Skip to main content
Top
Published in: Pediatric Nephrology 7/2011

01-07-2011 | Original Article

Plasma from a case of recurrent idiopathic FSGS perturbs non-muscle myosin IIA (MYH9 protein) in human podocytes

Authors: Sima Babayeva, Michelle Miller, Yulia Zilber, Reyhan El Kares, Chantale Bernard, Martin Bitzan, Paul Goodyer, Elena Torban

Published in: Pediatric Nephrology | Issue 7/2011

Login to get access

Abstract

The MYH9 gene encodes a non-muscle myosin IIA heavy chain (NMMHC-IIA) expressed in podocytes. Heterozygous MYH9 mutations cause a set of overlapping syndromes characterized by variable degrees of deafness, morphologic abnormalities of platelets and focal segmental glomerulosclerosis (FSGS) with progressive renal dysfunction. Similar glomerular lesions are seen in a variety of nephropathies, including an idiopathic form of FSGS in children which recurs in renal allografts, implying a circulating factor that affects glomerular podocyte biology. It is unknown whether NMMHC-IIA is perturbed in the idiopathic form of FSGS. We describe a pediatric patient with typical idiopathic FSGS, in whom proteinuria recurred within hours of deceased donor renal transplantation but who responded to plasmapheresis. We demonstrate in vitro that plasmapheresis effluent from our patient rapidly decreased cultured podocyte levels of the phosphorylated myosin light chain (MLC) that mediates NMMHC-IIA binding to actin and induced dispersion of NMMHC-IIA from its usual position along actin stress fibers. FSGS plasma also caused dispersion of slit diaphragm proteins (nephrin and podocin) and vinculin-positive focal adhesion complexes. Our observations suggest that the putative circulating factor in idiopathic FSGS disrupts normal NMMHC-IIA function in podocytes and might contribute to the pathogenesis of recurrent FSGS in other children.
Literature
1.
go back to reference D'Agati VD (2008) The spectrum of focal segmental glomerulosclerosis: new insights. Curr Opin Nephrol Hypertens 17:271–281CrossRef D'Agati VD (2008) The spectrum of focal segmental glomerulosclerosis: new insights. Curr Opin Nephrol Hypertens 17:271–281CrossRef
2.
go back to reference Crosson JT (2007) Focal segmental glomerulosclerosis and renal transplantation. Transplant Proc 39:737–743CrossRef Crosson JT (2007) Focal segmental glomerulosclerosis and renal transplantation. Transplant Proc 39:737–743CrossRef
3.
go back to reference Vinai M, Waber P, Seikaly MG (2010) Recurrence of focal segmental glomerulosclerosis in renal allograft: an in-depth review. Pediatr Transplant 14:314–325CrossRef Vinai M, Waber P, Seikaly MG (2010) Recurrence of focal segmental glomerulosclerosis in renal allograft: an in-depth review. Pediatr Transplant 14:314–325CrossRef
4.
go back to reference Marszal J, Saleem MA (2006) The bioactivity of plasma factors in focal segmental glomerulosclerosis. Nephron Exp Nephrol 104:e1–e5CrossRef Marszal J, Saleem MA (2006) The bioactivity of plasma factors in focal segmental glomerulosclerosis. Nephron Exp Nephrol 104:e1–e5CrossRef
5.
go back to reference Quaggin SE, Kreidberg JA (2008) Development of the renal glomerulus: good neighbors and good fences. Development 135:609–620CrossRef Quaggin SE, Kreidberg JA (2008) Development of the renal glomerulus: good neighbors and good fences. Development 135:609–620CrossRef
