10.
Am J Physiol Renal Physiol ; 316(2): F360-F371, 2019 02 01.
Article in English | MEDLINE | ID: mdl-30565999

ABSTRACT

Renal fibrosis is the pathological hallmark of chronic kidney disease (CKD) and manifests as glomerulosclerosis and tubulointerstitial fibrosis. Reactive oxygen species contribute significantly to renal inflammation and fibrosis, but most research has focused on superoxide and hydrogen peroxide (H2O2). The animal heme peroxidases myeloperoxidase (MPO), eosinophil peroxidase (EPX), and peroxidasin (PXDN) uniquely metabolize H2O2 into highly reactive and destructive hypohalous acids, such as hypobromous and hypochlorous acid. However, the role of these peroxidases and their downstream hypohalous acids in the pathogenesis of renal fibrosis is unclear. Our study defines the contribution of MPO, EPX, and PXDN to renal inflammation and tubulointerstitial fibrosis in the murine unilateral ureteral obstruction (UUO) model. Using a nonspecific inhibitor of animal heme peroxidases and peroxidase-specific knockout mice, we find that loss of EPX or PXDN, but not MPO, reduces renal fibrosis. Furthermore, we demonstrate that eosinophils, the source of EPX, accumulate in the renal interstitium after UUO. These findings point to EPX and PXDN as potential therapeutic targets for renal fibrosis and CKD and suggest that eosinophils modulate the response to renal injury.


Subject(s)
Eosinophil Peroxidase/metabolism , Eosinophils/enzymology , Extracellular Matrix Proteins/metabolism , Kidney/enzymology , Nephritis, Interstitial/enzymology , Peroxidase/metabolism , Peroxidases/metabolism , Ureteral Obstruction/enzymology , Animals , Cell Movement , Disease Models, Animal , Eosinophil Peroxidase/deficiency , Eosinophil Peroxidase/genetics , Eosinophils/pathology , Extracellular Matrix Proteins/deficiency , Extracellular Matrix Proteins/genetics , Female , Fibrosis , Kidney/pathology , Male , Mice, Inbred C57BL , Mice, Knockout , Nephritis, Interstitial/etiology , Nephritis, Interstitial/pathology , Nephritis, Interstitial/prevention & control , Peroxidase/deficiency , Peroxidase/genetics , Peroxidases/deficiency , Peroxidases/genetics , Reactive Oxygen Species/metabolism , Signal Transduction , Ureteral Obstruction/complications , Ureteral Obstruction/pathology , Peroxidasin
11.
Antioxid Redox Signal ; 27(12): 839-854, 2017 Oct 20.
Article in English | MEDLINE | ID: mdl-28657332

ABSTRACT

SIGNIFICANCE: Basement membranes (BMs) are sheet-like structures of specialized extracellular matrix that underlie nearly all tissue cell layers including epithelial, endothelial, and muscle cells. BMs not only provide structural support but are also critical for the development, maintenance, and repair of organs. Animal heme peroxidases generate highly reactive hypohalous acids extracellularly and, therefore, target BMs for oxidative modification. Given the importance of BMs in tissue structure and function, hypohalous acid-mediated oxidative modifications of BM proteins represent a key mechanism in normal development and pathogenesis of disease. Recent Advances: Peroxidasin (PXDN), a BM-associated animal heme peroxidase, generates hypobromous acid (HOBr) to form sulfilimine cross-links within the collagen IV network of BM. These cross-links stabilize BM and are critical for animal tissue development. These findings highlight a paradoxical anabolic role for HOBr, which typically damages protein structure leading to dysfunction. CRITICAL ISSUES: The molecular mechanism whereby PXDN uses HOBr as a reactive intermediate to cross-link collagen IV, yet avoid collateral damage to nearby BM proteins, remains unclear. FUTURE DIRECTIONS: The exact identification and functional impact of specific hypohalous acid-mediated modifications of BM proteins need to be addressed to connect these modifications to tissue development and pathogenesis of disease. As seen with the sulfilimine cross-link of collagen IV, hypohalous acid oxidative events may be beneficial in select situations rather than uniformly deleterious. Antioxid. Redox Signal. 27, 839-854.


