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Pathophysiology of protein aggregation and extended phenotyping in filaminopathy

Rudolf A Kley1, Piraye Serdaroglu-Oflazer, Yvonne Leber

  • 1Department of Neurology, Neuromuscular Centre Ruhrgebiet, University Hospital Bergmannsheil, Ruhr-University Bochum, 44789 Bochum, Germany. rudolf.kley@rub.de

Insights

Mutations in the FLNC gene cause distinct myopathies. This study refines understanding of myofibrillar myopathy linked to FLNC rod domain mutations, revealing impaired protein degradation pathways.

Area of Science:

  • Genetics and Molecular Biology
  • Neurology
  • Cell Biology

Background:

  • Mutations in the Filamin C (FLNC) gene are associated with distinct myopathies, including myofibrillar myopathy (MFM) and distal myopathy.
  • Phenotypic variability and disease mechanisms require further investigation for accurate diagnosis and therapeutic development.

Purpose of the Study:

  • To re-evaluate and refine the clinical and myopathological characteristics of MFM caused by FLNC rod domain mutations.
  • To investigate the underlying disease mechanisms, focusing on protein misfolding, aggregation, and cellular degradation pathways.

Main Methods:

  • Analysis of an expanded patient database with identified FLNC mutations (p.W2710X and p.V930_T933del).
  • Biophysical and biochemical studies to assess protein misfolding and aggregation.
  • Immunofluorescence analyses using markers for the ubiquitin-proteasome system and autophagy.
  • Transfection studies in cultured muscle cells.

Main Results:

  • Refined clinical and myopathological profiles for FLNC-associated MFM.
  • Demonstrated that pathogenic FLNC mutations cause protein misfolding, leading to aggregation of FLNC and other proteins.
  • Observed increased expression of chaperones and degradation proteins, but diminished efficiency of the ubiquitin-proteasome system and autophagy in affected muscle fibers.
  • Transfection studies successfully mimicked patient-observed events.

Conclusions:

  • FLNC rod domain mutations cause MFM through protein misfolding and aggregation, overwhelming cellular degradation capacity.
  • Impaired ubiquitin-proteasome system and autophagy contribute to aggregate accumulation in muscle.
  • Cultured muscle cell models offer a platform for testing therapeutic strategies for FLNC-related myopathies.

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