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In Situ Immunofluorescent Staining of Autophagy in Muscle Stem Cells
Published on: June 12, 2017
FLNC myofibrillar myopathy results from impaired autophagy and protein insufficiency
Avnika A Ruparelia1, Viola Oorschot2, Georg Ramm3
1School of Biological Sciences.
Abstract:
Myofibrillar myopathy is a progressive muscle disease characterized by the disintegration of muscle fibers and formation of protein aggregates. Causative mutations have been identified in nine genes encoding Z-disk proteins, including the actin binding protein filamin C (FLNC). To investigate the mechanism of disease in FLNCW2710X myopathy we overexpressed fluorescently tagged FLNC or FLNCW2710X in zebrafish. Expression of FLNCW2710X causes formation of protein aggregates but surprisingly, our studies reveal that the mutant protein localizes correctly to the Z-disk and is capable of rescuing the fiber disintegration phenotype that results from FLNC knockdown. This demonstrates that the functions necessary for muscle integrity are not impaired, and suggests that it is the formation of protein aggregates and subsequent sequestration of FLNC away from the Z-disk that results in myofibrillar disintegration. Similar to those found in patients, the aggregates in FLNCW2710X expressing fish contain the co-chaperone BAG3. FLNC is a target of the BAG3-mediated chaperone assisted selective autophagy (CASA) pathway and therefore we investigated its role, and the role of autophagy in general, in clearing protein aggregates. We reveal that despite BAG3 recruitment to the aggregates they are not degraded via CASA. Additionally, recruitment of BAG3 is sufficient to block alternative autophagy pathways which would otherwise clear the aggregates. This blockage can be relieved by reducing BAG3 levels or by stimulating autophagy. This study therefore identifies both BAG3 reduction and autophagy promotion as potential therapies for FLNCW2710X myofibrillar myopathy, and identifies protein insufficiency due to sequestration, compounded by impaired autophagy, as the cause.
Insights
Protein aggregates in filamin C (FLNC) myopathy block muscle repair. Reducing BAG3 or boosting autophagy clears these aggregates, offering potential therapies for this progressive muscle disease.
Area of Science:
- Muscle biology
- Genetics
- Cellular pathology
Background:
- Myofibrillar myopathy is a progressive muscle disorder.
- Mutations in filamin C (FLNC) cause a subset of these myopathies.
- FLNC is a Z-disk protein crucial for muscle integrity.
Purpose of the Study:
- Investigate the disease mechanism of FLNCW2710X myopathy.
- Determine the role of protein aggregates and BAG3 in FLNC myopathy.
- Explore therapeutic strategies for FLNC myopathy.
Main Methods:
- Overexpression of FLNC and FLNCW2710X in zebrafish models.
- Confocal microscopy to analyze protein localization and aggregate formation.
- Assessment of autophagy pathways, including chaperone-assisted selective autophagy (CASA).
Main Results:
- FLNCW2710X forms aggregates but correctly localizes to the Z-disk.
- Aggregates sequester FLNC, leading to myofibrillar disintegration.
- BAG3 is recruited to aggregates, blocking both CASA and other autophagy pathways.
- Reducing BAG3 or enhancing autophagy clears aggregates.
Conclusions:
- FLNC myopathy is caused by protein sequestration and impaired autophagy.
- BAG3 sequestration of FLNC is a key pathogenic event.
- Therapeutic strategies include BAG3 reduction and autophagy promotion.
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