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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
Abstract:
Mutations in FLNC cause two distinct types of myopathy. Disease associated with mutations in filamin C rod domain leading to expression of a toxic protein presents with progressive proximal muscle weakness and shows focal destructive lesions of polymorphous aggregates containing desmin, myotilin and other proteins in the affected myofibres; these features correspond to the profile of myofibrillar myopathy. The second variant associated with mutations in the actin-binding domain of filamin C is characterized by weakness of distal muscles and morphologically by non-specific myopathic features. A frameshift mutation in the filamin C rod domain causing haploinsufficiency was also found responsible for distal myopathy with some myofibrillar changes but no protein aggregation typical of myofibrillar myopathies. Controversial data accumulating in the literature require re-evaluation and comparative analysis of phenotypes associated with the position of the FLNC mutation and investigation of the underlying disease mechanisms. This is relevant and necessary for the refinement of diagnostic criteria and developing therapeutic approaches. We identified a p.W2710X mutation in families originating from ethnically diverse populations and re-evaluated a family with a p.V930_T933del mutation. Analysis of the expanded database allows us to refine clinical and myopathological characteristics of myofibrillar myopathy caused by mutations in the rod domain of filamin C. Biophysical and biochemical studies indicate that certain pathogenic mutations in FLNC cause protein misfolding, which triggers aggregation of the mutant filamin C protein and subsequently involves several other proteins. Immunofluorescence analyses using markers for the ubiquitin-proteasome system and autophagy reveal that the affected muscle fibres react to protein aggregate formation with a highly increased expression of chaperones and proteins involved in proteasomal protein degradation and autophagy. However, there is a noticeably diminished efficiency of both the ubiquitin-proteasome system and autophagy that impairs the muscle capacity to prevent the formation or mediate the degradation of aggregates. Transfection studies of cultured muscle cells imitate events observed in the patient's affected muscle and therefore provide a helpful model for testing future therapeutic strategies.
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.