FLNC myofibrillar myopathy results from impaired autophagy and protein insufficiency

Avnika A Ruparelia1, Viola Oorschot2, Georg Ramm3

  • 1School of Biological Sciences.

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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