Characterization of NEB pathogenic variants in patients reveals novel nemaline myopathy disease mechanisms and omecamtiv mecarbil force effects.


Journal

Acta neuropathologica
ISSN: 1432-0533
Titre abrégé: Acta Neuropathol
Pays: Germany
ID NLM: 0412041

Informations de publication

Date de publication:
18 Apr 2024
Historique:
received: 22 12 2023
accepted: 26 03 2024
revised: 19 03 2024
medline: 19 4 2024
pubmed: 18 4 2024
entrez: 18 4 2024
Statut: epublish

Résumé

Nebulin, a critical protein of the skeletal muscle thin filament, plays important roles in physiological processes such as regulating thin filament length (TFL), cross-bridge cycling, and myofibril alignment. Pathogenic variants in the nebulin gene (NEB) cause NEB-based nemaline myopathy (NEM2), a genetically heterogeneous disorder characterized by hypotonia and muscle weakness, currently lacking curative therapies. In this study, we examined a cohort of ten NEM2 patients, each with unique pathogenic variants, aiming to understand their impact on mRNA, protein, and functional levels. Results show that pathogenic truncation variants affect NEB mRNA stability and lead to nonsense-mediated decay of the mutated transcript. Moreover, a high incidence of cryptic splice site activation was found in patients with pathogenic splicing variants that are expected to disrupt the actin-binding sites of nebulin. Determination of protein levels revealed patients with either relatively normal or markedly reduced nebulin. We observed a positive relation between the reduction in nebulin and a reduction in TFL, or reduction in tension (both maximal and submaximal tension). Interestingly, our study revealed a pathogenic duplication variant in nebulin that resulted in a four-copy gain in the triplicate region of NEB and a much larger nebulin protein and longer TFL. Additionally, we investigated the effect of Omecamtiv mecarbil (OM), a small-molecule activator of cardiac myosin, on force production of type 1 muscle fibers of NEM2 patients. OM treatment substantially increased submaximal tension across all NEM2 patients ranging from 87 to 318%, with the largest effects in patients with the lowest level of nebulin. In summary, this study indicates that post-transcriptional or post-translational mechanisms regulate nebulin expression. Moreover, we propose that the pathomechanism of NEM2 involves not only shortened but also elongated thin filaments, along with the disruption of actin-binding sites resulting from pathogenic splicing variants. Significantly, our findings highlight the potential of OM treatment to improve skeletal muscle function in NEM2 patients, especially those with large reductions in nebulin levels.

Identifiants

pubmed: 38634969
doi: 10.1007/s00401-024-02726-w
pii: 10.1007/s00401-024-02726-w
doi:

Substances chimiques

Actins 0
omecamtiv mecarbil 2M19539ERK
Urea 8W8T17847W

Types de publication

Journal Article

Langues

eng

Sous-ensembles de citation

IM

Pagination

72

Subventions

Organisme : Institute of Musculoskeletal Health and Arthritis
ID : R01AR053897

Informations de copyright

© 2024. The Author(s).

