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Published on: August 8, 2022
Structural destabilization of tropomyosin induced by the cardiomyopathy-linked mutation R21H
Thu Ly1, Inna Krieger2, Dmitri Tolkatchev1
1Voiland School of Chemical Engineering and Bioengineering, Washington State University, Pullman, Washington.
Insights
The R21H mutation in tropomyosin destabilizes its coiled-coil structure, impacting muscle contraction regulation. This genetic mutation, linked to hypertrophic cardiomyopathy, reduces binding affinity to leiomodin, potentially altering thin filament dynamics.
Area of Science:
- Biochemistry
- Molecular Biology
- Cardiovascular Research
Background:
- Hypertrophic cardiomyopathy (HCM) is a genetic cardiac disease linked to tropomyosin mutations.
- Tropomyosin's coiled-coil structure is vital for muscle contraction regulation.
Purpose of the Study:
- To investigate the R21H mutation's effects on tropomyosin structure and interactions.
- To understand the molecular mechanisms underlying HCM caused by this mutation.
Main Methods:
- Circular dichroism (CD) and isothermal titration calorimetry (ITC) were used to assess structural integrity and binding affinity.
- Molecular dynamics (MD) simulations based on a crystal structure were employed for in silico analysis.
Main Results:
- The R21H mutation significantly destabilized the tropomyosin coiled-coil structure (αTM1a1-28 Zip).
- While binding to tropomodulin and leiomodin persisted, affinity for leiomodin decreased approximately 30-fold.
- In silico simulations indicated disruption of the coiled-coil structure, potentially affecting thin filament dynamics.
Conclusions:
- The R21H mutation disrupts tropomyosin's coiled-coil structure and significantly reduces its binding affinity to leiomodin.
- These molecular changes likely interfere with thin filament length regulation, contributing to hypertrophic cardiomyopathy pathogenesis.
Abstract:
The missense mutation R21H in striated muscle tropomyosin is associated with hypertrophic cardiomyopathy, a genetic cardiac disease and a leading cause of sudden cardiac death in young people. Tropomyosin adopts conformation of a coiled coil which is critical for regulation of muscle contraction. In this study, we investigated the effects of the R21H mutation on the coiled-coil structure of tropomyosin and its interactions with its binding partners, tropomodulin and leiomodin. Using circular dichroism and isothermal titration calorimetry, we found that the mutation profoundly destabilized the structural integrity of αTM1a1-28 Zip, a chimeric peptide containing the first 28 residues of tropomyosin. The mutated αTM1a1-28 Zip was still able to interact with tropomodulin and leiomodin. However, the mutation resulted in a ∼30-fold decrease of αTM1a1-28 Zip's binding affinity to leiomodin. We used a crystal structure of αTM1a1-28 Zip that we solved at 1.5 Å resolution to study the mutation's effect in silico by means of molecular dynamics simulation. The simulation data indicated that while the mutation disrupted αTM1a1-28 Zip's coiled-coil structure, most notably from residue Ala18 to residue His31, it may not affect the N-terminal end of tropomyosin. The drastic decrease of αTM1a1-28 Zip's affinity to leiomodin caused by the mutation may lead to changes in the dynamics at the pointed end of thin filaments. Therefore, the R21H mutation is likely interfering with the regulation of the normal thin filament length essential for proper muscle contraction.
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