Skip to main content
Top
Published in: Acta Neuropathologica 1/2017

01-07-2017 | Original Paper

Bystander mechanism for complement-initiated early oligodendrocyte injury in neuromyelitis optica

Authors: Lukmanee Tradtrantip, Xiaoming Yao, Tao Su, Alex J. Smith, Alan S. Verkman

Published in: Acta Neuropathologica | Issue 1/2017

Login to get access

Abstract

Neuromyelitis optica spectrum disorder (herein called NMO) is an autoimmune inflammatory disease of the central nervous system in which immunoglobulin G antibodies against astrocyte water channel aquaporin-4 (AQP4-IgG) cause demyelination and neurological deficit. Injury to oligodendrocytes, which do not express AQP4, links the initiating pathogenic event of AQP4-IgG binding to astrocyte AQP4 to demyelination. Here, we report evidence for a complement ‘bystander mechanism’ to account for early oligodendrocyte injury in NMO in which activated, soluble complement proteins following AQP4-IgG binding to astrocyte AQP4 result in deposition of the complement membrane attack complex (MAC) on nearby oligodendrocytes. Primary cocultures of rat astrocytes and mature oligodendrocytes exposed to AQP4-IgG and complement showed early death of oligodendrocytes in close contact with astrocytes, which was not seen in pure oligodendrocyte cultures, in cocultures exposed to AQP4-IgG and C6-depleted serum, or when astrocytes were damaged by a complement-independent mechanism. Astrocyte-oligodendrocyte cocultures exposed to AQP4-IgG and complement showed prominent MAC deposition on oligodendrocytes in contact with astrocytes, whereas C1q, the initiating protein in the classical complement pathway, and C3d, a component of the alternative complement pathway, were deposited only on astrocytes. Early oligodendrocyte injury with MAC deposition was also found in rat brain following intracerebral injection of AQP4-IgG, complement and a fixable dead-cell stain. These results support a novel complement bystander mechanism for early oligodendrocyte injury and demyelination in NMO.
Appendix
Available only for authorised users
Literature
1.
go back to reference Asavapanumas N, Ratelade J, Verkman AS (2014) Unique neuromyelitis optica pathology produced in naive rats by intracerebral administration of NMO-IgG. Acta Neuropathol 127:539–551CrossRefPubMed Asavapanumas N, Ratelade J, Verkman AS (2014) Unique neuromyelitis optica pathology produced in naive rats by intracerebral administration of NMO-IgG. Acta Neuropathol 127:539–551CrossRefPubMed
2.
go back to reference Asgari N, Khorooshi R, Lillevang ST, Owens T (2013) Complement-dependent pathogenicity of brain-specific antibodies in cerebrospinal fluid. J Neuroimmunol 254:76–82CrossRefPubMed Asgari N, Khorooshi R, Lillevang ST, Owens T (2013) Complement-dependent pathogenicity of brain-specific antibodies in cerebrospinal fluid. J Neuroimmunol 254:76–82CrossRefPubMed
3.
go back to reference Bennett JL, Lam C, Kalluri SR, Saikali P, Bautista K, Dupree C, Glogowska M, Case D, Antel JP, Owens GP, Gilden D, Nessler S, Stadelmann C, Hemmer B (2009) Intrathecal pathogenic anti–aquaporin-4 antibodies in early neuromyelitis optica. Ann Neurol 66:617–629CrossRefPubMedPubMedCentral Bennett JL, Lam C, Kalluri SR, Saikali P, Bautista K, Dupree C, Glogowska M, Case D, Antel JP, Owens GP, Gilden D, Nessler S, Stadelmann C, Hemmer B (2009) Intrathecal pathogenic anti–aquaporin-4 antibodies in early neuromyelitis optica. Ann Neurol 66:617–629CrossRefPubMedPubMedCentral
4.
