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Investigating the Pathogenesis of MYH7 Mutation Gly823Glu in Familial Hypertrophic Cardiomyopathy using a Mouse Model
Published on: August 8, 2022
Divergent Molecular Phenotypes in Point Mutations at the Same Residue in Beta-Myosin Heavy Chain Lead to Distinct
Sarah J Lehman1, Artur Meller2,3, Shahlo O Solieva4
1University of Colorado, Molecular, Cellular, and Developmental Biology, Boulder, CO, USA.
Insights
Similar mutations in beta myosin heavy chain (β-MHC) cause distinct heart diseases. This study reveals opposing effects on myosin
Area of Science:
- Cardiovascular Biology
- Molecular Genetics
- Biophysics
Background:
- Genetic cardiomyopathies often present diverse clinical phenotypes from similar mutations.
- Beta myosin heavy chain (β-MHC) mutations, specifically Ile467Val (I467V) and Ile467Thr (I467T), are linked to hypertrophic cardiomyopathy (HCM) and left ventricular non-compaction (LVNC), respectively.
- Understanding the molecular basis for these divergent disease outcomes is crucial.
Conclusions:
- Phenotypic divergence in genetic cardiomyopathies can originate from distinct molecular effects of similar mutations.
- The I467V mutation's effect on the SRX state may contribute to HCM's gain-of-function phenotype.
- The I467T mutation's impact on the SRX state and ADP release may drive LVNC pathophysiology.
- Targeting these molecular differences could inform future therapeutic strategies for distinct cardiomyopathies.
Abstract:
In genetic cardiomyopathies, a frequently described phenomenon is how similar mutations in one protein can lead to discrete clinical phenotypes. One example is illustrated by two mutations in beta myosin heavy chain (β-MHC) that are linked to hypertrophic cardiomyopathy (HCM) (Ile467Val, I467V) and left ventricular non-compaction (LVNC) (Ile467Thr, I467T). To investigate how these missense mutations lead to independent diseases, we studied the molecular effects of each mutation using recombinant human β-MHC Subfragment 1 (S1) in in vitro assays. Both HCM-I467V and LVNC-I467T S1 mutations exhibited similar mechanochemical function, including unchanged ATPase and enhanced actin velocity but had opposing effects on the super-relaxed (SRX) state of myosin. HCM-I467V S1 showed a small reduction in the SRX state, shifting myosin to a more actin-available state that may lead to the "gain-of-function" phenotype commonly described in HCM. In contrast, LVNC-I467T significantly increased the population of myosin in the ultra-slow SRX state. Interestingly, molecular dynamics simulations reveal that I467T allosterically disrupts interactions between ADP and the nucleotide-binding pocket, which may result in an increased ADP release rate. This predicted change in ADP release rate may define the enhanced actin velocity measured in LVNC-I467T, but also describe the uncoupled mechanochemical function for this mutation where the enhanced ADP release rate may be sufficient to offset the increased SRX population of myosin. These contrasting molecular effects may lead to contractile dysregulation that initiates LVNC-associated signaling pathways that progress the phenotype. Together, analysis of these mutations provides evidence that phenotypic complexity originates at the molecular level and is critical to understanding disease progression and developing therapies.
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