Two zebrafish cacna1s loss-of-function variants provide models of mild and severe CACNA1S-related myopathy

Author:

Endo Yukari1,Groom Linda2,Wang Sabrina M1,Pannia Emanuela13ORCID,Griffiths Nigel W4,Van Gennip Jenica L M4,Ciruna Brian45,Laporte Jocelyn67,Dirksen Robert T2,Dowling James J1589ORCID

Affiliation:

1. Program for Genetics and Genome Biology, Hospital for Sick Children , 686 Bay Street, Toronto, ON M5G 0A4 , Canada

2. Department of Pharmacology and Physiology, University of Rochester Medical Center , 601 Elmwood Ave, Rochester, NY 14642 , United States

3. Zebrafish Genetics and Disease Models Core Facility, Hospital for Sick Children , 686 Bay Street, Toronto, ON M5G 0A4 , Canada

4. Program in Developmental and Stem Cell Biology, Hospital for Sick Children , 686 Bay Street, Toronto, ON M5G 0A4 , Canada

5. Department of Molecular Genetics, University of Toronto , 1 King's College Circle, Toronto, ON M5S 1A8 , Canada

6. Institut de Génétique et de Biologie Moléculaire et Cellulaire (IGBMC) , Inserm U1258, Cnrs UMR7104, , 1 Rue Laurent Fries, Illkirch 67400 , France

7. Université de Strasbourg , Inserm U1258, Cnrs UMR7104, , 1 Rue Laurent Fries, Illkirch 67400 , France

8. Division of Neurology, Hospital for Sick Children , 555 University Ave, Toronto, ON M5G 1X8 , Canada

9. Department of Paediatrics, University of Toronto , 555 University Ave, Toronto, ON M5G 1X8 , Canada

Abstract

Abstract CACNA1S-related myopathy, due to pathogenic variants in the CACNA1S gene, is a recently described congenital muscle disease. Disease associated variants result in loss of gene expression and/or reduction of Cav1.1 protein stability. There is an incomplete understanding of the underlying disease pathomechanisms and no effective therapies are currently available. A barrier to the study of this myopathy is the lack of a suitable animal model that phenocopies key aspects of the disease. To address this barrier, we generated knockouts of the two zebrafish CACNA1S paralogs, cacna1sa and cacna1sb. Double knockout fish exhibit severe weakness and early death, and are characterized by the absence of Cav1.1 α1 subunit expression, abnormal triad structure, and impaired excitation-contraction coupling, thus mirroring the severe form of human CACNA1S-related myopathy. A double mutant (cacna1sa homozygous, cacna1sb heterozygote) exhibits normal development, but displays reduced body size, abnormal facial structure, and cores on muscle pathologic examination, thus phenocopying the mild form of human CACNA1S-related myopathy. In summary, we generated and characterized the first cacna1s zebrafish loss-of-function mutants, and show them to be faithful models of severe and mild forms of human CACNA1S-related myopathy suitable for future mechanistic studies and therapy development.

Funder

Canadian Institutes of Health Research

National Institutes of Health

Publisher

Oxford University Press (OUP)

Subject

Genetics (clinical),Genetics,Molecular Biology,General Medicine

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