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Published in: Journal of Clinical Immunology 5/2008

01-09-2008

Renal Expression of Adhesion Molecules in Anca-Associated Disease

Authors: P. Arrizabalaga, M. Solé, R. Abellana, C. Ascaso

Published in: Journal of Clinical Immunology | Issue 5/2008

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Abstract

Introduction

Anti-neutrophil cytoplasmic autoantibodies (ANCA)-associated disease among other manifestations can underlie rapidly progressive glomerulonephritis (RPGN), with crescentic and necrotizing GN. Differences in pathogenic immune mechanisms in RPGN may provide differences in the renal expression of adhesion molecules mediating these lesions.

Methods

Renal intercellular adhesion molecule 1 (ICAM-1; CD54) and vascular cell adhesion molecule 1 (VCAM-1; CD106) were assessed in 40 patients with type I RPGN (anti-glomerular basement membrane antibodies, n = 4), type II (immune complexes, n = 17), and type III (ANCA, n = 19). Enzyme-linked immunosorbent assay (ELISA) for detection of immunoglobulin G antibodies against the Goodpasture’s antigen and indirect immunofluorescence and ELISA for myeloperoxidase (MPO) and proteinase 3 (PR3) were performed for ANCA testing. Ten normal renal tissues were used as controls. Relationships between ICAM-1 and VCAM-1, histopathologic features, and CD18, CD14, and CD3 cells were analyzed.

Results

Abnormal ICAM-1 and VCAM-1 in tubule was seen in >80% of biopsies with RPGN. Abnormal VCAM-1 in glomerular tuft was seen in >60% of biopsies with RPGN. Glomerular ICAM-1 was associated with less glomerulosclerosis (χ 2 = 6.719, p = 0.01), less interstitial fibrosis (χ 2 = 4.322, p < 0.05), and less tubular atrophy (χ 2 = 8.547, p < 0.005). Glomerular VCAM-1 was associated with glomerular leukocyte infiltration (χ 2 = 4.698, p < 0.05). Glomerular tuft stains of ++/+++ for VCAM-1 was observed in 10% from MPO-ANCA-GN patients but in 60% from PR3-ANCA-GN (Fi = 8.538, p = 0.03).

