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Published on: July 30, 2014
Dystrophin's central domain forms a complex filament that becomes disorganized by in-frame deletions
Olivier Delalande1, Anne-Elisabeth Molza2, Raphael Dos Santos Morais2,3,4
1From the Université de Rennes, CNRS, Institut de Génétique et Développement de Rennes-UMR 6290, 35000 Rennes, France, olivier.delalande@univ-rennes1.fr.
Abstract:
Dystrophin, encoded by the DMD gene, is critical for maintaining plasma membrane integrity during muscle contraction events. Mutations in the DMD gene disrupting the reading frame prevent dystrophin production and result in severe Duchenne muscular dystrophy (DMD); in-frame internal deletions allow production of partly functional internally deleted dystrophin and result in less severe Becker muscular dystrophy (BMD). Many known BMD deletions occur in dystrophin's central domain, generally considered to be a monotonous rod-shaped domain based on the knowledge of spectrin family proteins. However, the effects caused by these deletions, ranging from asymptomatic to severe BMD, argue against the central domain serving only as a featureless scaffold. We undertook structural studies combining small-angle X-ray scattering and molecular modeling in an effort to uncover the structure of the central domain, as dystrophin has been refractory to characterization. We show that this domain appears to be a tortuous and complex filament that is profoundly disorganized by the most severe BMD deletion (loss of exons 45-47). Despite the preservation of large parts of the binding site for neuronal nitric oxide synthase (nNOS) in this deletion, computational approaches failed to recreate the association of dystrophin with nNOS. This observation is in agreement with a strong decrease of nNOS immunolocalization in muscle biopsies, a parameter related to the severity of BMD phenotypes. The structural description of the whole dystrophin central domain we present here is a first necessary step to improve the design of microdystrophin constructs toward the goal of a successful gene therapy for DMD.
Insights
The dystrophin central domain, crucial for muscle membrane integrity, is a complex filament, not a simple scaffold. Its disorganization by specific mutations correlates with Becker muscular dystrophy severity and reduced nNOS binding.
Area of Science:
- Biochemistry
- Structural Biology
- Genetics
Background:
- Dystrophin, encoded by the DMD gene, is essential for muscle plasma membrane integrity.
- Duchenne muscular dystrophy (DMD) results from mutations preventing dystrophin production.
- Becker muscular dystrophy (BMD) arises from in-frame deletions causing partially functional dystrophin.
Purpose of the Study:
- To elucidate the structure of the dystrophin central domain, previously poorly characterized.
- To investigate how BMD-associated deletions affect the central domain's structure and function.
- To understand the relationship between structural changes, nNOS binding, and BMD severity.
Main Methods:
- Employed small-angle X-ray scattering (SAXS) to study the dystrophin central domain structure.
- Utilized molecular modeling and computational approaches to analyze protein structure and interactions.
- Examined muscle biopsies for nNOS immunolocalization to correlate with disease phenotype.
Main Results:
- The dystrophin central domain is revealed as a tortuous, complex filament, challenging prior assumptions.
- A severe BMD deletion (exons 45-47) profoundly disorganized this filament.
- Despite preserved binding sites, computational models failed to restore dystrophin-nNOS association after deletion, mirroring reduced nNOS in biopsies.
Conclusions:
- The dystrophin central domain's complex filamentous structure is critical for its function.
- Structural disruption of the central domain directly impacts nNOS binding and correlates with BMD severity.
- This structural insight is foundational for designing improved micro-dystrophin constructs for DMD gene therapy.
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