6.
go back to reference Moussavi RS, Kelley CA, Adelstein RS (1993) Phosphorylation of vertebrate nonmuscle and smooth muscle myosin heavy chains and light chains. Mol Cell Biochem 127–128:219–227CrossRef Moussavi RS, Kelley CA, Adelstein RS (1993) Phosphorylation of vertebrate nonmuscle and smooth muscle myosin heavy chains and light chains. Mol Cell Biochem 127–128:219–227CrossRef
7.
go back to reference Vicente-Manzanares M, Ma X, Adelstein RS, Horwitz AR (2009) Non-muscle myosin II takes centre stage in cell adhesion and migration. Nat Rev Mol Cell Biol 10:778–790CrossRef Vicente-Manzanares M, Ma X, Adelstein RS, Horwitz AR (2009) Non-muscle myosin II takes centre stage in cell adhesion and migration. Nat Rev Mol Cell Biol 10:778–790CrossRef
8.
go back to reference Li Y, Friedmann DR, Mhatre AN, Lalwani AK (2008) MYH9-siRNA and MYH9 mutant alleles: expression in cultured cell lines and their effects upon cell structure and function. Cell Motil Cytoskeleton 65:393–405CrossRef Li Y, Friedmann DR, Mhatre AN, Lalwani AK (2008) MYH9-siRNA and MYH9 mutant alleles: expression in cultured cell lines and their effects upon cell structure and function. Cell Motil Cytoskeleton 65:393–405CrossRef
9.
go back to reference Faul C, Asanuma K, Yanagida-Asanuma E, Kim K, Mundel P (2007) Actin up: regulation of podocyte structure and function by components of the actin cytoskeleton. Trends Cell Biol 17:428–437CrossRef Faul C, Asanuma K, Yanagida-Asanuma E, Kim K, Mundel P (2007) Actin up: regulation of podocyte structure and function by components of the actin cytoskeleton. Trends Cell Biol 17:428–437CrossRef
10.
go back to reference Hegglin R, Gross R, Loehr GW (1964) Hegglin–May anomaly (polyphyletic maturation disorder). Schweiz Med Wochenschr 94:1357–1364PubMed Hegglin R, Gross R, Loehr GW (1964) Hegglin–May anomaly (polyphyletic maturation disorder). Schweiz Med Wochenschr 94:1357–1364PubMed
11.
go back to reference Greinacher A, Nieuwenhuis HK, White JG (1990) Sebastian platelet syndrome: a new variant of hereditary macrothrombocytopenia with leukocyte inclusions. Blut 61:282–288CrossRef Greinacher A, Nieuwenhuis HK, White JG (1990) Sebastian platelet syndrome: a new variant of hereditary macrothrombocytopenia with leukocyte inclusions. Blut 61:282–288CrossRef
12.
go back to reference Epstein CJ, Sahud MA, Piel CF, Goodman JR, Bernfield MR, Kushner JH, Ablin AR (1972) Hereditary macrothrombocytopathia, nephritis and deafness. Am J Med 52:299–310CrossRef Epstein CJ, Sahud MA, Piel CF, Goodman JR, Bernfield MR, Kushner JH, Ablin AR (1972) Hereditary macrothrombocytopathia, nephritis and deafness. Am J Med 52:299–310CrossRef
13.
go back to reference Peterson LC, Rao KV, Crosson JT, White JG (1985) Fechtner syndrome-a variant of Alport's syndrome with leukocyte inclusions and macrothrombocytopenia. Blood 65:397–406CrossRef Peterson LC, Rao KV, Crosson JT, White JG (1985) Fechtner syndrome-a variant of Alport's syndrome with leukocyte inclusions and macrothrombocytopenia. Blood 65:397–406CrossRef
14.
