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Updated: Mar 13, 2026

Identification of Cyclin-dependent Kinase 1 Specific Phosphorylation Sites by an In Vitro Kinase Assay
Published on: May 3, 2018
Multisite phosphorylation of P-Rex1 by protein kinase C
Juan Carlos Montero1, Samuel Seoane1, Sara García-Alonso1
1Instituto de Biología Molecular y Celular del Cáncer, CSIC-Universidad de Salamanca, Spain.
Abstract:
P-Rex proteins are guanine nucleotide exchange factors (GEFs) that act on the Rho/Rac family of GTP binding proteins. The activity of P-Rex proteins is regulated by several extracellular stimuli. In fact, activation of growth factor receptors has been reported to activate a phosphorylation/dephosphorylation cycle of P-Rex1. Such cycle includes dephosphorylation of serines 313 and 319 which negatively regulate the GEF activity of P-Rex1, together with phosphorylation of serines 605 and 1169 which favour P-Rex1 GEF activity. However, the kinases that regulate phosphorylation at these different regulatory sites are largely unknown. Here we have investigated the potential regulatory action of several kinases on the phosphorylation of P-Rex1 at S313, S319, S605 and S1169. We show that activation of protein kinase C (PKC) caused phosphorylation of S313, S319 and S1169. Activation of growth factor receptors induced phosphorylation of S1169 through a mechanism that was independent of PKC, indicating that distinct kinases and mechanisms control the phosphorylation of P-Rex1 at different regulatory serines. Genetic and biochemical studies confirmed that the PKC isoform PKCδ was able to directly phosphorylate P-Rex1 at S313. Functional studies using cells with very low endogenous P-Rex1 expression, transfected with wild type P-Rex1 or a mutant form in which S313 was substituted by alanine, indicated that phosphorylation at that residue negatively regulated P-Rex1 exchange activity. We suggest that control of P-Rex1 activity depends on a highly dynamic interplay among distinct signalling routes and its multisite phosphorylation is controlled by the action of different kinases.
Insights
Protein kinase C (PKC) and growth factor receptors regulate P-Rex1 activity through distinct phosphorylation sites. PKCδ directly phosphorylates P-Rex1 at S313, negatively impacting its guanine nucleotide exchange factor (GEF) activity.
Area of Science:
- Cellular signaling pathways
- Molecular biology
- Signal transduction
Background:
- P-Rex proteins are guanine nucleotide exchange factors (GEFs) regulating Rho/Rac GTPases.
- P-Rex1 activity is modulated by extracellular stimuli via a phosphorylation/dephosphorylation cycle.
- Specific serine residues (S313, S319, S605, S1169) control P-Rex1 GEF activity, but the responsible kinases are largely unknown.
Purpose of the Study:
- To identify kinases regulating P-Rex1 phosphorylation at key serine residues.
- To elucidate the mechanisms controlling P-Rex1 activity through multisite phosphorylation.
- To investigate the role of specific PKC isoforms in P-Rex1 regulation.
Main Methods:
- Investigated kinase regulation of P-Rex1 phosphorylation at S313, S319, S605, and S1169.
- Utilized protein kinase C (PKC) activation and growth factor receptor stimulation.
- Employed genetic and biochemical studies, including site-directed mutagenesis (S313A).
- Conducted functional studies in cells with varying P-Rex1 expression levels.
Main Results:
- PKC activation induced phosphorylation of P-Rex1 at S313, S319, and S1169.
- Growth factor receptor activation phosphorylated S1169 independently of PKC.
- PKCδ was confirmed to directly phosphorylate P-Rex1 at S313.
- Phosphorylation at S313 negatively regulated P-Rex1 GEF activity.
Conclusions:
- Distinct signaling pathways and kinases control P-Rex1 phosphorylation at different regulatory sites.
- PKCδ plays a direct role in negatively regulating P-Rex1 activity via S313 phosphorylation.
- P-Rex1 activity is finely tuned by a dynamic interplay of signaling routes and multisite phosphorylation.
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