Références

Muscle Nerve. 2012 Nov;46(5):730-7
pubmed: 22941678
Eur J Hum Genet. 2007 Nov;15(11):1156-62
pubmed: 17625509
Pflugers Arch. 2005 Feb;449(5):449-57
pubmed: 15688246
Physiol Rev. 2011 Oct;91(4):1447-531
pubmed: 22013216
J Clin Invest. 2014 Nov;124(11):4693-708
pubmed: 25250574
J Muscle Res Cell Motil. 2016 Dec;37(6):215-223
pubmed: 27975185
Nucleic Acids Res. 2017 Dec 1;45(21):12214-12240
pubmed: 28981879
Nat Commun. 2020 Jun 1;11(1):2699
pubmed: 32483185
J Neuromuscul Dis. 2017;4(2):99-113
pubmed: 28436394
Circ Res. 2004 Mar 5;94(4):505-13
pubmed: 14707027
J Neuropathol Exp Neurol. 2019 Feb 1;78(2):130-139
pubmed: 30597051
Nat Genet. 2016 Oct;48(10):1112-8
pubmed: 27618451
Skelet Muscle. 2015 Jan 27;5(1):1
pubmed: 25664165
Trends Biochem Sci. 1998 Jun;23(6):198-9
pubmed: 9644970
Nat Genet. 2017 Jan;49(1):46-53
pubmed: 27869827
J Gen Physiol. 2010 Aug;136(2):159-77
pubmed: 20660660
Int J Mol Sci. 2021 Aug 25;22(17):
pubmed: 34502093
Nat Genet. 2019 Nov;51(11):1645-1651
pubmed: 31659324
Brain. 2013 Jun;136(Pt 6):1718-31
pubmed: 23715096
J Muscle Res Cell Motil. 2019 Jun;40(2):111-126
pubmed: 31228046
Neuromuscul Disord. 2000 Jun;10(4-5):299-306
pubmed: 10838258
Dis Model Mech. 2012 May;5(3):389-96
pubmed: 22159874
J Med Genet. 2013 Jun;50(6):383-92
pubmed: 23572184
Nat Methods. 2022 Jun;19(6):679-682
pubmed: 35637307
Nat Commun. 2018 Jan 9;9(1):1
pubmed: 29317637
J Mol Cell Cardiol. 2010 May;48(5):859-65
pubmed: 20004664
Eur J Hum Genet. 2016 Apr;24(4):574-80
pubmed: 26197980
Mamm Genome. 2016 Oct;27(9-10):495-502
pubmed: 27215641
J Struct Biol. 2010 May;170(2):334-43
pubmed: 19944167
J Physiol (Paris). 1979;75(5):463-505
pubmed: 533865
Sci Transl Med. 2021 Nov 03;13(618):eabd3079
pubmed: 34731013
Brain. 2007 Jun;130(Pt 6):1465-76
pubmed: 17525139
Cardiovasc Res. 2003 Jul 1;59(1):86-94
pubmed: 12829179
J Cell Sci. 2010 Feb 1;123(Pt 3):384-91
pubmed: 20053633
Electrophoresis. 2003 Jun;24(11):1695-702
pubmed: 12783444
Nat Struct Mol Biol. 2009 Feb;16(2):107-13
pubmed: 19190664
Neuromuscul Disord. 2001 Sep;11(6-7):589-95
pubmed: 11525890
Skelet Muscle. 2011 Jan 24;1(1):1
pubmed: 21798079
J Cell Biol. 2006 Jun 19;173(6):905-16
pubmed: 16769824
J Struct Biol. 2002 Jan-Feb;137(1-2):119-27
pubmed: 12064939
FASEB J. 2011 Jun;25(6):1903-13
pubmed: 21350120
J Med Genet. 1997 Sep;34(9):705-13
pubmed: 9321754
Sci Adv. 2020 Nov 11;6(46):
pubmed: 33177085
FASEB J. 2011 Mar;25(3):822-9
pubmed: 21115852
Nat Rev Genet. 2012 Mar 13;13(4):227-32
pubmed: 22411467
Science. 2022 Feb 18;375(6582):eabn1934
pubmed: 35175800
PLoS One. 2018 Dec 5;13(12):e0207296
pubmed: 30517146
Science. 2011 Mar 18;331(6023):1439-43
pubmed: 21415352
Hum Mol Genet. 2015 Sep 15;24(18):5219-33
pubmed: 26123491
J Child Neurol. 2003 Mar;18(3):235-40
pubmed: 12731651
Mol Biol Cell. 2008 May;19(5):1837-47
pubmed: 18272787
Mol Biosyst. 2009 Dec;5(12):1512-26
pubmed: 20023718
Br J Pharmacol. 2015 Sep;172(18):4506-4518
pubmed: 26140433
Int J Mol Sci. 2023 Oct 12;24(20):
pubmed: 37894805
Neuromuscul Disord. 1999 Dec;9(8):564-72
pubmed: 10619714
Drugs Context. 2018 Apr 23;7:212518
pubmed: 29707029
Acta Neuropathol Commun. 2018 Jan 3;6(1):1
pubmed: 29298724
Am J Physiol Heart Circ Physiol. 2004 Apr;286(4):H1535-45
pubmed: 15020307
Ann Neurol. 2016 Jun;79(6):959-69
pubmed: 27074222
Ann Neurol. 2015 Dec;78(6):982-994
pubmed: 26418456
Nucleic Acids Res. 2011 Aug;39(14):5837-44
pubmed: 21470962
Eur J Hum Genet. 2004 Sep;12(9):744-51
pubmed: 15266303
Med Sci Sports Exerc. 2016 Jan;48(1):49-56
pubmed: 26258856
Biophys J. 2017 Aug 22;113(4):880-888
pubmed: 28834724
Neuromuscul Disord. 2002 Oct;12(7-8):674-9
pubmed: 12207937
Hum Mol Genet. 2009 Jul 1;18(13):2359-69
pubmed: 19346529
J Exp Biol. 2012 Aug 1;215(Pt 15):2551-9
pubmed: 22786631
EMBO J. 2001 Sep 3;20(17):4987-97
pubmed: 11532962
Bioinformatics. 2013 Jan 1;29(1):15-21
pubmed: 23104886
J Biol Chem. 2009 Nov 6;284(45):30889-96
pubmed: 19736309
Am J Physiol Heart Circ Physiol. 2015 Oct;309(8):H1260-70
pubmed: 26342069
BMC Genet. 2008 Jan 04;9:1
pubmed: 18173855
J Muscle Res Cell Motil. 2020 Mar;41(1):103-124
pubmed: 31982973
J Clin Invest. 2020 Feb 3;130(2):754-767
pubmed: 31671076
Neurology. 2013 Oct 1;81(14):1205-14
pubmed: 23975875
EMBO J. 2006 Aug 23;25(16):3843-55
pubmed: 16902413
Curr Opin Neurol. 2013 Oct;26(5):519-26
pubmed: 23995272
Front Physiol. 2012 Feb 27;3:37
pubmed: 22375125
Hum Genet. 2004 Aug;115(3):185-90
pubmed: 15221447
Neuromuscul Disord. 2019 Feb;29(2):97-107
pubmed: 30679003
Hum Mutat. 2014 Dec;35(12):1418-26
pubmed: 25205138
J Mol Cell Cardiol. 2022 Apr;165:103-114
pubmed: 35031281
Trends Mol Med. 2001 Aug;7(8):362-8
pubmed: 11516997
Front Genet. 2023 Jan 04;13:1087359
pubmed: 36685919
Science. 2015 Aug 28;349(6251):982-6
pubmed: 26315439
Physiol Rev. 1996 Apr;76(2):371-423
pubmed: 8618961
PLoS One. 2019 Nov 13;14(11):e0224467
pubmed: 31721788
Mol Biol Cell. 2009 Feb;20(3):834-45
pubmed: 19005210
Am J Physiol. 1991 May;260(5 Pt 1):C1060-70
pubmed: 2035614
Nucleic Acids Res. 2003 Nov 1;31(21):6321-33
pubmed: 14576320
Anal Biochem. 2003 Sep 1;320(1):149-51
pubmed: 12895480