go back to reference Eckly A, Strassel C, Freund M, Cazenave JP, Lanza F, Gachet C, Leon C (2009) Abnormal megakaryocyte morphology and proplatelet formation in mice with megakaryocyte-restricted MYH9 inactivation. Blood 113:3182–3189CrossRef Eckly A, Strassel C, Freund M, Cazenave JP, Lanza F, Gachet C, Leon C (2009) Abnormal megakaryocyte morphology and proplatelet formation in mice with megakaryocyte-restricted MYH9 inactivation. Blood 113:3182–3189CrossRef
15.
go back to reference Sekine T, Konno M, Sasaki S, Moritani S, Miura T, Wong WS, Nishio H, Nishiguchi T, Ohuchi MY, Tsuchiya S, Matsuyama T, Kanegane H, Ida K, Miura K, Harita Y, Hattori M, Horita S, Igarashi T, Saito H, Kunishima S (2010) Patients with Epstein–Fechtner syndromes owing to MYH9 R702 mutations develop progressive proteinuric renal disease. Kidney Int 78:207–214CrossRef Sekine T, Konno M, Sasaki S, Moritani S, Miura T, Wong WS, Nishio H, Nishiguchi T, Ohuchi MY, Tsuchiya S, Matsuyama T, Kanegane H, Ida K, Miura K, Harita Y, Hattori M, Horita S, Igarashi T, Saito H, Kunishima S (2010) Patients with Epstein–Fechtner syndromes owing to MYH9 R702 mutations develop progressive proteinuric renal disease. Kidney Int 78:207–214CrossRef
16.
go back to reference Coward RJ, Foster RR, Patton D, Ni L, Lennon R, Bates DO, Harper SJ, Mathieson PW, Saleem MA (2005) Nephrotic plasma alters slit diaphragm-dependent signaling and translocates nephrin, Podocin, and CD2 associated protein in cultured human podocytes. J Am Soc Nephrol 16:629–637CrossRef Coward RJ, Foster RR, Patton D, Ni L, Lennon R, Bates DO, Harper SJ, Mathieson PW, Saleem MA (2005) Nephrotic plasma alters slit diaphragm-dependent signaling and translocates nephrin, Podocin, and CD2 associated protein in cultured human podocytes. J Am Soc Nephrol 16:629–637CrossRef
17.
go back to reference Hattori M, Akioka Y, Chikamoto H, Kobayashi N, Tsuchiya K, Shimizu M, Kagami S, Tsukaguchi H (2008) Increase of integrin-linked kinase activity in cultured podocytes upon stimulation with plasma from patients with recurrent FSGS. Am J Transplant 8:1550–1556CrossRef Hattori M, Akioka Y, Chikamoto H, Kobayashi N, Tsuchiya K, Shimizu M, Kagami S, Tsukaguchi H (2008) Increase of integrin-linked kinase activity in cultured podocytes upon stimulation with plasma from patients with recurrent FSGS. Am J Transplant 8:1550–1556CrossRef
18.
go back to reference Saleem MA, O'Hare MJ, Reiser J, Coward RJ, Inward CD, Farren T, Xing CY, Ni L, Mathieson PW, Mundel P (2002) A conditionally immortalized human podocyte cell line demonstrating nephrin and podocin expression. J Am Soc Nephrol 13:630–638PubMed Saleem MA, O'Hare MJ, Reiser J, Coward RJ, Inward CD, Farren T, Xing CY, Ni L, Mathieson PW, Mundel P (2002) A conditionally immortalized human podocyte cell line demonstrating nephrin and podocin expression. J Am Soc Nephrol 13:630–638PubMed
19.
go back to reference Somlyo AP, Somlyo AV (1994) Signal transduction and regulation in smooth muscle. Nature 372:231–236CrossRef Somlyo AP, Somlyo AV (1994) Signal transduction and regulation in smooth muscle. Nature 372:231–236CrossRef
20.
