Enzymatic cleavage of myoferlin releases a dual C2-domain module linked to ERK signalling

Ann-Katrin Piper1, Samuel E Ross2, Gregory M Redpath3

  • 1Institute for Neuroscience and Muscle Research, Children's Hospital at Westmead, Sydney, NSW 2145, Australia; Discipline of Child and Adolescent Health, Faculty of Medicine, University of Sydney, Sydney, Australia.

Cellular Signalling
|February 14, 2017
PubMed

Insights

Researchers identified two cleavage sites in myoferlin, a protein involved in cell membrane repair and cancer metastasis. This cleavage produces a smaller

Area of Science:

  • Cell Biology
  • Molecular Biology
  • Biochemistry

Background:

  • Myoferlin and dysferlin are related ferlin proteins involved in Ca2+-regulated vesicle fusion.
  • Dysferlin is implicated in Ca2+-triggered membrane repair.
  • Myoferlin regulates endocytosis and is linked to cancer metastasis.

Purpose of the Study:

  • To characterize the enzymatic cleavage of myoferlin.
  • To identify the functional consequences of myoferlin cleavage.
  • To investigate the evolutionary conservation of ferlin cleavage mechanisms.

Main Methods:

  • Molecular cloning and mutagenesis to define cleavage sites.
  • Enzymatic assays to study cleavage kinetics.
  • Phospho-protein arrays to assess signaling pathway activation.
  • Analysis of human tumor samples and cell lines.

Main Results:

  • Myoferlin possesses two distinct enzymatic cleavage sites, yielding a functional 'mini-myoferlin'.
  • These sites can functionally replace dysferlin's exon 40a for Ca2+-triggered cleavage.
  • Myoferlin cleavage is complex, occurring constitutively or enhanced by Ca2+ in a cell-dependent manner, not solely by calpains-1 or -2.
  • Cleavable myoferlin activates ERK1/2 signaling, unlike uncleavable forms.
  • 'Mini-myoferlin' is detectable in human breast cancer samples.

Conclusions:

  • Two novel enzymatic cleavage sites in myoferlin are molecularly defined, generating a functionally specialized mini-myoferlin.
  • Ferlin cleavage is an evolutionarily conserved mechanism for releasing functional protein modules.
  • Myoferlin cleavage and subsequent signaling activation may contribute to cancer progression.

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