Literature DB >> 33861953

A form of muscular dystrophy associated with pathogenic variants in JAG2.

Sandra Coppens1, Alison M Barnard2, Sanna Puusepp3, Sander Pajusalu3, Katrin Õunap3, Dorianmarie Vargas-Franco4, Christine C Bruels4, Sandra Donkervoort5, Lynn Pais6, Katherine R Chao6, Julia K Goodrich6, Eleina M England7, Ben Weisburd6, Vijay S Ganesh8, Sanna Gudmundsson7, Anne O'Donnell-Luria7, Mait Nigul9, Pilvi Ilves10, Payam Mohassel5, Teepu Siddique11, Margherita Milone12, Stefan Nicolau12, Reza Maroofian13, Henry Houlden13, Michael G Hanna13, Ros Quinlivan13, Mehran Beiraghi Toosi14, Ehsan Ghayoor Karimiani15, Sabine Costagliola16, Nicolas Deconinck17, Hazim Kadhim18, Erica Macke19, Brendan C Lanpher20, Eric W Klee20, Anna Łusakowska21, Anna Kostera-Pruszczyk21, Andreas Hahn22, Bertold Schrank23, Ichizo Nishino24, Masashi Ogasawara24, Rasha El Sherif25, Tanya Stojkovic26, Isabelle Nelson27, Gisèle Bonne27, Enzo Cohen27, Anne Boland-Augé28, Jean-François Deleuze28, Yao Meng29, Ana Töpf30, Catheline Vilain1, Christina A Pacak31, Marie L Rivera-Zengotita32, Carsten G Bönnemann5, Volker Straub30, Penny A Handford29, Isabelle Draper33, Glenn A Walter34, Peter B Kang35.   

Abstract

JAG2 encodes the Notch ligand Jagged2. The conserved Notch signaling pathway contributes to the development and homeostasis of multiple tissues, including skeletal muscle. We studied an international cohort of 23 individuals with genetically unsolved muscular dystrophy from 13 unrelated families. Whole-exome sequencing identified rare homozygous or compound heterozygous JAG2 variants in all 13 families. The identified bi-allelic variants include 10 missense variants that disrupt highly conserved amino acids, a nonsense variant, two frameshift variants, an in-frame deletion, and a microdeletion encompassing JAG2. Onset of muscle weakness occurred from infancy to young adulthood. Serum creatine kinase (CK) levels were normal or mildly elevated. Muscle histology was primarily dystrophic. MRI of the lower extremities revealed a distinct, slightly asymmetric pattern of muscle involvement with cores of preserved and affected muscles in quadriceps and tibialis anterior, in some cases resembling patterns seen in POGLUT1-associated muscular dystrophy. Transcriptome analysis of muscle tissue from two participants suggested misregulation of genes involved in myogenesis, including PAX7. In complementary studies, Jag2 downregulation in murine myoblasts led to downregulation of multiple components of the Notch pathway, including Megf10. Investigations in Drosophila suggested an interaction between Serrate and Drpr, the fly orthologs of JAG1/JAG2 and MEGF10, respectively. In silico analysis predicted that many Jagged2 missense variants are associated with structural changes and protein misfolding. In summary, we describe a muscular dystrophy associated with pathogenic variants in JAG2 and evidence suggests a disease mechanism related to Notch pathway dysfunction.
Copyright © 2021 American Society of Human Genetics. All rights reserved.

Entities:  

Keywords:  JAG2, Jagged2, Serrate, Notch signaling pathway, muscular dystrophy, muscle MRI, POGLUT1, MEGF10, exome sequencing, satellite cell

Mesh:

Substances:

Year:  2021        PMID: 33861953      PMCID: PMC8206160          DOI: 10.1016/j.ajhg.2021.03.020

Source DB:  PubMed          Journal:  Am J Hum Genet        ISSN: 0002-9297            Impact factor:   11.025


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