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.

Plos Genetics
|November 22, 2008
PubMed

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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