go back to reference Bradl M, Misu T, Takahashi T, Watanabe M, Mader S, Reindl M, Adzemovic M, Bauer J, Berger T, Fujihara K, Itoyama Y, Lassmann H (2009) Neuromyelitis optica: pathogenicity of patient immunoglobulin in vivo. Ann Neurol 66:630–643CrossRefPubMed Bradl M, Misu T, Takahashi T, Watanabe M, Mader S, Reindl M, Adzemovic M, Bauer J, Berger T, Fujihara K, Itoyama Y, Lassmann H (2009) Neuromyelitis optica: pathogenicity of patient immunoglobulin in vivo. Ann Neurol 66:630–643CrossRefPubMed
5.
go back to reference Brown DR, Kretzschmar HA (1998) The glio-toxic mechanism of α-aminoadipic acid on cultured astrocytes. J Neurocytol 27:109–118CrossRefPubMed Brown DR, Kretzschmar HA (1998) The glio-toxic mechanism of α-aminoadipic acid on cultured astrocytes. J Neurocytol 27:109–118CrossRefPubMed
6.
go back to reference Crane JM, Lam C, Rossi A, Gupta T, Bennett JL, Verkman AS (2011) Binding affinity and specificity of neuromyelitis optica autoantibodies to aquaporin-4 M1/M23 isoforms and orthogonal arrays. J Biol Chem 286:16516–16524CrossRefPubMedPubMedCentral Crane JM, Lam C, Rossi A, Gupta T, Bennett JL, Verkman AS (2011) Binding affinity and specificity of neuromyelitis optica autoantibodies to aquaporin-4 M1/M23 isoforms and orthogonal arrays. J Biol Chem 286:16516–16524CrossRefPubMedPubMedCentral
7.
9.
go back to reference Hinson SR, Roemer SF, Lucchinetti CF, Fryer JP, Kryzer TJ, Chamberlain JL, Howe CL, Pittock SJ, Lennon VA (2008) Aquaporin-4-binding autoantibodies in patients with neuromyelitis optica impair glutamate transport by down-regulating EAAT2. J Exp Med 205:2473–2481CrossRefPubMedPubMedCentral Hinson SR, Roemer SF, Lucchinetti CF, Fryer JP, Kryzer TJ, Chamberlain JL, Howe CL, Pittock SJ, Lennon VA (2008) Aquaporin-4-binding autoantibodies in patients with neuromyelitis optica impair glutamate transport by down-regulating EAAT2. J Exp Med 205:2473–2481CrossRefPubMedPubMedCentral
10.
go back to reference Hinson SR, Romero MF, Popescu BF, Lucchinetti CF, Fryer JP, Wolburg H, Fallier-Becker P, Noell S, Lennon VA (2012) Molecular outcomes of neuromyelitis optica (NMO)-IgG binding to aquaporin-4 in astrocytes. Proc Natl Acad Sci USA 109:1245–1250CrossRefPubMed Hinson SR, Romero MF, Popescu BF, Lucchinetti CF, Fryer JP, Wolburg H, Fallier-Becker P, Noell S, Lennon VA (2012) Molecular outcomes of neuromyelitis optica (NMO)-IgG binding to aquaporin-4 in astrocytes. Proc Natl Acad Sci USA 109:1245–1250CrossRefPubMed
11.
go back to reference Huck S, Grass F, Hortnagl H (1984) The glutamate analog α-aminoadipic acid is taken up by astrocytes before exerting its gliotoxic effect in vitro. J Neurosci 4:2650–2657PubMed Huck S, Grass F, Hortnagl H (1984) The glutamate analog α-aminoadipic acid is taken up by astrocytes before exerting its gliotoxic effect in vitro. J Neurosci 4:2650–2657PubMed
12.
go back to reference Jarius S, Wildemann B (2010) AQP4 antibodies in neuromyelitis optica: diagnostic and pathogenetic relevance. Nat Rev Neurol 6:383–392CrossRefPubMed Jarius S, Wildemann B (2010) AQP4 antibodies in neuromyelitis optica: diagnostic and pathogenetic relevance. Nat Rev Neurol 6:383–392CrossRefPubMed
13.
