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Muscle meets Lysosomes: emerging strategies in muscular dystrophy
Abbass Jaber1,2, David Israeli1,2
1Progressive Muscular Dystrophy unit, Genethon, Evry, France.
Abstract:
Duchenne muscular dystrophy (DMD) is caused by the loss of DMD (dystrophin), leading to sarcolemmal fragility and progressive muscle degeneration. Although adeno-associated viral (AAV) microdystrophin (µDMD) therapies have advanced clinically, their benefits remain partial, highlighting the need to identify secondary cellular defects that limit therapeutic efficacy. In our recent study, we demonstrated that lysosomal dysfunction is a conserved, intrinsic, and persistent feature of DMD pathology. Using mouse, canine, and human dystrophic muscle, we show marked lysosomal membrane permeabilization (LMP), impaired acidification, defective proteolysis, and inefficient membrane repair, all hallmarks of compromised lysosomal integrity. Cholesterol accumulation within dystrophic myofibers further exacerbates these defects, linking lipid dysregulation to lysosomal injury and accelerated muscle degeneration. We find macroautophagy/autophagy impairment in DMD stems in part from reduced autophagosome-lysosome fusion, reframing autophagy failure as a downstream consequence of lysosomal damage. µDMD gene therapy only partially corrects these abnormalities and does not fully restore lysosomal stability. In contrast, combining µDMD with the lysosome-activating disaccharide trehalose produces synergistic benefits, improving muscle strength, architecture, and molecular signatures beyond either treatment alone. These findings position lysosomal dysfunction as a central driver of DMD pathophysiology and support therapeutic strategies that pair gene restoration with lysosomal enhancement.Abbreviation: AAV: adeno-associated virus; DAGC: DMD-associated glycoprotein complex; DMD: Duchenne muscular dystrophy; FDA: Food and Drug Administration; LMP: lysosome membrane permeabilization; MTOR: mechanistic target of rapamycin kinase; µDMD: microdystrophin.
Insights
Lysosomal dysfunction drives Duchenne muscular dystrophy (DMD) progression, impairing muscle repair. Combining gene therapy with trehalose offers synergistic benefits for DMD treatment.
Area of Science:
- Muscle degeneration
- Cellular pathology
- Lysosome biology
Background:
- Duchenne muscular dystrophy (DMD) results from dystrophin loss, causing muscle fragility and degeneration.
- Current adeno-associated viral (AAV) micro-dystrophin (µDMD) therapies show limited efficacy, suggesting other cellular defects.
- Lysosomal dysfunction is a persistent feature in DMD pathology across species.
Purpose of the Study:
- Investigate lysosomal defects in DMD.
- Determine the role of cholesterol in lysosomal damage.
- Assess the impact of lysosomal dysfunction on autophagy.
- Evaluate combined µDMD gene therapy and trehalose treatment.
Main Methods:
- Analysis of dystrophic muscle from mouse, canine, and human models.
- Assessment of lysosomal membrane permeabilization (LMP), acidification, and proteolysis.
- Measurement of cholesterol levels in myofibers.
- Evaluation of autophagosome-lysosome fusion.
- Comparison of µDMD therapy alone versus combined therapy with trehalose.
Main Results:
- DMD muscle exhibits significant lysosomal membrane permeabilization, impaired acidification, defective proteolysis, and poor membrane repair.
- Cholesterol accumulation exacerbates lysosomal injury and muscle degeneration.
- Autophagy impairment in DMD is linked to reduced autophagosome-lysosome fusion, a consequence of lysosomal damage.
- µDMD gene therapy partially corrects these defects but does not fully restore lysosomal stability.
- Combining µDMD therapy with trehalose yields synergistic improvements in muscle strength, architecture, and molecular markers.
Conclusions:
- Lysosomal dysfunction is a key driver of Duchenne muscular dystrophy pathophysiology.
- Therapeutic strategies should target both gene restoration and lysosomal function enhancement.
- Combined gene therapy and lysosomal activation (e.g., with trehalose) show promise for improved DMD treatment outcomes.
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