From bedside to bench: A multimodal approach uncovering the molecular basis of the <i>MYBPC1</i>-linked Myotrem myopathy.
basic_science · Level V
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- Record sourced from PubMed, PMID 42224599.
- Also identified by DOI 10.1073/pnas.2529897123.
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Abstract
Myotrem is an untreatable, early-onset, congenital myopathy characterized by hypotonia, muscle weakness, skeletal deformities, dysmorphia, respiratory insufficiency, and myogenic tremor (V. Shashi <i>et al., Hum Mutat</i>, 2019 and J. Stavusis <i>et al.,</i> <i>Ann. Neurol.</i>, 2019). It is associated with dominant variants in the pivotal M-domain of slow-skeletal Myosin Binding Protein-C (sMyBP-C) that modulates the dynamic binding to myosin and actin filaments and thereby crossbridge formation and kinetics. Herein, we report a nonmissense Myotrem variant, c.795_803dup p.(Leu266_Arg268dup), referred to as LKR-duplication. Our comprehensive studies, integrating clinical findings with biophysical, structural, and computational approaches, uncover the previously unreported structure and properties of the slow-skeletal M-domain, while elucidating the impact of the LKR-duplication. We show that the LKR-duplication stabilizes local helicity but alters global domain dynamics, leading to increased myosin binding, while impairing myosin-ATPase activity and crossbridge cycling. Critically, we pinpoint the specific amino acid residues facilitating the M-domain/myosin interaction and demonstrate that the LKR-duplicated residues not only directly contribute to myosin binding but also enhance the myosin interacting capability of neighboring and distant residues. Our multimodal approach sheds light on aspects of the pathobiology of the slow-skeletal M-domain-the Myotrem hotspot-by unveiling underlying pathogenic etiologies thereby paving the way for the development of targeted treatments.