go back to reference Lennon VA, Kryzer TJ, Pittock SJ, Verkman AS, Hinson SR (2005) IgG marker of optic-spinal multiple sclerosis binds to the aquaporin-4 water channel. J Exp Med 202:473–477CrossRefPubMedPubMedCentral Lennon VA, Kryzer TJ, Pittock SJ, Verkman AS, Hinson SR (2005) IgG marker of optic-spinal multiple sclerosis binds to the aquaporin-4 water channel. J Exp Med 202:473–477CrossRefPubMedPubMedCentral
14.
go back to reference Lucchinetti CF, Mandler RN, McGavern D, Bruck W, Gleich G, Ransohoff RM, Trebst C, Weinshenker B, Wingerchuk D, Parisi JE, Lassmann H (2002) A role for humoral mechanisms in the pathogenesis of Devic’s neuromyelitis optica. Brain 125:1450–1461CrossRefPubMedPubMedCentral Lucchinetti CF, Mandler RN, McGavern D, Bruck W, Gleich G, Ransohoff RM, Trebst C, Weinshenker B, Wingerchuk D, Parisi JE, Lassmann H (2002) A role for humoral mechanisms in the pathogenesis of Devic’s neuromyelitis optica. Brain 125:1450–1461CrossRefPubMedPubMedCentral
15.
go back to reference Marignier R, Nicolle A, Watrin C, Touret M, Cavagna S, Varrin-Doyer M, Cavillon G, Rogemond V, Confavreux C, Honnorat J, Giraudon P (2010) Oligodendrocytes are damages by neuromyelitis optic immunoglobulin G via astrocyte injury. Brain 133:2578–2591CrossRefPubMed Marignier R, Nicolle A, Watrin C, Touret M, Cavagna S, Varrin-Doyer M, Cavillon G, Rogemond V, Confavreux C, Honnorat J, Giraudon P (2010) Oligodendrocytes are damages by neuromyelitis optic immunoglobulin G via astrocyte injury. Brain 133:2578–2591CrossRefPubMed
16.
go back to reference Misu T, Fujihara K, Kakita A, Konno H, Nakamura M, Watanabe S, Takahashi T, Nakashima I, Takahashi H, Itoyama Y (2007) Loss of aquaporin 4 in lesions of neuromyelitis optica: distinction from multiple sclerosis. Brain 130:1224–1234CrossRefPubMed Misu T, Fujihara K, Kakita A, Konno H, Nakamura M, Watanabe S, Takahashi T, Nakashima I, Takahashi H, Itoyama Y (2007) Loss of aquaporin 4 in lesions of neuromyelitis optica: distinction from multiple sclerosis. Brain 130:1224–1234CrossRefPubMed
18.
go back to reference Park CC, Shin ML, Simard JM (1997) The complement membrane attack complex and the bystander effect in cerebral vasospasm. J Neurosurg 87:294–300CrossRefPubMed Park CC, Shin ML, Simard JM (1997) The complement membrane attack complex and the bystander effect in cerebral vasospasm. J Neurosurg 87:294–300CrossRefPubMed
19.
go back to reference Parratt JD, Prineas JW (2010) Neuromyelitis optica: a demyelinating disease characterized by acute destruction and regeneration of a perivascular astrocytes. Mult Scler 16:1156–1172CrossRefPubMed Parratt JD, Prineas JW (2010) Neuromyelitis optica: a demyelinating disease characterized by acute destruction and regeneration of a perivascular astrocytes. Mult Scler 16:1156–1172CrossRefPubMed
20.
go back to reference Phuan PW, Ratelade J, Rossi A, Tradtrantip L, Verkman AS (2012) Complement-dependent cytotoxicity in neuromyelitis optica requires aquaporin-4 protein assembly in orthogonal arrays. J Biol Chem 287:13829–13839CrossRefPubMedPubMedCentral Phuan PW, Ratelade J, Rossi A, Tradtrantip L, Verkman AS (2012) Complement-dependent cytotoxicity in neuromyelitis optica requires aquaporin-4 protein assembly in orthogonal arrays. J Biol Chem 287:13829–13839CrossRefPubMedPubMedCentral
21.
