Adhesion molecule Kirrel3/Neph2 is required for the elongated shape of myocytes during skeletal muscle

Yael Tamir-Livne1, Raeda Mubariki, Eyal Bengal

  • 1Department of Biochemistry, Rappaport Faculty of Medicine, Technion-Israel Institute of Technology, Haifa, Israel.

Insights

Mouse Kirrel3 protein is crucial for muscle cell (myocyte) fusion during development. It promotes shape changes and directed migration, essential for forming multinucleated myotubes.

Area of Science:

  • Cell adhesion
  • Muscle development
  • Immunoglobulin superfamily proteins

Background:

  • Kirrel/Neph proteins are conserved immunoglobulin superfamily adhesion molecules.
  • Kirrel3 is the mouse ortholog of Drosophila Dumbfounded (Duf), involved in myoblast fusion.
  • The role of Kirrel3 in mammalian myogenesis remains largely uncharacterized.

Purpose of the Study:

  • To investigate the function of mouse Kirrel3 in mammalian myogenesis.
  • To elucidate the molecular mechanisms underlying Kirrel3's role in myoblast differentiation and fusion.

Main Methods:

  • Analysis of Kirrel3 expression during myoblast differentiation.
  • Investigation of Kirrel3 transport and extracellular domain cleavage.
  • Functional studies using C-terminal deletion mutants and knock-down experiments in primary muscle progenitor cells (MPCs).

Main Results:

  • Kirrel3 expression is transient, MyoD-dependent, and occurs at myocyte tips during differentiation.
  • Kirrel3 is processed via vesicular transport and proteasome-dependent extracellular cleavage.
  • Kirrel3 knock-down impairs myocyte shape change, directed migration, and fusion into multinucleated myotubes.
  • A C-terminal deletion mutant suggests intracellular domain regulation of extracellular processing and induces cell aggregation.

Conclusions:

  • Mouse Kirrel3 acts as a myoblast adhesion molecule essential for myogenesis.
  • Kirrel3 promotes the morphological transition of rounded MPCs to spindle-shaped myocytes.
  • Kirrel3 facilitates directed migration and cell-cell interactions critical for myotube formation.

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