Conclusions

The following conclusions can be made from this study. (1) The renal expression of ICAM-1 and VCAM-1 is upregulated in RPGN, and this is associated with the histological activity. (2) De novo expression of VCAM-1 on glomerular tuft suggests that endothelial cells play a role in RPGN. (3) De novo tubular expression of ICAM-1 and VCAM-1 suggests that epithelial cells may participate in adhesive interactions in RPGN. (4) De novo expression of VCAM-1 at the glomerular tuft in PR3-ANCA positive patients seems greater than in MPO-ANCA positive patients, which suggests that testing specific immune activation mechanisms may play a role in ANCA-associated GN.
Literature
1.
go back to reference Yang N, Isbel NM, Nikolic-Paterson DJ, Li Y, Ye R, Atkins RC, et al. Local macrophage proliferation in human glomerulonephritis. Kidney Int. 1998;54:143–51.PubMedCrossRef Yang N, Isbel NM, Nikolic-Paterson DJ, Li Y, Ye R, Atkins RC, et al. Local macrophage proliferation in human glomerulonephritis. Kidney Int. 1998;54:143–51.PubMedCrossRef
2.
go back to reference Erwig LP, Rees AJ. Rapidly progressive glomerulonephritis. J Nephrol. 1999;12(suppl 2):111–9. Erwig LP, Rees AJ. Rapidly progressive glomerulonephritis. J Nephrol. 1999;12(suppl 2):111–9.
3.
go back to reference Springer TA. Traffic signals for lymphocyte recirculation and leukocyte emigration: the multistep paradigm. Cell 1994;76:301–14.PubMedCrossRef Springer TA. Traffic signals for lymphocyte recirculation and leukocyte emigration: the multistep paradigm. Cell 1994;76:301–14.PubMedCrossRef
4.
go back to reference Cibulsky AV. Adhesion molecules in renal diseases. In: Paul LC, Issekutz TB, editors. Adhesion molecules in health and disease. New York: Marcel Decker; 1997. p. 619–25. Cibulsky AV. Adhesion molecules in renal diseases. In: Paul LC, Issekutz TB, editors. Adhesion molecules in health and disease. New York: Marcel Decker; 1997. p. 619–25.
5.
6.
go back to reference Arrizabalaga P, Mampaso F. Integrins and glomerulonephritis. In: Esbrit P, Alvarez-Arroyo MV, editors. Inflammation and chronic disease. Kerala: Transworld Research Network; 2006. p. 67–87. Arrizabalaga P, Mampaso F. Integrins and glomerulonephritis. In: Esbrit P, Alvarez-Arroyo MV, editors. Inflammation and chronic disease. Kerala: Transworld Research Network; 2006. p. 67–87.
7.
go back to reference Bacon A, Moots RJ, Exley A, Luqmani R, Rasmussen N. Vital assessment of vasculitis. Clin Exp Rheumatol. 1995;13:275–8.PubMed Bacon A, Moots RJ, Exley A, Luqmani R, Rasmussen N. Vital assessment of vasculitis. Clin Exp Rheumatol. 1995;13:275–8.PubMed
8.
go back to reference Wiik A, Rasmussen N, Weislander J. Methods to detect autoantibodies to neutrophilic granulocytes. In: Van Venrooig WJ, editor. Manual of biological markers of disease. Dordrecht: Kluwe; 1993. p. 1–14. Wiik A, Rasmussen N, Weislander J. Methods to detect autoantibodies to neutrophilic granulocytes. In: Van Venrooig WJ, editor. Manual of biological markers of disease. Dordrecht: Kluwe; 1993. p. 1–14.
9.
go back to reference Arrizabalaga P, Solé M, Ascaso C, Quintó Ll. Intercellular adhesion molecule-1 mediated interactions and leucocyte infiltration in IgA nephropathy. Nephrol Dial Transplant. 1997;12:2258–62.PubMedCrossRef Arrizabalaga P, Solé M, Ascaso C, Quintó Ll. Intercellular adhesion molecule-1 mediated interactions and leucocyte infiltration in IgA nephropathy. Nephrol Dial Transplant. 1997;12:2258–62.PubMedCrossRef
10.
go back to reference Engel P, Serra C, Acevedo G, Vilella R, Gallart T. Involvement of CD18 and CD54 in the mixed lymphocyte reaction to leukemic CD5+ B lymphocytes. Immunology 1992;11:21–31. Engel P, Serra C, Acevedo G, Vilella R, Gallart T. Involvement of CD18 and CD54 in the mixed lymphocyte reaction to leukemic CD5+ B lymphocytes. Immunology 1992;11:21–31.
11.
go back to reference Spertini O, Luscinskas FW, Kansas GS, Munro JM, Griffin JD, Gimbrone MA, et al. Leukocyte adhesion molecule-1 interacts with an inducible endothelial cell ligand to support leukocyte adhesion. J Immunol. 1991;147:2565–73.PubMed Spertini O, Luscinskas FW, Kansas GS, Munro JM, Griffin JD, Gimbrone MA, et al. Leukocyte adhesion molecule-1 interacts with an inducible endothelial cell ligand to support leukocyte adhesion. J Immunol. 1991;147:2565–73.PubMed
