Literature DB >> 22906356

Astrocytic autoantibody of neuromyelitis optica (NMO-IgG) binds to aquaporin-4 extracellular loops, monomers, tetramers and high order arrays.

Raffaele Iorio1, James P Fryer, Shannon R Hinson, Petra Fallier-Becker, Hartwig Wolburg, Sean J Pittock, Vanda A Lennon.   

Abstract

The principal central nervous system (CNS) water channel, aquaporin-4 (AQP4), is confined to astrocytic and ependymal membranes and is the target of a pathogenic autoantibody, neuromyelitis optica (NMO)-IgG. This disease-specific autoantibody unifies a spectrum of relapsing CNS autoimmune inflammatory disorders of which NMO exemplifies the classic phenotype. Multiple sclerosis and other immune-mediated demyelinating disorders of the CNS lack a distinctive biomarker. Two AQP4 isoforms, M1 and M23, exist as homotetrameric and heterotetrameric intramembranous particles (IMPs). Orthogonal arrays of predominantly M23 particles (OAPs) are an ultrastructural characteristic of astrocytic membranes. We used high-titered serum from 32 AQP4-IgG-seropositive patients and 85 controls to investigate the nature and molecular location of AQP4 epitopes that bind NMO-IgG, and the influence of supramolecular structure. NMO-IgG bound to denatured AQP4 monomers (68% of cases), to native tetramers and high order arrays (90% of cases), and to AQP4 in live cell membranes (100% of cases). Disease-specific epitopes reside in extracellular loop C more than in loops A or E. IgG binding to intracellular epitopes lacks disease specificity. These observations predict greater disease sensitivity and specificity for tissue-based and cell-based serological assays employing "native" AQP4 than assays employing denatured AQP4 and fragments. NMO-IgG binds most avidly to plasma membrane surface AQP4 epitopes formed by loop interactions within tetramers and by intermolecular interactions within high order structures. The relative abundance and localization of AQP4 high order arrays in distinct CNS regions may explain the variability in clinical phenotype of NMO spectrum disorders.
Copyright © 2012 Elsevier Ltd. All rights reserved.

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Year:  2012        PMID: 22906356      PMCID: PMC3509259          DOI: 10.1016/j.jaut.2012.07.008

Source DB:  PubMed          Journal:  J Autoimmun        ISSN: 0896-8411            Impact factor:   7.094


  26 in total

1.  Implications of the aquaporin-4 structure on array formation and cell adhesion.

Authors:  Yoko Hiroaki; Kazutoshi Tani; Akiko Kamegawa; Nobuhiko Gyobu; Kouki Nishikawa; Hiroshi Suzuki; Thomas Walz; Sei Sasaki; Kaoru Mitsuoka; Kazushi Kimura; Akira Mizoguchi; Yoshinori Fujiyoshi
Journal:  J Mol Biol       Date:  2005-11-17       Impact factor: 5.469

2.  The molecular composition of square arrays.

Authors:  Jan Gunnar Sorbo; Svein Erik Moe; Ole Petter Ottersen; Torgeir Holen
Journal:  Biochemistry       Date:  2008-02-02       Impact factor: 3.162

3.  A serum autoantibody marker of neuromyelitis optica: distinction from multiple sclerosis.

Authors:  Vanda A Lennon; Dean M Wingerchuk; Thomas J Kryzer; Sean J Pittock; Claudia F Lucchinetti; Kazuo Fujihara; Ichiro Nakashima; Brian G Weinshenker
Journal:  Lancet       Date:  2004 Dec 11-17       Impact factor: 79.321

4.  Revised diagnostic criteria for neuromyelitis optica.

Authors:  D M Wingerchuk; V A Lennon; S J Pittock; C F Lucchinetti; B G Weinshenker
Journal:  Neurology       Date:  2006-05-23       Impact factor: 9.910

5.  Aquaporin-4 square array assembly: opposing actions of M1 and M23 isoforms.

Authors:  C Sue Furman; Daniel A Gorelick-Feldman; Kimberly G V Davidson; Thomas Yasumura; John D Neely; Peter Agre; John E Rash
Journal:  Proc Natl Acad Sci U S A       Date:  2003-11-03       Impact factor: 11.205

6.  Pathogenic potential of IgG binding to water channel extracellular domain in neuromyelitis optica.

Authors:  S R Hinson; S J Pittock; C F Lucchinetti; S F Roemer; J P Fryer; T J Kryzer; V A Lennon
Journal:  Neurology       Date:  2007-10-10       Impact factor: 9.910

7.  Molecular cloning of a mercurial-insensitive water channel expressed in selected water-transporting tissues.

Authors:  H Hasegawa; T Ma; W Skach; M A Matthay; A S Verkman
Journal:  J Biol Chem       Date:  1994-02-25       Impact factor: 5.157

