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Autophagy-Lysosomal Dysfunction as a Converging Mechanism of Cardiomyopathy in Lysosomal Storage Disorders: From
Chung-Lin Lee1,2,3,4,5, Chih-Kuang Chuang6,7, Ya-Hui Chang1,3
1Department of Pediatrics, MacKay Memorial Hospital, No. 92, Sec. 2, Zhongshan N. Rd., Taipei 104217, Taiwan.
Insights
Cardiac diseases in lysosomal storage disorders (LSDs) stem from a common autophagy-lysosome system breakdown in heart cells. This unified view impacts monitoring and directs new therapies for conditions like Fabry, Pompe, and Danon disease.
Area of Science:
- Cardiology
- Genetics
- Cell Biology
Background:
- Cardiac disease is a major cause of death in lysosomal storage disorders (LSDs).
- Current treatments often address specific substrate accumulation, overlooking shared cardiac pathology.
- The autophagy-lysosome system is crucial for cardiomyocyte health.
Purpose of the Study:
- To propose a unified mechanistic framework for cardiac dysfunction in LSDs.
- To re-evaluate current and future therapeutic strategies based on shared pathobiology.
- To identify biomarkers reflecting lysosomal and autophagic dysfunction.
Main Methods:
- Review of existing literature on Fabry, Pompe, Danon, and mucopolysaccharidosis (MPS) diseases.
- Analysis of the role of the autophagy-lysosome system, mTORC1, and TFEB in cardiac pathology.
- Examination of treatment outcomes for enzyme replacement and gene therapy.
Main Results:
- Cardiac dysfunction in LSDs arises from impaired autophagy-lysosome function, leading to substrate and mitochondrial accumulation.
- Danon disease exemplifies primary autophagic flux defects, while Pompe and Fabry diseases show upstream impairments converging downstream.
- Existing therapies may not fully resolve autophagic and mitochondrial damage.
Conclusions:
- Viewing LSD cardiomyopathies as variations of a single pathobiology reframes understanding and treatment.
- Targeting the autophagy-lysosome system and TFEB offers potential for more effective therapies.
- Development of biomarkers for autophagic and lysosomal dysfunction is critical.
Abstract:
Cardiac disease is a leading cause of morbidity and early death across several lysosomal storage disorders (LSDs); however, the cardiomyopathies of Fabry, Pompe, and Danon disease are still largely treated as separate, substrate-specific disorders. We argue that they are better understood as variations on a single theme: the breakdown of the autophagy-lysosome system within cardiomyocytes. In the healthy heart, this system clears damaged proteins and organelles and is regulated by mTORC1 and the master regulator TFEB. Once lysosomal degradation or autophagosome-lysosome fusion fails, undegraded substrates and defective mitochondria accumulate, driving hypertrophy, interstitial fibrosis, and conduction disease. Danon disease, resulting from the loss of LAMP2, is the clearest example of a primary defect in autophagic flux, whereas the glycogen storage of Pompe disease and the globotriaosylceramide accumulation of Fabry disease impair flux through different upstream mechanisms that converge on the same downstream injury. The same framework extends to other storage disorders with cardiac involvement, such as mucopolysaccharidosis (MPS). We trace this shared pathobiology from molecule to bedside, examine biomarkers that reflect lysosomal and autophagic dysfunction rather than storage alone, and re-examine treatment in that light: why enzyme replacement therapy corrects substrate accumulation but leaves much of the autophagic and mitochondrial damage unresolved, and why gene therapy-particularly AAV9-LAMP2B for Danon disease-together with autophagy- and TFEB-directed strategies may help close that gap. Viewing these disorders through a single mechanistic lens reshapes how we monitor them and where future therapies should be directed.
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