go back to reference Piddlesden SJ, Morgan BP (1993) Killing of rat glial cells by complement: deficiency of the rat analogue of CD59 is the cause of oligodendrocyte susceptibility to lysis. J Neuroimmunol 48:169–175CrossRefPubMed Piddlesden SJ, Morgan BP (1993) Killing of rat glial cells by complement: deficiency of the rat analogue of CD59 is the cause of oligodendrocyte susceptibility to lysis. J Neuroimmunol 48:169–175CrossRefPubMed
22.
go back to reference Ratelade J, Asavapanumas N, Ritchie AM, Wemlinger S, Bennett JL, Verkman AS (2013) Involvement of antibody-dependent cell-mediated cytotoxicity in inflammatory demyelination in a mouse model of neuromyelitis optica. Acta Neuropathol 126:699–709CrossRefPubMedPubMedCentral Ratelade J, Asavapanumas N, Ritchie AM, Wemlinger S, Bennett JL, Verkman AS (2013) Involvement of antibody-dependent cell-mediated cytotoxicity in inflammatory demyelination in a mouse model of neuromyelitis optica. Acta Neuropathol 126:699–709CrossRefPubMedPubMedCentral
23.
go back to reference Ratelade J, Bennett JL, Verkman AS (2011) Evidence against cellular internalization in vivo of NMO-IgG, aquaporin-4, and excitatory amino acid transporter 2 in neuromyelitis optica. J Biol Chem 286:45156–45164CrossRefPubMedPubMedCentral Ratelade J, Bennett JL, Verkman AS (2011) Evidence against cellular internalization in vivo of NMO-IgG, aquaporin-4, and excitatory amino acid transporter 2 in neuromyelitis optica. J Biol Chem 286:45156–45164CrossRefPubMedPubMedCentral
24.
go back to reference Roemer SF, Parisi JE, Lennon VA, Benarroch EE, Lassmann H, Bruck W, Mandler RN, Weinshenker BG, Pittock SJ, Wingerchuk DM, Lucchinetti CF (2007) Pattern-specific loss of aquaporin-4 immunoreactivity distinguishes neuromyelitis optica from multiple sclerosis. Brain 130:1194–1205CrossRefPubMed Roemer SF, Parisi JE, Lennon VA, Benarroch EE, Lassmann H, Bruck W, Mandler RN, Weinshenker BG, Pittock SJ, Wingerchuk DM, Lucchinetti CF (2007) Pattern-specific loss of aquaporin-4 immunoreactivity distinguishes neuromyelitis optica from multiple sclerosis. Brain 130:1194–1205CrossRefPubMed
25.
go back to reference Rossi A, Ratelade J, Papadopoulos MC, Bennett JL, Verkman AS (2012) Neuromyelitis optica IgG does not alter aquaporin-4 water permeability, plasma membrane M1/M23 isoform content or supramolecular assembly. Glia 60:2027–2039CrossRefPubMedPubMedCentral Rossi A, Ratelade J, Papadopoulos MC, Bennett JL, Verkman AS (2012) Neuromyelitis optica IgG does not alter aquaporin-4 water permeability, plasma membrane M1/M23 isoform content or supramolecular assembly. Glia 60:2027–2039CrossRefPubMedPubMedCentral
26.
go back to reference Saadoun S, Waters P, Bell BA, Vincent A, Verkman AS, Papadopoulos MC (2010) Intra-cerebral injection of neuromyelitis optica immunoglobulin G and human complement produces neuromyelitis optica lesions in mice. Brain 133:349–361CrossRefPubMedPubMedCentral Saadoun S, Waters P, Bell BA, Vincent A, Verkman AS, Papadopoulos MC (2010) Intra-cerebral injection of neuromyelitis optica immunoglobulin G and human complement produces neuromyelitis optica lesions in mice. Brain 133:349–361CrossRefPubMedPubMedCentral
27.