Subject(s)
Basement Membrane/metabolism , Bromates/metabolism , Extracellular Matrix Proteins/metabolism , Peroxidase/metabolism , Animals , Collagen Type IV/metabolism , Homeostasis , Oxidative Stress , Peroxidasin
12.
Am J Physiol Renal Physiol ; 313(3): F596-F602, 2017 09 01.
Article in English | MEDLINE | ID: mdl-28424209

ABSTRACT

Basement membranes (BMs), a specialized form of extracellular matrix, underlie nearly all cell layers and provide structural support for tissues and interact with cell surface receptors to determine cell behavior. Both macromolecular composition and stiffness of the BM influence cell-BM interactions. Collagen IV is a major constituent of the BM that forms an extensively cross-linked oligomeric network. Its deficiency leads to BM mechanical instability, as observed with glomerular BM in Alport syndrome. These findings have led to the hypothesis that collagen IV and its cross-links determine BM stiffness. A sulfilimine bond (S = N) between a methionine sulfur and a lysine nitrogen cross-links collagen IV and is formed by the matrix enzyme peroxidasin. In peroxidasin knockout mice with reduced collagen IV sulfilimine cross-links, we find a reduction in renal tubular BM stiffness. Thus this work provides the first direct experimental evidence that collagen IV sulfilimine cross-links contribute to BM mechanical properties and provides a foundation for future work on the relationship of BM mechanics to cell function in renal disease.


Subject(s)
Basement Membrane/metabolism , Collagen Type IV/metabolism , Cross-Linking Reagents/metabolism , Imines/metabolism , Kidney/metabolism , Animals , Basement Membrane/pathology , Biomechanical Phenomena , Collagen Type IV/chemistry , Cross-Linking Reagents/chemistry , Elastic Modulus , Extracellular Matrix Proteins/deficiency , Extracellular Matrix Proteins/genetics , Genotype , Imines/chemistry , Kidney/pathology , Mice, Inbred C57BL , Mice, Knockout , Peroxidase/deficiency , Peroxidase/genetics , Phenotype , Protein Conformation , Tensile Strength , Peroxidasin
13.
J Biol Chem ; 291(46): 24009-24016, 2016 Nov 11.
Article in English | MEDLINE | ID: mdl-27697841

ABSTRACT

The basement membrane (BM) is a form of extracellular matrix that underlies cell layers in nearly all animal tissues. Type IV collagen, a major constituent of BMs, is critical for tissue development and architecture. The enzyme peroxidasin (Pxdn), an extracellular matrix-associated protein, catalyzes the formation of structurally reinforcing sulfilimine cross-links within the collagen IV network, an event essential to basement membrane integrity. Although the catalytic function of Pxdn is known, the regulation of its activity remains unclear. In this work we show through N-terminal sequencing, pharmacologic studies, and mutational analysis that proprotein convertases (PCs) proteolytically process human Pxdn at Arg-1336, a location relatively close to its C terminus. PC processing enhances the enzymatic activity of Pxdn and facilitates the formation of sulfilimine cross-links in collagen IV. Thus, PC processing of Pxdn is a key regulatory step that contributes to its function and, therefore, supports BM integrity and homeostasis.


Subject(s)
Basement Membrane/metabolism , Collagen Type IV/metabolism , Extracellular Matrix Proteins/metabolism , Peroxidase/metabolism , Proprotein Convertases/metabolism , Collagen Type IV/genetics , Extracellular Matrix Proteins/genetics , HEK293 Cells , Humans , Peroxidase/genetics , Proprotein Convertases/genetics , Protein Domains , Peroxidasin
14.
J Cell Biol ; 213(4): 479-94, 2016 05 23.
Article in English | MEDLINE | ID: mdl-27216258

