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Deficiency of muscular dystrophy–related gene JAG2 causes NOTCH signaling dysfunction in muscle stem cells
Minoru Tanaka, Nam Chul Kim, Isabelle Draper, Hannah R. Littel, Mekala Gunasekaran, Johnnie Turner, Natalya M. Wells, Qasim Mujteba, Yoko Asakura, Peter B. Kang, Atsushi Asakura
Minoru Tanaka, Nam Chul Kim, Isabelle Draper, Hannah R. Littel, Mekala Gunasekaran, Johnnie Turner, Natalya M. Wells, Qasim Mujteba, Yoko Asakura, Peter B. Kang, Atsushi Asakura
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Research Article Development Muscle biology

Deficiency of muscular dystrophy–related gene JAG2 causes NOTCH signaling dysfunction in muscle stem cells

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Abstract

We previously identified a muscular dystrophy caused by biallelic variants in JAGGED2 (JAG2), whose protein product, JAG2, is a canonical NOTCH ligand. However, the disease mechanism remains unclear, particularly with respect to muscle stem cell (muscle satellite cell/MuSC) function and muscle regeneration. We examined the consequences of JAG2 deficiency and modeled pathogenic JAG2 variants in vitro and in vivo, the latter in mouse and fly models and with particular attention to the MuSC–muscle endothelial cell (MuEC) niche. We found that both Jag2 deficiency and overexpression of pathogenic JAG2 variants impaired NOTCH signaling and myogenic self-renewal and differentiation. Hypomorphic Jag2 mutant (Jag2sm) mice displayed depleted MuSCs, corresponding with impaired muscle regeneration in those mice. Coculture experiments and the examination of cell type–specific Jag2 conditional knockout mice demonstrated that MuEC-specific Jag2 knockout resulted in reduced MuSC self-renewal, while MuSC-specific Jag2 knockout resulted in reduced myogenic differentiation. Human reference JAG2, but not human pathogenic variants of JAG2, rescued the deficiency of Serrate, the Drosophila ortholog of JAG2. Therefore, pathogenic variants in JAG2 impair muscle development and regeneration through disrupted cell-autonomous cis-inhibition and nonautonomous trans-activation involving NOTCH signaling dysfunction. Our findings indicate that optimizing JAG2-mediated NOTCH signaling is a potential therapeutic approach for JAG2-related muscular dystrophy.

Authors

Minoru Tanaka, Nam Chul Kim, Isabelle Draper, Hannah R. Littel, Mekala Gunasekaran, Johnnie Turner, Natalya M. Wells, Qasim Mujteba, Yoko Asakura, Peter B. Kang, Atsushi Asakura

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Figure 6

Human JAG2 suppresses NOTCH signaling and promotes myogenesis.

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Human JAG2 suppresses NOTCH signaling and promotes myogenesis.
(A) Luc v...
(A) Luc vectors (Hes1-467-Luc and Hes1-467-Mut-Luc) were used for NOTCH activities. (B) Homozygous Jag2sm MuSCs show higher Hes1-467-Luc activity versus WT MuSCs. Luc activities were diminished by mutation of the RBP-J binding site or by treatment with DAPT. (C) Expression of Notch1-4 (N1-4) increased Hes1-467-Luc activities that were suppressed by human JAG2 in WT and homozygous Jag2sm MuSCs. (D) Human reference JAG2 but not pathogenic JAG2 variants suppressed Luc activities. (E) 4R-SV-Luc contains 4x E-boxes for consensus binding sites for MYOD. (F) Expression of MyoD and human JAG2 activates 4R-SV-Luc in MuSCs. (G)MyoD promoted MyHC+ myogenic differentiation in MuSCs in growth (G) and differentiation conditions (days 1 and 3). (H) HES1 expression is higher in homozygous Jag2sm versus WT MuSCs but downregulated in MyHC+ myocytes (arrows). (I) Western blotting for HES1 in MuSCs under growth and differentiation day 1 and 3 conditions. GAPDH was used as an internal control for loading. (J) Western blotting showed increased amounts of HES1 in homozygous Jag2sm MuSCs versus WT MuSCs. (K) The diagram shows a DuoLink PLA for a protein complex of JAG2 and NOTCH1, NOTCH2, or NOTCH3 within MuSCs. Anti-JAG2 and anti–NOTCH1–3 antibodies were used followed by secondary IgG with (+) and (–) strands of oligo DNAs. Red fluorescence tags were incorporated with successful ligation. (L) In DuoLink labeling, patchy red complexes were observed around the cell membrane but not in the control (no antibodies). (M) Quantification of DuoLink+ intensity was performed. DAPI stained all nuclei (blue). Scale bars: 100 μm (H), 10 μm (L). One-way ANOVA followed by Bonferroni’s post hoc tests and unpaired 2-tailed Student’s t tests; *P < 0.05, **P < 0.01, and ***P < 0.001. Data are shown as the mean ± SEM; n = 4 (B–G), n = 3 (J), and n = 5 (M) biological replicates.

Copyright © 2026 American Society for Clinical Investigation
ISSN: 0021-9738 (print), 1558-8238 (online)

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