go back to reference Sagan SA, Winger RC, Cruz-Herranz A, Nelson PA, Hagberg S, Miller CN, Spencer CM, Ho PP, Bennette JL, Levy M, Levin MH, Verkman AS, Stienman L, Green AJ, Anderson MS, Sobel RA, Zamvil SS (2016) Tolerance checkpoint bypass permits emergence of pathogenic T cells to neuromyelitis optica autoantigen aquaporin-4. Proc Natl Acad Sci USA 113:14781–14786CrossRefPubMedPubMedCentral Sagan SA, Winger RC, Cruz-Herranz A, Nelson PA, Hagberg S, Miller CN, Spencer CM, Ho PP, Bennette JL, Levy M, Levin MH, Verkman AS, Stienman L, Green AJ, Anderson MS, Sobel RA, Zamvil SS (2016) Tolerance checkpoint bypass permits emergence of pathogenic T cells to neuromyelitis optica autoantigen aquaporin-4. Proc Natl Acad Sci USA 113:14781–14786CrossRefPubMedPubMedCentral
28.
go back to reference Scolding NJ, Morgan BP, Compston DA (1998) The expression of complement regulatory proteins by adult human oligodendrocytes. J Neuroimmunol 84:69–75CrossRefPubMed Scolding NJ, Morgan BP, Compston DA (1998) The expression of complement regulatory proteins by adult human oligodendrocytes. J Neuroimmunol 84:69–75CrossRefPubMed
29.
go back to reference Smith AJ, Jin BJ, Ratelade J, Verkman AS (2014) Aggregation state determines the localization and function of M1- and M23-aquaporin-4 in astrocytes. J Cell Biol 204:559–573CrossRefPubMedPubMedCentral Smith AJ, Jin BJ, Ratelade J, Verkman AS (2014) Aggregation state determines the localization and function of M1- and M23-aquaporin-4 in astrocytes. J Cell Biol 204:559–573CrossRefPubMedPubMedCentral
30.
31.
go back to reference Tradtrantip L, Asavapanumas N, Verkman AS (2013) Therapeutic cleavage of anti-aquaporin-4 autoantibody in neuromyelitis optica by an IgG-selective proteinase. Mol Pharmacol 83:1268–1275CrossRefPubMedPubMedCentral Tradtrantip L, Asavapanumas N, Verkman AS (2013) Therapeutic cleavage of anti-aquaporin-4 autoantibody in neuromyelitis optica by an IgG-selective proteinase. Mol Pharmacol 83:1268–1275CrossRefPubMedPubMedCentral
32.
go back to reference Tradtrantip L, Ratelade J, Zhang H, Verkman AS (2013) Enzymatic deglycosylation converts pathogenic neuromyelitis optica anti-aquaporin-4 immunoglobulin G into therapeutic antibody. Ann Neurol 73:77–85CrossRefPubMed Tradtrantip L, Ratelade J, Zhang H, Verkman AS (2013) Enzymatic deglycosylation converts pathogenic neuromyelitis optica anti-aquaporin-4 immunoglobulin G into therapeutic antibody. Ann Neurol 73:77–85CrossRefPubMed
33.
go back to reference Tradtrantip L, Zhang H, Saadoun S, Phuan PW, Lam C, Papadopoulos MC, Bennett JL, Verkman AS (2012) Anti–aquaporin-4 monoclonal antibody blocker therapy for neuromyelitis optica. Ann Neurol 71:314–322CrossRefPubMedPubMedCentral Tradtrantip L, Zhang H, Saadoun S, Phuan PW, Lam C, Papadopoulos MC, Bennett JL, Verkman AS (2012) Anti–aquaporin-4 monoclonal antibody blocker therapy for neuromyelitis optica. Ann Neurol 71:314–322CrossRefPubMedPubMedCentral
34.
