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.
Abstract:
Myoferlin and dysferlin are closely related members of the ferlin family of Ca2+-regulated vesicle fusion proteins. Dysferlin is proposed to play a role in Ca2+-triggered vesicle fusion during membrane repair. Myoferlin regulates endocytosis, recycling of growth factor receptors and adhesion proteins, and is linked to the metastatic potential of cancer cells. Our previous studies establish that dysferlin is cleaved by calpains during membrane injury, with the cleavage motif encoded by alternately-spliced exon 40a. Herein we describe the cleavage of myoferlin, yielding a membrane-associated dual C2 domain 'mini-myoferlin'. Myoferlin bears two enzymatic cleavage sites: a canonical cleavage site encoded by exon 38 within the C2DE domain; and a second cleavage site in the linker adjacent to C2DE, encoded by alternately-spliced exon 38a, homologous to dysferlin exon 40a. Both myoferlin cleavage sites, when introduced into dysferlin, can functionally substitute for exon 40a to confer Ca2+-triggered calpain cleavage in response to membrane injury. However, enzymatic cleavage of myoferlin is complex, showing both constitutive or Ca2+-enhanced cleavage in different cell lines, that is not solely dependent on calpains-1 or -2. The functional impact of myoferlin cleavage was explored through signalling protein phospho-protein arrays revealing specific activation of ERK1/2 by ectopic expression of cleavable myoferlin, but not an uncleavable isoform. In summary, we molecularly define two enzymatic cleavage sites within myoferlin and demonstrate 'mini-myoferlin' can be detected in human breast cancer tumour samples and cell lines. These data further illustrate that enzymatic cleavage of ferlins is an evolutionarily preserved mechanism to release functionally specialized mini-modules.
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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