ABSTRACT

Basement membranes are defining features of the cellular microenvironment; however, little is known regarding their assembly outside cells. We report that extracellular Cl(-) ions signal the assembly of collagen IV networks outside cells by triggering a conformational switch within collagen IV noncollagenous 1 (NC1) domains. Depletion of Cl(-) in cell culture perturbed collagen IV networks, disrupted matrix architecture, and repositioned basement membrane proteins. Phylogenetic evidence indicates this conformational switch is a fundamental mechanism of collagen IV network assembly throughout Metazoa. Using recombinant triple helical protomers, we prove that NC1 domains direct both protomer and network assembly and show in Drosophila that NC1 architecture is critical for incorporation into basement membranes. These discoveries provide an atomic-level understanding of the dynamic interactions between extracellular Cl(-) and collagen IV assembly outside cells, a critical step in the assembly and organization of basement membranes that enable tissue architecture and function. Moreover, this provides a mechanistic framework for understanding the molecular pathobiology of NC1 domains.


Subject(s)
Basement Membrane/metabolism , Basement Membrane/physiology , Chlorides/metabolism , Collagen Type IV/metabolism , Amino Acid Sequence , Animals , Cattle , Cell Line, Tumor , Collagen Type IV/genetics , Humans , Phylogeny , Protein Conformation , Protein Structure, Tertiary , Protein Subunits/genetics
15.
J Biol Chem ; 283(50): 35070-7, 2008 Dec 12.
Article in English | MEDLINE | ID: mdl-18930919

ABSTRACT

Defective assembly of alpha 3 alpha 4 alpha 5(IV) collagen in the glomerular basement membrane causes Alport syndrome, a hereditary glomerulonephritis progressing to end-stage kidney failure. Assembly of collagen IV chains into heterotrimeric molecules and networks is driven by their noncollagenous (NC1) domains, but the sites encoding the specificity of these interactions are not known. To identify the sites directing quaternary assembly of alpha 3 alpha 4 alpha 5(IV) collagen, correctly folded NC1 chimeras were produced, and their interactions with other NC1 monomers were evaluated. All alpha1/alpha 5 chimeras containing alpha 5 NC1 residues 188-227 replicated the ability of alpha 5 NC1 to bind to alpha3NC1 and co-assemble into NC1 hexamers. Conversely, substitution of alpha 5 NC1 residues 188-227 by alpha1NC1 abolished these quaternary interactions. The amino-terminal 58 residues of alpha3NC1 encoded binding to alpha 5 NC1, but this interaction was not sufficient for hexamer co-assembly. Because alpha 5 NC1 residues 188-227 are necessary and sufficient for assembly into alpha 3 alpha 4 alpha 5 NC1 hexamers, whereas the immunodominant alloantigenic sites of alpha 5 NC1 do not encode specific quaternary interactions, the findings provide a basis for the rational design of less immunogenic alpha 5(IV) collagen constructs for the gene therapy of X-linked Alport patients.


Subject(s)
Collagen Type IV/chemistry , Collagen Type IV/genetics , Genetic Therapy/methods , Nephritis, Hereditary/genetics , Amino Acid Sequence , Antigens/chemistry , Binding Sites , Humans , Models, Molecular , Molecular Sequence Data , Nephritis, Hereditary/therapy , Protein Binding , Protein Structure, Quaternary , Protein Structure, Tertiary , Recombinant Fusion Proteins/chemistry , Recombinant Proteins/chemistry , Sequence Homology, Amino Acid
16.
Am J Kidney Dis ; 52(4): 761-5, 2008 Oct.
Article in English | MEDLINE | ID: mdl-18752876

ABSTRACT

Anti-glomerular basement membrane (anti-GBM) disease is an aggressive form of glomerulonephritis, usually mediated by immunoglobulin G (IgG) autoantibodies to the noncollagenous (NC1) domain of alpha 3(IV) collagen. Less is known about the target antigen(s) in patients with atypical anti-GBM disease involving IgA autoantibodies. We report a new case of IgA anti-GBM disease in a patient with a history of proliferative lupus nephritis who presented with increasing creatinine levels, proteinuria, and hematuria, but no clinical or serological evidence of lupus recurrence. Renal biopsy showed focal and segmental necrotizing glomerulonephritis with strong linear capillary loop IgA staining by means of immunofluorescence. Serological test results were negative for IgG or IgA autoantibodies against the alpha 3NC1 domain. By means of immunoblotting, IgA from patient serum bound to 38- to 48-kd antigens collagenase-solubilized from human GBM, but not to purified NC1 domains of GBM collagen IV. The target of patient's IgA autoantibodies thus was identified as a novel GBM antigen, distinct from the alpha 3NC1 domain or other known targets of anti-GBM IgA autoantibodies. Clinical resolution was attained by means of conventional treatment with steroids and cyclophosphamide. The diversity of antigens recognized by anti-GBM IgA autoantibodies highlights the importance of renal biopsy for the reliable diagnosis of this rare condition because conventional serological immunoassays likely would yield false-negative results.