12.
go back to reference Cobbold S, Hale G, Waldmann H. Non-lineaje, LFA-1 family, and leucocyte common antigens: new and previously defined clusters. In: McMichael AJ, editor. Leucocyte typing III. Oxford: Butler and Tanner; 1987. p. 788–803. Cobbold S, Hale G, Waldmann H. Non-lineaje, LFA-1 family, and leucocyte common antigens: new and previously defined clusters. In: McMichael AJ, editor. Leucocyte typing III. Oxford: Butler and Tanner; 1987. p. 788–803.
13.
go back to reference Bernstein ID, Self S. Joint report of the myeloid section of the Second International Workshop on human leucocyte differentiation antigens. In: Reinherz EL, Haynes BF, Nadler LM, Bernstein ID, editors. Leucocyte typing II. New York: Springer; 1986. p. 1–25. Bernstein ID, Self S. Joint report of the myeloid section of the Second International Workshop on human leucocyte differentiation antigens. In: Reinherz EL, Haynes BF, Nadler LM, Bernstein ID, editors. Leucocyte typing II. New York: Springer; 1986. p. 1–25.
14.
go back to reference Hir ML, Besse-Eschmann V. A novel mechanism of nephron loss in a murine model of crescentic glomerulonephritis. Kidney Int. 2003;63:591–9.PubMedCrossRef Hir ML, Besse-Eschmann V. A novel mechanism of nephron loss in a murine model of crescentic glomerulonephritis. Kidney Int. 2003;63:591–9.PubMedCrossRef
15.
go back to reference Khan SB, Allen AR, Bhangal G, Smith J, Lobb RR, Cook HT, et al. Blocking VLA-4 prevents progression of experimental crescentic glomerulonephritis. Nephron Exp Nephrol. 2003;95:100–10.CrossRef Khan SB, Allen AR, Bhangal G, Smith J, Lobb RR, Cook HT, et al. Blocking VLA-4 prevents progression of experimental crescentic glomerulonephritis. Nephron Exp Nephrol. 2003;95:100–10.CrossRef
16.
go back to reference Arrizabalaga P, Solé M, Abellana R, de las Cuevas X, Soler J, Pascual J, et al. Tubular and interstitial expression of ICAM-1 as a marker of renal injury in IgA nephropathy. Am J Nephrol. 2003;23:121–8.PubMedCrossRef Arrizabalaga P, Solé M, Abellana R, de las Cuevas X, Soler J, Pascual J, et al. Tubular and interstitial expression of ICAM-1 as a marker of renal injury in IgA nephropathy. Am J Nephrol. 2003;23:121–8.PubMedCrossRef
17.
go back to reference Roy-Chaudhury P, Wu B, King G, Campbell M, MacLeod AM, Haites EN, et al. Adhesion molecule interactions in human glomerulonephritis: importance of the tubulointerstitium. Kidney Int. 1996;49:127–34.PubMedCrossRef Roy-Chaudhury P, Wu B, King G, Campbell M, MacLeod AM, Haites EN, et al. Adhesion molecule interactions in human glomerulonephritis: importance of the tubulointerstitium. Kidney Int. 1996;49:127–34.PubMedCrossRef
18.
go back to reference Odobasic D, Kitching AR, Semple TJ, Timoshanko JR, Tipping PG, Holdsworth SR. Glomerular expression of CD80 and CD86 is required for leukocyte accumulation and injury in crescentic glomerulonephritis. J Am Soc Nephrol. 2005;16:2012–22.PubMedCrossRef Odobasic D, Kitching AR, Semple TJ, Timoshanko JR, Tipping PG, Holdsworth SR. Glomerular expression of CD80 and CD86 is required for leukocyte accumulation and injury in crescentic glomerulonephritis. J Am Soc Nephrol. 2005;16:2012–22.PubMedCrossRef
19.
go back to reference Schulz H, Karau A, Filsinger S, Schoels M, Kabelitz D, Richter R, et al. Tubular epithelial cells as accessory cells for superantigen-induced T cell activation. Exp Nephrol. 1998;6:67–73.PubMedCrossRef Schulz H, Karau A, Filsinger S, Schoels M, Kabelitz D, Richter R, et al. Tubular epithelial cells as accessory cells for superantigen-induced T cell activation. Exp Nephrol. 1998;6:67–73.PubMedCrossRef
20.
go back to reference Wu Q, Jinde K, Endoh M, Sakai H. Costimulatory molecules CD80 and CD86 in human crescentic glomerulonephritis. Am J Kidney Dis. 2003;41:950–61.PubMedCrossRef Wu Q, Jinde K, Endoh M, Sakai H. Costimulatory molecules CD80 and CD86 in human crescentic glomerulonephritis. Am J Kidney Dis. 2003;41:950–61.PubMedCrossRef
21.
go back to reference Arrizabalaga P, Sans A, Torras A, Darnell A, Revert L. Monoclonal antibody analysis of crescentic membranous glomerulonephropathy. Am J Nephrol. 1998;18:77–82.PubMedCrossRef Arrizabalaga P, Sans A, Torras A, Darnell A, Revert L. Monoclonal antibody analysis of crescentic membranous glomerulonephropathy. Am J Nephrol. 1998;18:77–82.PubMedCrossRef
