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Updated: Aug 11, 2026

Modeling Myotonic Dystrophy 1 in C2C12 Myoblast Cells
Published on: July 29, 2016
Coiled-coil interactions modulate multimerization, mitochondrial binding and kinase activity of myotonic dystrophy
René E M A van Herpen1, Jorrit V Tjeertes, Susan A M Mulders
1Department of Cell Biology, Nijmegen Centre for Molecular Life Sciences, Radboud University Nijmegen Medical Centre, the Netherlands.
Abstract:
The myotonic dystrophy protein kinase polypeptide repertoire in mice and humans consists of six different splice isoforms that vary in the nature of their C-terminal tails and in the presence or absence of an internal Val-Ser-Gly-Gly-Gly motif. Here, we demonstrate that myotonic dystrophy protein kinase isoforms exist in high-molecular-weight complexes controlled by homo- and heteromultimerization. This multimerization is mediated by coiled-coil interactions in the tail-proximal domain and occurs independently of alternatively spliced protein segments or myotonic dystrophy protein kinase activity. Complex formation was impaired in myotonic dystrophy protein kinase mutants in which three leucines at positions a and d in the coiled-coil heptad repeats were mutated to glycines. These coiled-coil mutants were still capable of autophosphorylation and transphosphorylation of peptides, but the rates of their kinase activities were significantly lowered. Moreover, phosphorylation of the natural myotonic dystrophy protein kinase substrate, myosin phosphatase targeting subunit, was preserved, even though binding of the myotonic dystrophy protein kinase to the myosin phosphatase targeting subunit was strongly reduced. Furthermore, the association of myotonic dystrophy protein kinase isoform C to the mitochondrial outer membrane was weakened when the coiled-coil interaction was perturbed. Our findings indicate that the coiled-coil domain modulates myotonic dystrophy protein kinase multimerization, substrate binding, kinase activity and subcellular localization characteristics.
Insights
Myotonic dystrophy protein kinase (DMPK) isoforms form complexes via coiled-coil interactions, affecting kinase activity and substrate binding. Disrupting these interactions impacts DMPK
Area of Science:
- Molecular Biology
- Protein Biochemistry
- Cellular Signaling
Background:
- Myotonic dystrophy protein kinase (DMPK) has six splice isoforms differing in C-terminal tails and an internal motif.
- DMPK plays a role in cellular signaling pathways, and its dysfunction is linked to myotonic dystrophy.
Purpose of the Study:
- To investigate the structural basis of DMPK isoform complex formation.
- To determine the functional consequences of altered DMPK multimerization.
- To elucidate the role of coiled-coil interactions in DMPK regulation.
Main Methods:
- Analysis of DMPK isoform multimerization using biochemical assays.
- Site-directed mutagenesis of coiled-coil heptad repeats in DMPK.
- Assays for kinase activity, substrate binding, and subcellular localization.
Main Results:
- DMPK isoforms form high-molecular-weight complexes through homo- and heteromultimerization mediated by coiled-coil interactions.
- Mutations in the coiled-coil domain impair complex formation, reduce kinase activity rates, and decrease substrate binding.
- Perturbation of coiled-coil interactions weakens DMPK isoform C association with the mitochondrial outer membrane.
Conclusions:
- The coiled-coil domain is critical for DMPK multimerization, influencing its kinase activity, substrate interactions, and localization.
- These findings provide insights into the regulation of DMPK function and its potential role in disease pathogenesis.
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