go back to reference Tradtrantip L, Zhang H, Anderson MO, Saadoun S, Phuan PW, Papadopoulos MC, Bennett JL, Verkman AS (2012) Small-molecule inhibitors of NMO-IgG binding to aquaporin-4 reduce astrocyte cytotoxicity in neuromyelitis optica. FASEB J 26:2197–2208CrossRefPubMedPubMedCentral Tradtrantip L, Zhang H, Anderson MO, Saadoun S, Phuan PW, Papadopoulos MC, Bennett JL, Verkman AS (2012) Small-molecule inhibitors of NMO-IgG binding to aquaporin-4 reduce astrocyte cytotoxicity in neuromyelitis optica. FASEB J 26:2197–2208CrossRefPubMedPubMedCentral
35.
go back to reference Waxman SG, Black JA (1984) Freeze-fracture ultrastructure of the perinodal astrocyte and associated glial junctions. Brain Res 308:77–87CrossRefPubMed Waxman SG, Black JA (1984) Freeze-fracture ultrastructure of the perinodal astrocyte and associated glial junctions. Brain Res 308:77–87CrossRefPubMed
36.
go back to reference Whitney KD, McNamara JO (2000) GluR3 autoantibodies destroy neural cells in a complement dependent manner modulated by complement regulatory proteins. J Neurosci 20:7307–7316PubMed Whitney KD, McNamara JO (2000) GluR3 autoantibodies destroy neural cells in a complement dependent manner modulated by complement regulatory proteins. J Neurosci 20:7307–7316PubMed
37.
go back to reference Wing MG, Zajicek J, Seilly DJ, Compston DA, Lachmann PJ (1992) Oligodendrocytes lack glycolipid anchored proteins which protect them against complement lysis. Restoration of resistance to lysis by incorporation of CD59. Immunology 76:140–145PubMedPubMedCentral Wing MG, Zajicek J, Seilly DJ, Compston DA, Lachmann PJ (1992) Oligodendrocytes lack glycolipid anchored proteins which protect them against complement lysis. Restoration of resistance to lysis by incorporation of CD59. Immunology 76:140–145PubMedPubMedCentral
38.
go back to reference Wolburg H, Wolburg-Buchholz K, Fallier-Becker P, Noell S, Mack AF (2011) Structure and functions of aquaporin-4-based orthogonal arrays of particles. Int Rev Cell Mol Biol 287:1–41CrossRefPubMed Wolburg H, Wolburg-Buchholz K, Fallier-Becker P, Noell S, Mack AF (2011) Structure and functions of aquaporin-4-based orthogonal arrays of particles. Int Rev Cell Mol Biol 287:1–41CrossRefPubMed
39.
go back to reference Wrzos C, Winkler A, Metz I, Kayser DM, Thal DR, Wegner C, Bruck W, Nessler S, Bennett JL, Stadelmann C (2014) Early loss of oligodendrocytes in human and experimental neuromyelitis optic lesions. Acta Neuropathol 127:523–538CrossRefPubMed Wrzos C, Winkler A, Metz I, Kayser DM, Thal DR, Wegner C, Bruck W, Nessler S, Bennett JL, Stadelmann C (2014) Early loss of oligodendrocytes in human and experimental neuromyelitis optic lesions. Acta Neuropathol 127:523–538CrossRefPubMed
41.
go back to reference Zipfel PF, Skerka C (2009) Complement regulators and inhibitory proteins. Nat Rev Immunol 9:729–740PubMed Zipfel PF, Skerka C (2009) Complement regulators and inhibitory proteins. Nat Rev Immunol 9:729–740PubMed
Metadata
Title
Bystander mechanism for complement-initiated early oligodendrocyte injury in neuromyelitis optica
Authors
Lukmanee Tradtrantip
Xiaoming Yao
Tao Su
Alex J. Smith
Alan S. Verkman
Publication date
01-07-2017
Publisher
Springer Berlin Heidelberg
Published in
Acta Neuropathologica / Issue 1/2017
Print ISSN: 0001-6322
Electronic ISSN: 1432-0533
DOI
https://doi.org/10.1007/s00401-017-1734-6

Other articles of this Issue 1/2017

Acta Neuropathologica 1/2017 Go to the issue