go back to reference Matsumura F, Ono S, Yamakita Y, Totsukawa G, Yamashiro S (1998) Specific localization of serine 19 phosphorylated myosin II during cell locomotion and mitosis of cultured cells. J Cell Biol 140:119–129CrossRef Matsumura F, Ono S, Yamakita Y, Totsukawa G, Yamashiro S (1998) Specific localization of serine 19 phosphorylated myosin II during cell locomotion and mitosis of cultured cells. J Cell Biol 140:119–129CrossRef
21.
go back to reference Scholey JM, Taylor KA, Kendrick-Jones J (1980) Regulation of non-muscle myosin assembly by calmodulin-dependent light chain kinase. Nature 287:233–235CrossRef Scholey JM, Taylor KA, Kendrick-Jones J (1980) Regulation of non-muscle myosin assembly by calmodulin-dependent light chain kinase. Nature 287:233–235CrossRef
22.
go back to reference Fogo AB (2010) The spectrum of FSGS: does pathology matter? Nephrol Dial Transplant 25:1034–1036CrossRef Fogo AB (2010) The spectrum of FSGS: does pathology matter? Nephrol Dial Transplant 25:1034–1036CrossRef
23.
go back to reference Tan JL, Ravid S, Spudich JA (1992) Control of nonmuscle myosins by phosphorylation. Annu Rev Biochem 61:721–759CrossRef Tan JL, Ravid S, Spudich JA (1992) Control of nonmuscle myosins by phosphorylation. Annu Rev Biochem 61:721–759CrossRef
24.
go back to reference Totsukawa G, Yamakita Y, Yamashiro S, Hartshorne DJ, Sasaki Y, Matsumura F (2000) Distinct roles of ROCK (Rho-kinase) and MLCK in spatial regulation of MLC phosphorylation for assembly of stress fibers and focal adhesions in 3T3 fibroblasts. J Cell Biol 150:797–806CrossRef Totsukawa G, Yamakita Y, Yamashiro S, Hartshorne DJ, Sasaki Y, Matsumura F (2000) Distinct roles of ROCK (Rho-kinase) and MLCK in spatial regulation of MLC phosphorylation for assembly of stress fibers and focal adhesions in 3T3 fibroblasts. J Cell Biol 150:797–806CrossRef
25.
go back to reference Alhindawi E, Al-Jbour S (2009) Epstein syndrome with rapid progression to end stage renal disease. Saudi J Kidney Dis Transpl 20:1076–1078PubMed Alhindawi E, Al-Jbour S (2009) Epstein syndrome with rapid progression to end stage renal disease. Saudi J Kidney Dis Transpl 20:1076–1078PubMed
26.
go back to reference Singh N, Nainani N, Arora P, Venuto RC (2009) CKD in MYH9-related disorders. Am J Kidney Dis 54:732–740CrossRef Singh N, Nainani N, Arora P, Venuto RC (2009) CKD in MYH9-related disorders. Am J Kidney Dis 54:732–740CrossRef
27.
go back to reference Kopp JB, Smith MW, Nelson GW, Johnson RC, Freedman BI, Bowden DW, Oleksyk T, McKenzie LM, Kajiyama H, Ahuja TS, Berns JS, Briggs W, Cho ME, Dart RA, Kimmel PL, Korbet SM, Michel DM, Mokrzycki MH, Schelling JR, Simon E, Trachtman H, Vlahov D, Winkler CA (2008) MYH9 is a major-effect risk gene for focal segmental glomerulosclerosis. Nat Genet 40:1175–1184CrossRef Kopp JB, Smith MW, Nelson GW, Johnson RC, Freedman BI, Bowden DW, Oleksyk T, McKenzie LM, Kajiyama H, Ahuja TS, Berns JS, Briggs W, Cho ME, Dart RA, Kimmel PL, Korbet SM, Michel DM, Mokrzycki MH, Schelling JR, Simon E, Trachtman H, Vlahov D, Winkler CA (2008) MYH9 is a major-effect risk gene for focal segmental glomerulosclerosis. Nat Genet 40:1175–1184CrossRef
28.
