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DAB2 in LGMD R2: a molecular link between disease progression and lipid dysregulation
Celine Bruge, Nathalie Bourg, Emilie Pellier, Quentin Miagoux, Manon Benabides, Noella Grossi, Hassan Hayat, Margot Jarrige, Helene Polveche, Valeria Agostini, Anthony Brureau, Stephane Vassilopoulos, Teresinha Evangelista, Gorka Fernández-Eulate, Tanya Stojkovic, Isabelle Richard, Xavier Nissan
Celine Bruge, Nathalie Bourg, Emilie Pellier, Quentin Miagoux, Manon Benabides, Noella Grossi, Hassan Hayat, Margot Jarrige, Helene Polveche, Valeria Agostini, Anthony Brureau, Stephane Vassilopoulos, Teresinha Evangelista, Gorka Fernández-Eulate, Tanya Stojkovic, Isabelle Richard, Xavier Nissan
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Research Article Cell biology Muscle biology

DAB2 in LGMD R2: a molecular link between disease progression and lipid dysregulation

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Abstract

Limb-girdle muscular dystrophy R2 (LGMD R2) is an autosomal recessive disorder caused by dysferlin deficiency, leading to progressive muscle weakness and wasting. The lack of reliable clinical biomarkers has limited disease monitoring and therapeutic evaluation. Here, we identified Disabled-2 (DAB2) as a molecular and clinical indicator of disease state in LGMD R2. Transcriptomic profiling revealed a significant upregulation of DAB2 in induced pluripotent stem cell–derived (iPSC-derived) myotubes from patients, a finding validated in muscle biopsies from 14 dysferlin-deficient individuals and in dysferlin-deficient Bla/J mice, where DAB2 levels increased with disease progression. Importantly, AAV-mediated expression of full-length dysferlin restored DAB2 levels, supporting its value as a dynamic readout of disease activity for both disease monitoring and therapeutic response. Given the established role of DAB2 in clathrin-mediated endocytosis, particularly in LDL receptor internalization and cholesterol homeostasis, and the pathological lipid accumulation reported in LGMD R2, we investigated its contribution to lipid dysregulation. High DAB2 expression paralleled lipid deposition in patient muscles, iPSC-derived myotubes, and mouse tissue, whereas siRNA-mediated DAB2 knockdown reduced lipid accumulation in LGMD R2 myotubes. Collectively, these findings suggest that DAB2 functions as a mechanistic link between dysferlin deficiency, altered lipid handling, and disease severity, and they highlight its potential as a prognostic marker and therapeutic response measure for LGMD R2.

Authors

Celine Bruge, Nathalie Bourg, Emilie Pellier, Quentin Miagoux, Manon Benabides, Noella Grossi, Hassan Hayat, Margot Jarrige, Helene Polveche, Valeria Agostini, Anthony Brureau, Stephane Vassilopoulos, Teresinha Evangelista, Gorka Fernández-Eulate, Tanya Stojkovic, Isabelle Richard, Xavier Nissan

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Figure 1

Phenotypic features of LGMD R2 hiPSC-derived skeletal muscle cells reveal dysferlin deficiency.

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Phenotypic features of LGMD R2 hiPSC-derived skeletal muscle cells revea...
(A) Schematic representation of the skeletal myogenic differentiation protocol. Arrows indicate key stages where specific phenotypes are observed. Growth factors and cytokines used at each differentiation stage are specified, along with the progression of selected gene expression. Schematic created with BioRender. (B and C) Immunoblot analysis of dysferlin expression in LGMD R2 and control hiPSC-derived myoblasts (B) and myotubes (C). GAPDH is used as a loading control. (D and E) Immunostaining of dysferlin (green) in LGMD R2 and control myoblasts (D) and myotubes (E). Nuclei were counterstained with Hoechst (blue). Insets show magnified views of dysferlin staining in myotubes. Scale bar: 20 μm. AA, ascorbic acid; C, CHIR99021; Dex, dexamethasone; E, epidermal growth factor; F, basic fibroblast growth factor; Fe, fetuin; H, hepatocyte growth factor; HS, horse serum; I, insulin; IG, insulin-like growth factor; N, necrosulfonamide; O, oncostatin; P, platelet-derived growth factor; SB, SB431542; hiPSC, human induced pluripotent stem cells.

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ISSN 2379-3708

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