Subject(s)
Anti-Glomerular Basement Membrane Disease/diagnosis , Anti-Glomerular Basement Membrane Disease/immunology , Antigens/immunology , Autoantibodies/immunology , Immunoglobulin A/immunology , Kidney/immunology , Aged , Anti-Glomerular Basement Membrane Disease/pathology , Autoantibodies/blood , Biopsy , Collagen Type IV/immunology , Female , Humans , Immunoglobulin A/blood , Kidney/pathology , Lupus Nephritis/immunology , Lupus Nephritis/pathology
17.
J Am Soc Nephrol ; 16(12): 3563-71, 2005 Dec.
Article in English | MEDLINE | ID: mdl-16236801

ABSTRACT

Alport posttransplantation anti-glomerular basement membrane (GBM) nephritis is mediated by alloantibodies against the noncollagenous (NC1) domains of the alpha3alpha4alpha5(IV) collagen network, which is present in the GBM of the allograft but absent from Alport kidneys. The specificity of kidney-bound anti-GBM alloantibodies from a patient who had autosomal recessive Alport syndrome (ARAS) and developed posttransplantation nephritis was compared with that of Goodpasture autoantibodies from patients with autoimmune anti-GBM disease. Allograft-eluted alloantibodies reacted specifically with alpha3alpha4alpha5 NC1 hexamers, targeting their alpha3NC1 and alpha4NC1 subunits, and recognized a noncontiguous alloepitope formed jointly by the E(A) and E(B) regions of alpha3NC1 domain. In contrast, human Goodpasture autoantibodies recognized the separate E(A) and E(B) autoepitopes of alpha3NC1 but not the composite alloepitope. Molecular modeling of alpha3NC1 revealed that the alloepitope is more accessible within the NC1 hexamers than the partially sequestered Goodpasture autoepitopes. Overall, the specificity of alloantibodies indicated a selective lack of immune tolerance toward the alpha3 and alpha4(IV) collagen chains not expressed in patients with ARAS. Using COL4A3 knockout mice, a model of ARAS, it was shown further that acid-dissociated rather than native alpha3alpha4alpha5 NC1 hexamers elicited murine anti-GBM antibodies most closely resembling human ARAS alloantibodies. In contrast, alpha3NC1 monomers elicited Goodpasture-like murine antibodies, targeting the E(A) and E(B) autoepitopes. Thus, the identity of alpha3NC1 epitopes targeted by anti-GBM antibodies is strongly influenced by the molecular organization of the immunogen. These findings suggest that different isoforms of alpha3(IV) collagen may be implicated in the pathogenesis of ARAS posttransplantation anti-GBM nephritis and Goodpasture disease.


Subject(s)
Anti-Glomerular Basement Membrane Disease/diagnosis , Anti-Glomerular Basement Membrane Disease/immunology , Antibodies/immunology , Isoantibodies/immunology , Kidney Failure, Chronic/surgery , Kidney Transplantation/adverse effects , Adult , Autoantibodies , Biopsy, Needle , Collagen/immunology , Collagen Type IV/immunology , Disease Progression , Enzyme-Linked Immunosorbent Assay , Epitopes/immunology , Fatal Outcome , Female , Graft Rejection , Humans , Immunohistochemistry , Kidney Failure, Chronic/etiology , Kidney Failure, Chronic/pathology , Kidney Transplantation/immunology , Nephritis, Hereditary/complications , Nephritis, Hereditary/diagnosis , Risk Assessment , Transplantation Immunology/physiology
18.
J Biol Chem ; 280(29): 27147-54, 2005 Jul 22.
Article in English | MEDLINE | ID: mdl-15917228

