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A RAC/CDC-42-independent GIT/PIX/PAK signaling pathway mediates cell migration in C. elegans
Mark Lucanic1, Hwai-Jong Cheng
1Center for Neuroscience, University of California Davis, Davis, California, United States of America.
Abstract:
P21 activated kinase (PAK), PAK interacting exchange factor (PIX), and G protein coupled receptor kinase interactor (GIT) compose a highly conserved signaling module controlling cell migrations, immune system signaling, and the formation of the mammalian nervous system. Traditionally, this signaling module is thought to facilitate the function of RAC and CDC-42 GTPases by allowing for the recruitment of a GTPase effector (PAK), a GTPase activator (PIX), and a scaffolding protein (GIT) as a regulated signaling unit to specific subcellular locations. Instead, we report here that this signaling module functions independently of RAC/CDC-42 GTPases in vivo to control the cell shape and migration of the distal tip cells (DTCs) during morphogenesis of the Caenorhabditis elegans gonad. In addition, this RAC/CDC-42-independent PAK pathway functions in parallel to a classical GTPase/PAK pathway to control the guidance aspect of DTC migration. Among the C. elegans PAKs, only PAK-1 functions in the GIT/PIX/PAK pathway independently of RAC/CDC42 GTPases, while both PAK-1 and MAX-2 are redundantly utilized in the GTPase/PAK pathway. Both RAC/CDC42-dependent and -independent PAK pathways function with the integrin receptors, suggesting that signaling through integrins can control the morphology, movement, and guidance of DTC through discrete pathways. Collectively, our results define a new signaling capacity for the GIT/PIX/PAK module that is likely to be conserved in vertebrates and demonstrate that PAK family members, which are redundantly utilized as GTPase effectors, can act non-redundantly in pathways independent of these GTPases.
Insights
The GIT/PIX/PAK signaling module controls cell shape and migration independently of RAC/CDC-42 GTPases in C. elegans. This discovery reveals a new function for this conserved pathway in cell migration and development.
Area of Science:
- Cell Biology
- Developmental Biology
- Molecular Signaling
Background:
- The P21 activated kinase (PAK), PAK interacting exchange factor (PIX), and G protein coupled receptor kinase interactor (GIT) form a conserved signaling module.
- This module is traditionally understood to regulate RAC and CDC-42 GTPases for cell migration and development.
Purpose of the Study:
- To investigate the in vivo function of the GIT/PIX/PAK signaling module in Caenorhabditis elegans gonad development.
- To determine if the GIT/PIX/PAK module's function is dependent on RAC/CDC-42 GTPases.
Main Methods:
- Utilized Caenorhabditis elegans as a model organism.
- Investigated cell shape and migration of distal tip cells (DTCs) during gonad morphogenesis.
- Analyzed the roles of PAK-1 and MAX-2 in distinct signaling pathways.
Main Results:
- The GIT/PIX/PAK module controls DTC cell shape and migration independently of RAC/CDC-42 GTPases.
- A RAC/CDC-42-independent PAK pathway operates in parallel to a classical GTPase/PAK pathway.
- PAK-1 functions uniquely in the RAC/CDC-42-independent pathway, while PAK-1 and MAX-2 act redundantly in the GTPase/PAK pathway.
- Both pathways function with integrin receptors to control DTC morphology, movement, and guidance.
Conclusions:
- The GIT/PIX/PAK module possesses a novel RAC/CDC-42-independent signaling capacity.
- This pathway is likely conserved in vertebrates and impacts cell migration and development.
- PAK proteins can function non-redundantly in GTPase-independent pathways, expanding their known roles.
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