go back to reference Tzur S, Rosset S, Shemer R, Yudkovsky G, Selig S, Tarekegn A, Bekele E, Bradman N, Wasser WG, Behar DM, Skorecki K (2010) Missense mutations in the APOL1 gene are highly associated with end stage kidney disease risk previously attributed to the MYH9 gene. Hum Genet 128:345–350CrossRef Tzur S, Rosset S, Shemer R, Yudkovsky G, Selig S, Tarekegn A, Bekele E, Bradman N, Wasser WG, Behar DM, Skorecki K (2010) Missense mutations in the APOL1 gene are highly associated with end stage kidney disease risk previously attributed to the MYH9 gene. Hum Genet 128:345–350CrossRef
29.
go back to reference Freedman BI, Kopp JB, Langefeld CD, Genovese G, Friedman DJ, Nelson GW, Winkler CA, Bowden DW, Pollak MR (2010) The apolipoprotein L1 (APOL1) gene and nondiabetic nephropathy in African Americans. J Am Soc Nephrol 21:1422–1426CrossRef Freedman BI, Kopp JB, Langefeld CD, Genovese G, Friedman DJ, Nelson GW, Winkler CA, Bowden DW, Pollak MR (2010) The apolipoprotein L1 (APOL1) gene and nondiabetic nephropathy in African Americans. J Am Soc Nephrol 21:1422–1426CrossRef
30.
go back to reference Ronconi E, Sagrinati C, Angelotti ML, Lazzeri E, Mazzinghi B, Ballerini L, Parente E, Becherucci F, Gacci M, Carini M, Maggi E, Serio M, Vannelli GB, Lasagni L, Romagnani S, Romagnani P (2009) Regeneration of glomerular podocytes by human renal progenitors. J Am Soc Nephrol 20:322–332CrossRef Ronconi E, Sagrinati C, Angelotti ML, Lazzeri E, Mazzinghi B, Ballerini L, Parente E, Becherucci F, Gacci M, Carini M, Maggi E, Serio M, Vannelli GB, Lasagni L, Romagnani S, Romagnani P (2009) Regeneration of glomerular podocytes by human renal progenitors. J Am Soc Nephrol 20:322–332CrossRef
31.
go back to reference Romagnani P, Kalluri R (2009) Possible mechanisms of kidney repair. Fibrogenesis Tissue Repair 2:3CrossRef Romagnani P, Kalluri R (2009) Possible mechanisms of kidney repair. Fibrogenesis Tissue Repair 2:3CrossRef
32.
go back to reference Smutny M, Cox HL, Leerberg JM, Kovacs EM, Conti MA, Ferguson C, Hamilton NA, Parton RG, Adelstein RS, Yap AS (2010) Myosin II isoforms identify distinct functional modules that support integrity of the epithelial zonula adherens. Nat Cell Biol 12:696–702CrossRef Smutny M, Cox HL, Leerberg JM, Kovacs EM, Conti MA, Ferguson C, Hamilton NA, Parton RG, Adelstein RS, Yap AS (2010) Myosin II isoforms identify distinct functional modules that support integrity of the epithelial zonula adherens. Nat Cell Biol 12:696–702CrossRef
33.
go back to reference Funke L, Dakoji S, Bredt DS (2005) Membrane-associated guanylate kinases regulate adhesion and plasticity at cell junctions. Annu Rev Biochem 74:219–245CrossRef Funke L, Dakoji S, Bredt DS (2005) Membrane-associated guanylate kinases regulate adhesion and plasticity at cell junctions. Annu Rev Biochem 74:219–245CrossRef
Metadata
Title
Plasma from a case of recurrent idiopathic FSGS perturbs non-muscle myosin IIA (MYH9 protein) in human podocytes
Authors
Sima Babayeva
Michelle Miller
Yulia Zilber
Reyhan El Kares
Chantale Bernard
Martin Bitzan
Paul Goodyer
Elena Torban
Publication date
01-07-2011
Publisher
Springer Berlin Heidelberg
Published in
Pediatric Nephrology / Issue 7/2011
Print ISSN: 0931-041X
Electronic ISSN: 1432-198X
DOI
https://doi.org/10.1007/s00467-011-1831-z

Other articles of this Issue 7/2011

Pediatric Nephrology 7/2011 Go to the issue