Auteurs

Esmat Karimi (E)

Department of Cellular and Molecular Medicine, University of Arizona, Tucson, AZ, USA.

Jochen Gohlke (J)

Department of Cellular and Molecular Medicine, University of Arizona, Tucson, AZ, USA.

Mila van der Borgh (M)

Department of Cellular and Molecular Medicine, University of Arizona, Tucson, AZ, USA.

Johan Lindqvist (J)

Department of Cellular and Molecular Medicine, University of Arizona, Tucson, AZ, USA.

Zaynab Hourani (Z)

Department of Cellular and Molecular Medicine, University of Arizona, Tucson, AZ, USA.

Justin Kolb (J)

Department of Cellular and Molecular Medicine, University of Arizona, Tucson, AZ, USA.

Stacy Cossette (S)

Department of Pathology, Medical College of Wisconsin, Milwaukee, WI, USA.

Michael W Lawlor (MW)

Department of Pathology, Medical College of Wisconsin, Milwaukee, WI, USA.
Diverge Translational Science Laboratory, Milwaukee, WI, USA.

Coen Ottenheijm (C)

Department of Cellular and Molecular Medicine, University of Arizona, Tucson, AZ, USA.
Department of Physiology, Amsterdam UMC (Location VUMC), Amsterdam, Netherlands.

Henk Granzier (H)

Department of Cellular and Molecular Medicine, University of Arizona, Tucson, AZ, USA. granzier@arizona.edu.

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