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DNA Electroporation, Isolation and Imaging of Myofibers
Published on: December 23, 2015
Divergent molecular effects of desmin mutations on protein assembly in myofibrillar myopathy
Johannes Levin1, Stefanie Bulst, Christian Thirion
1Klinikum Grosshadern, Department of Neurology, Ludwig-Maximilians-University of Munich, Munich, Germany.
Abstract:
Mutations in the intermediate filament protein desmin cause a distinct class of myofibrillar myopathies that are characterized by deposition of aggregated desmin. To assess the effect of different disease-associated mutations at the molecular level, we applied confocal single-particle fluorescence spectroscopy. We studied the de novo aggregation properties of desmin in vitro and the aggregation state of desmin in homogenates of transfected cells rendering purification unnecessary. We detected divergent assembly patterns for 3 different desmin missense mutations. R350P-desmin showed a strong inhibition of assembly formation that was associated with a reduced level of tetramers and an increase in dimers in native cell extracts. E413K-desmin formed hyperstable tetramers. For R454W-desmin, there were subtle effects on assembly at the dimer and tetramer levels by single-particle spectroscopy that are not detectable by classical fluorescence microscopy. We also found that R350P-desmin efficiently interacts with the wild-type protein resulting in a dominant-negative effect on desmin assembly. Taken together, these results provide a molecular basis for a detailed functional classification of mutations in the desmin gene. The findings may also have implications for diagnostic and therapeutic strategies for primary desminopathies based on the different molecular events that disrupt physiological filament formation.
Insights
Different desmin mutations cause distinct molecular changes in myofibrillar myopathies. Understanding these changes, like R350P-desmin’s dominant-negative effect, aids in classifying desminopathies and developing targeted therapies.
Area of Science:
- Biochemistry
- Cell Biology
- Genetics
Background:
- Mutations in the intermediate filament protein desmin lead to myofibrillar myopathies, characterized by desmin aggregation.
- Understanding the molecular impact of specific desmin mutations is crucial for disease classification and treatment.
Purpose of the Study:
- To investigate the de novo aggregation properties of desmin with disease-associated mutations using single-particle fluorescence spectroscopy.
- To analyze the aggregation state of desmin in transfected cells to understand molecular assembly defects.
Main Methods:
- Confocal single-particle fluorescence spectroscopy was applied to study desmin assembly in vitro and in cell homogenates.
- Analysis focused on dimer and tetramer formation and overall assembly patterns for different desmin mutants.
Main Results:
- Three missense mutations (R350P, E413K, R454W) displayed distinct assembly patterns.
- R350P-desmin showed inhibited assembly, reduced tetramers, increased dimers, and a dominant-negative effect on wild-type desmin.
- E413K-desmin formed hyperstable tetramers, while R454W-desmin had subtle effects on dimer/tetramer assembly.
Conclusions:
- The study provides a molecular basis for functionally classifying desmin gene mutations.
- Findings offer insights into diagnostic and therapeutic strategies for desminopathies based on distinct molecular disruptions of filament formation.
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