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Stage-specific activation of MIG-17/ADAMTS controls cell migration in Caenorhabditis elegans
Shinji Ihara1, Kiyoji Nishiwaki
1RIKEN Center for Developmental Biology, Hyogo, Japan.
Abstract:
The activation of ADAMTS (a disintegrin and metalloprotease with thrombospondin motifs) family proteases depends on removal of the prodomain. Although several studies suggest that ADAMTS activities play roles in development, homeostasis and disease, it remains unclear when and where the enzymes are activated in vivo. MIG-17, a Caenorhabditis elegans glycoprotein belonging to the ADAMTS family, is secreted from the body wall muscle cells and localizes to the gonadal basement membrane to control the migration of gonadal distal tip cells. Here, we developed a monoclonal antibody that recognizes the N-terminal neo-epitope of the activated MIG-17. In western blotting, the antibody specifically detected the activated form, the signal for which dramatically increased during the third and fourth larval stages, when MIG-17 is required to direct distal tip cell migration. In in situ staining, the monoclonal antibody recognized the activated form in the basement membrane, whereas it failed to detect a processing-resistant mutant form localized to the basement membrane. MIG-17 was activated in the basement membranes of the muscle, intestine and gonad in the third larval stage, and downregulated in nongonadal basement membranes in young adults and in gonadal basement membranes in older adults. Thus, the activation of MIG-17 is regulated in a spatiotemporal manner during C. elegans development. This is the first report demonstrating the regulated activation of an ADAMTS protein in vivo. Our results suggest that monoclonal antibodies against neo-epitopes have potential as powerful tools for detecting activation of ADAMTSs during development and in disease pathogenesis.
Insights
Researchers developed a novel antibody to track the activation of MIG-17, an ADAMTS (a disintegrin and metalloprotease with thrombospondin motifs) protein, in vivo. This study reveals the spatiotemporal regulation of MIG-17 activation during C. elegans development.
Area of Science:
- Developmental Biology
- Molecular Biology
- Biochemistry
Background:
- ADAMTS (a disintegrin and metalloprotease with thrombospondin motifs) proteases are crucial for development, homeostasis, and disease.
- The in vivo activation of ADAMTS enzymes is not well understood.
- MIG-17, an ADAMTS protein in C. elegans, is secreted and localized to the gonadal basement membrane to guide cell migration.
Purpose of the Study:
- To investigate the spatiotemporal activation of the ADAMTS protein MIG-17 in vivo.
- To develop a tool for detecting activated ADAMTS proteins.
Main Methods:
- Development of a monoclonal antibody targeting the N-terminal neo-epitope of activated MIG-17.
- Western blotting to detect activated MIG-17 levels during different larval stages.
- In situ staining to visualize the localization of activated MIG-17 in basement membranes.
Main Results:
- The monoclonal antibody specifically detected the activated form of MIG-17.
- Activated MIG-17 levels increased significantly during the third and fourth larval stages.
- MIG-17 activation was observed in muscle, intestine, and gonad basement membranes during the third larval stage and downregulated in later stages.
Conclusions:
- MIG-17 activation is spatiotemporally regulated during C. elegans development.
- This study provides the first evidence of regulated ADAMTS protein activation in vivo.
- Neo-epitope-specific antibodies are valuable tools for studying ADAMTS activation in development and disease.
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