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Expression of constitutively active alpha-PAK reveals effects of the kinase on actin and focal complexes
1Glaxo-IMCB Group, Institute of Molecular & Cell Biology, National University of Singapore, Kent Ridge.
Abstract:
The family of p21-activated protein kinases (PAKs) appear to be present in all organisms that have Cdc42-like GTPases. In mammalian cells, PAKs have been implicated in the activation of mitogen-activated protein kinase cascades, but there are no reported effects of these kinases on the cytoskeleton. Recently we have shown that a Drosophila PAK is enriched in the leading edge of embryonic epithelial cells undergoing dorsal closure (N. Harden, J. Lee, H.-Y. Loh, Y.-M. Ong, I. Tan, T. Leung, E. Manser, and L. Lim, Mol. Cell. Biol. 16:1896-1908, 1996), where it colocalizes with structures resembling focal complexes. We show here by transfection that in epithelial HeLa cells alpha-PAK is recruited from the cytoplasm to distinct focal complexes by both Cdc42(G12V) and Rac1(G12V), which themselves colocalize to these sites. By deletion analysis, the N terminus of PAK is shown to contain targeting sequences for focal adhesions which indicate that these complexes are the site of kinase function in vivo. Cdc42 and Rac1 cause alpha-PAK autophosphorylation and kinase activation. Mapping alpha-PAK autophosphorylation sites has allowed generation of a constitutively active kinase mutant. By fusing regions of Cdc42 to the C terminus of PAK, activated chimeras were also obtained. Plasmids encoding these different constitutively active alpha-PAKs caused loss of stress fibers when introduced into both HeLa cells and fibroblasts, which was similar to the effect of introducing Cdc42(G12V) or Rac1(G12V). Significantly dramatic losses of focal adhesions were also observed. These combined effects resulted in retraction of the cell periphery after plasmid microinjection. These data support our previous suggestions of a role for PAK downstream of both Cdc42 and Rac1 and indicate that PAK functions include the dissolution of stress fibers and reorganization of focal complexes.
Insights
p21-activated protein kinases (PAKs) interact with Cdc42 and Rac1 to influence cell shape. PAK activation leads to stress fiber dissolution and focal adhesion loss, reorganizing the cell periphery.
Area of Science:
- Cell Biology
- Molecular Biology
- Biochemistry
Background:
- p21-activated protein kinases (PAKs) are conserved enzymes involved in signaling pathways.
- In mammalian cells, PAKs are linked to mitogen-activated protein kinase cascades but their role in cytoskeletal regulation was unclear.
- Previous studies showed Drosophila PAK enrichment at the leading edge of migrating cells, colocalizing with focal complexes.
Purpose of the Study:
- To investigate the role of alpha-PAK in cytoskeletal organization in mammalian cells.
- To determine the relationship between PAK, Cdc42, and Rac1 in regulating focal adhesions and stress fibers.
- To identify mechanisms of PAK activation and its downstream effects on cell morphology.
Main Methods:
- Transfection of epithelial HeLa cells and fibroblasts with alpha-PAK, constitutively active Cdc42(G12V), and Rac1(G12V) mutants.
- Deletion analysis of PAK to identify protein domains responsible for targeting to focal adhesions.
- Analysis of alpha-PAK autophosphorylation sites and generation of constitutively active PAK mutants and Cdc42-PAK chimeras.
- Microinjection of plasmids encoding active PAK variants and observation of cellular effects using microscopy.
Main Results:
- Cdc42(G12V) and Rac1(G12V) recruit alpha-PAK to focal complexes, where they colocalize.
- The N-terminus of PAK contains targeting sequences for focal adhesions, indicating these are sites of kinase activity.
- Cdc42 and Rac1 activate alpha-PAK through autophosphorylation, and constitutively active PAK mutants induce loss of stress fibers and focal adhesions.
- These cytoskeletal changes result in cell periphery retraction.
Conclusions:
- PAK functions downstream of both Cdc42 and Rac1 in mammalian cells.
- PAK plays a critical role in the dissolution of stress fibers and reorganization of focal complexes.
- PAK signaling is essential for regulating cell shape and periphery dynamics.
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