Biochemical Journal · 2011 · 25 citations · 49 references
Structural BioinformaticsBiomolecular Structure PredictionMolecular RegulationMolecular BiologyTranscriptional RegulationSignaling PathwayProtein Kinase NsReceptor Tyrosine KinaseSite RecognitionProteomicsCell SignalingMolecular SignalingProtein FunctionBiochemistryArginine ResiduesCell BiologyProtein BioinformaticsStructural BiologyProtein PhosphorylationSignal TransductionNatural SciencesProtein KinaseCellular BiochemistryMedicineKinase Family
The PRKs [protein kinase C-related kinases; also referred to as PKNs (protein kinase Ns)] are a kinase family important in diverse functions including migration and cytokinesis. In the present study, we have re-evaluated and compared the specificity of PKN1 and PKN3 and assessed the predictive value in substrates. We analysed the phosphorylation consensus motif of PKNs using a peptide library approach and demonstrate that both PKN1 and PKN3 phosphorylate serine residues in sequence contexts that have an arginine residue in position -3. In contrast, PKN1 and PKN3 do not tolerate arginine residues in position +1 and -1 respectively. To test the predictive value of this motif, site analysis was performed on the PKN substrate CLIP-170 (cytoplasmic linker protein of 170 kDa); a PKN target site was identified that conformed to the predicted pattern. Using a protein array, we identified 22 further substrates for PKN1, of which 20 were previously undescribed substrates. To evaluate further the recognition signature, the site on one of these hits, EGFR (epidermal growth factor receptor), was identified. This identified Thr⁶⁵⁴ in EGFR as the PKN1 phosphorylation site and this retains an arginine residue at the -3 position. Finally, the constitutive phosphorylation of EGFR on Thr⁶⁵⁴ is shown to be modulated by PKN in vivo.
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WebLogo: A Sequence Logo Generator: Figure 1
Gavin E. Crooks, Gary C. Hon, John‐Marc Chandonia et al. · Genome Research · 2004 · 12.7K citations · Full text
Targets of the cyclin-dependent kinase Cdk1
Jeffrey A. Ubersax, Erika L. Woodbury, Phuong N. Quang et al. · Nature · 2003 · 888 citations
Cyclin-dependent Kinase Cdk1, Signal Transduction, Signaling Pathway +6
CLIP-170 Highlights Growing Microtubule Ends In Vivo
Franck Perez, Georgios S. Diamantopoulos, Romaine Stalder et al. · Cell · 1999 · 392 citations · Full text