ABSTRACT

Rapidly progressive glomerulonephritis in Goodpasture disease is mediated by autoantibodies binding to the non-collagenous NC1 domain of alpha3(IV) collagen in the glomerular basement membrane. Goodpasture epitopes in the native autoantigen are cryptic (sequestered) within the NC1 hexamers of the alpha3alpha4alpha5(IV) collagen network. The biochemical mechanism for crypticity and exposure for autoantibody binding is not known. We now report that crypticity is a feature of the quaternary structure of two distinct subsets of alpha3alpha4alpha5(IV) NC1 hexamers: autoantibody-reactive M-hexamers containing only monomer subunits and autoantibody-impenetrable D-hexamers composed of both dimer and monomer subunits. Goodpasture antibodies only breach the quaternary structure of M-hexamers, unmasking the cryptic epitopes, whereas D-hexamers are resistant to autoantibodies under native conditions. The epitopes of D-hexamers are structurally sequestered by dimer reinforcement of the quaternary complex, which represents a new molecular solution for conferring immunologic privilege to a potential autoantigen. Dissociation of non-reinforced M-alpha3alpha4alpha5(IV) hexamers by Goodpasture antibodies is a novel mechanism whereby pathogenic autoantibodies gain access to cryptic B cell epitopes. These findings provide fundamental new insights into immune privilege and the molecular mechanisms underlying the pathogenesis of human autoimmune Goodpasture disease.


Subject(s)
Anti-Glomerular Basement Membrane Disease/immunology , Antigen-Antibody Reactions , Autoantibodies/immunology , Autoantigens/immunology , Autoimmune Diseases/etiology , Anti-Glomerular Basement Membrane Disease/complications , Cell Line , Collagen Type IV/chemistry , Collagen Type IV/immunology , Dimerization , Epitopes/metabolism , Humans , Immunoassay , Protein Denaturation/immunology , Protein Structure, Quaternary , Transfection
19.
Am J Kidney Dis ; 45(2): 397-406, 2005 Feb.
Article in English | MEDLINE | ID: mdl-15685519

ABSTRACT

Goodpasture's disease is characterized by crescentic glomerulonephritis and lung hemorrhage in the presence of anti-glomerular basement membrane (anti-GBM) antibodies. This disease usually is mediated by IgG autoantibodies directed against the noncollagenous domain of the alpha3(IV) collagen chain, the Goodpasture autoantigen. In rare cases, anti-GBM antibodies of IgA or IgM class are involved, but their specificity has not been determined, and their target antigen remains unknown. The authors present the case of a 62-year-old man with anti-GBM disease mediated by a monoclonal IgA-kappa antibody, which progressed to end-stage renal disease despite intensive immunosuppression. The patient underwent living-related kidney transplantation, but lung hemorrhage and crescentic glomerulonephritis recurred, causing the loss of the allograft 2 years later. Indirect immunofluorescence found the presence of circulating IgA antibodies reactive with a basement membrane component, identified by enzyme-linked immunoabsorbent assay and Western blot as the alpha1/alpha2(IV) collagen chains. Sensitivity to digestion with collagenase indicated that IgA bound to epitopes located in the collagenous domain. This is the first case of recurrent Goodpasture's disease secondary to an autoreactive IgA antibody. The specificity of an IgA antibody implicated in the pathogenesis of anti-GBM disease has been investigated for the first time, identifying the alpha1/alpha2(IV) collagen chains as a novel target for nephritogenic antibodies.


Subject(s)
Anti-Glomerular Basement Membrane Disease/diagnosis , Antibodies, Monoclonal/biosynthesis , Autoantibodies/biosynthesis , Collagen Type I/immunology , Immunoglobulin A/biosynthesis , Immunoglobulin Allotypes/biosynthesis , Anti-Glomerular Basement Membrane Disease/pathology , Basement Membrane/chemistry , Basement Membrane/immunology , Humans , Kidney Failure, Chronic/diagnosis , Kidney Glomerulus/chemistry , Kidney Glomerulus/immunology , Kidney Glomerulus/pathology , Male , Middle Aged , Recurrence
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