22.
go back to reference Ferrario F, Rastaldi MP. Histopathological atlas of renal diseases: ANCA-associated vasculitis (second part). J Nephrol. 2005;18:217–20.PubMed Ferrario F, Rastaldi MP. Histopathological atlas of renal diseases: ANCA-associated vasculitis (second part). J Nephrol. 2005;18:217–20.PubMed
23.
go back to reference Moon KC, Park SY, Kim HW, Hong HK, Lee HS. Expression of intercellular adhesion molecule-1 and vascular cell adhesion molecule-1 in human crescentic glomerulonephritis. Histopathology 2002;41:158–65.PubMedCrossRef Moon KC, Park SY, Kim HW, Hong HK, Lee HS. Expression of intercellular adhesion molecule-1 and vascular cell adhesion molecule-1 in human crescentic glomerulonephritis. Histopathology 2002;41:158–65.PubMedCrossRef
24.
go back to reference Patey N, Lesavre P, Halbwachs-Mecarelli L, Noël LH. Adhesion molecules in human crescentic glomerulonephritis. J Pathol. 1996;179:414–20.PubMedCrossRef Patey N, Lesavre P, Halbwachs-Mecarelli L, Noël LH. Adhesion molecules in human crescentic glomerulonephritis. J Pathol. 1996;179:414–20.PubMedCrossRef
25.
go back to reference Pall AA, Howie AJ, Adu D, Richards GM, Inward CD, Milford DV, et al. Glomerular vascular cell adhesion molecule-1 expression in renal vasculitis. J Clin Pathol. 1996;49:238–42.PubMedCrossRef Pall AA, Howie AJ, Adu D, Richards GM, Inward CD, Milford DV, et al. Glomerular vascular cell adhesion molecule-1 expression in renal vasculitis. J Clin Pathol. 1996;49:238–42.PubMedCrossRef
26.
go back to reference Rastaldi MP, Ferrario F, Crippa A, Dell’Antonio G, Casartelli D, Grillo C, et al. Glomerular monocyte-macrophage features in ANCA-positive renal vasculitis and cryoglobulinemic nephritis. J Am Soc Nephrol. 2000;11:2036–43.PubMed Rastaldi MP, Ferrario F, Crippa A, Dell’Antonio G, Casartelli D, Grillo C, et al. Glomerular monocyte-macrophage features in ANCA-positive renal vasculitis and cryoglobulinemic nephritis. J Am Soc Nephrol. 2000;11:2036–43.PubMed
27.
go back to reference Ferrario F, Rastaldi MP. Histopathological atlas of renal diseases: ANCA-associated vasculitis (first part). J Nephrol. 2005;18:113–6.PubMed Ferrario F, Rastaldi MP. Histopathological atlas of renal diseases: ANCA-associated vasculitis (first part). J Nephrol. 2005;18:113–6.PubMed
28.
go back to reference Hauer HA, Bajema IM, Van Houwelingen HC, Ferrario F, Noël LH, Waldherr R, et al. Renal histology in ANCA-associated vasculitis: differences between diagnostic and serologic subgroups. Kidney Int. 2002;61:80–9.PubMedCrossRef Hauer HA, Bajema IM, Van Houwelingen HC, Ferrario F, Noël LH, Waldherr R, et al. Renal histology in ANCA-associated vasculitis: differences between diagnostic and serologic subgroups. Kidney Int. 2002;61:80–9.PubMedCrossRef
29.
go back to reference Hsieh SC, Yu HS, Cheng SH, Li KJ, Lu MC, Wu CH, et al. Anti-myeloperoxidase antibodies enhance phagocytosis, IL-8 production, and glucose uptake of polymorphonuclear neutrophils rather than anti-proteinase 3 antibodies leading to activation-induced cell death of the neutrophils. Clin Rheumatol. 2007;26:216–24.PubMedCrossRef Hsieh SC, Yu HS, Cheng SH, Li KJ, Lu MC, Wu CH, et al. Anti-myeloperoxidase antibodies enhance phagocytosis, IL-8 production, and glucose uptake of polymorphonuclear neutrophils rather than anti-proteinase 3 antibodies leading to activation-induced cell death of the neutrophils. Clin Rheumatol. 2007;26:216–24.PubMedCrossRef
30.
go back to reference Preston GA, Yang JJ, Xiao H, Falk RJ. Understanding the pathogenesis of ANCA: where are we today. Cleve Clin J Med. 2002;69:SII51–4.PubMedCrossRef Preston GA, Yang JJ, Xiao H, Falk RJ. Understanding the pathogenesis of ANCA: where are we today. Cleve Clin J Med. 2002;69:SII51–4.PubMedCrossRef
Metadata
Title
Renal Expression of Adhesion Molecules in Anca-Associated Disease
Authors
P. Arrizabalaga
M. Solé
R. Abellana
C. Ascaso
Publication date
01-09-2008
Publisher
Springer US
Published in
Journal of Clinical Immunology / Issue 5/2008
Print ISSN: 0271-9142
Electronic ISSN: 1573-2592
DOI
https://doi.org/10.1007/s10875-008-9215-2

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