8.  Molecular characterization of an aquaporin cDNA from brain: candidate osmoreceptor and regulator of water balance.

Authors:  J S Jung; R V Bhat; G M Preston; W B Guggino; J M Baraban; P Agre
Journal:  Proc Natl Acad Sci U S A       Date:  1994-12-20       Impact factor: 11.205

9.  IgG marker of optic-spinal multiple sclerosis binds to the aquaporin-4 water channel.

Authors:  Vanda A Lennon; Thomas J Kryzer; Sean J Pittock; A S Verkman; Shannon R Hinson
Journal:  J Exp Med       Date:  2005-08-08       Impact factor: 14.307

10.  Aquaporin-4-binding autoantibodies in patients with neuromyelitis optica impair glutamate transport by down-regulating EAAT2.

Authors:  Shannon R Hinson; Shanu F Roemer; Claudia F Lucchinetti; James P Fryer; Thomas J Kryzer; Jayne L Chamberlain; Charles L Howe; Sean J Pittock; Vanda A Lennon
Journal:  J Exp Med       Date:  2008-10-06       Impact factor: 14.307

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  38 in total

1.  The challenge of treating orphan disease.

Authors:  Carlos Dias; Carlo Selmi
Journal:  Clin Rev Allergy Immunol       Date:  2014-12       Impact factor: 8.667

2.  Tuberculous nephritis accompanying neuromyelitis optica: causal or coincidental association?

Authors:  Raffaele Iorio; Mauro Monforte; Francesco Pierconti; Francesco Iodice; Mario Sabatelli
Journal:  J Neurol       Date:  2014-03-27       Impact factor: 4.849

3.  Identification of a point mutation impairing the binding between aquaporin-4 and neuromyelitis optica autoantibodies.

Authors:  Francesco Pisani; Maria Grazia Mola; Laura Simone; Stefania Rosito; Domenico Alberga; Giuseppe Felice Mangiatordi; Gianluca Lattanzi; Orazio Nicolotti; Antonio Frigeri; Maria Svelto; Grazia Paola Nicchia
Journal:  J Biol Chem       Date:  2014-09-19       Impact factor: 5.157

4.  Comparative molecular dynamics study of neuromyelitis optica-immunoglobulin G binding to aquaporin-4 extracellular domains.

Authors:  Domenico Alberga; Daniela Trisciuzzi; Gianluca Lattanzi; Jeffrey L Bennett; Alan S Verkman; Giuseppe Felice Mangiatordi; Orazio Nicolotti
Journal:  Biochim Biophys Acta Biomembr       Date:  2017-05-03       Impact factor: 3.747

5.  Distinctive clinical and neuroimaging characteristics of longitudinally extensive transverse myelitis associated with aquaporin-4 autoantibodies.

Authors:  Raffaele Iorio; Valentina Damato; Massimiliano Mirabella; Amelia Evoli; Alessandro Marti; Domenico Plantone; Giovanni Frisullo; Anna Paola Batocchi
Journal:  J Neurol       Date:  2013-06-21       Impact factor: 4.849

6.  Discovery of peptoid ligands for anti-aquaporin 4 antibodies.

Authors:  Bindu L Raveendra; Hao Wu; Roberto Baccala; M Muralidhar Reddy; Jessica Schilke; Jeffrey L Bennett; Argyrios N Theofilopoulos; Thomas Kodadek
Journal:  Chem Biol       Date:  2013-03-21

7.  Cross-immunoreactivity between bacterial aquaporin-Z and human aquaporin-4: potential relevance to neuromyelitis optica.

Authors:  Zhihua Ren; Yan Wang; Tao Duan; Jilpa Patel; Thomas Liggett; Eileah Loda; Sarang Brahma; Rajendra Goswami; Carrie Grouse; Richard Byrne; Dusan Stefoski; Adil Javed; Stephen D Miller; Roumen Balabanov
Journal:  J Immunol       Date:  2012-09-24       Impact factor: 5.422

8.  Unique topics and issues in rheumatology and clinical immunology.

Authors:  Carlo Selmi
Journal:  Clin Rev Allergy Immunol       Date:  2014-08       Impact factor: 8.667

Review 9.  Aquaporin and brain diseases.

Authors:  Jérôme Badaut; Andrew M Fukuda; Amandine Jullienne; Klaus G Petry
Journal:  Biochim Biophys Acta       Date:  2013-10-26

10.  Neuromyelitis optica IgG stimulates an immunological response in rat astrocyte cultures.

Authors:  Charles L Howe; Tatiana Kaptzan; Setty M Magaña; Jennifer R Ayers-Ringler; Reghann G LaFrance-Corey; Claudia F Lucchinetti
Journal:  Glia       Date:  2014-02-03       Impact factor: 7.452

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