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Updated: Aug 12, 2026

Identification of Kinase-substrate Pairs Using High Throughput Screening
Published on: August 29, 2015
Optimal sequences for non-phosphate-directed phosphorylation by protein kinase CK1 (casein kinase-1)--a re-evaluation
1Instituto de Ciencias Biomédicas, Facultad de Medicina, Universidad de Chile.
Abstract:
A variety of synthetic peptides derived from either the inhibitor-2 (I-2) phosphoacceptor sites or the optimal sequences selected in an oriented peptide library have been compared for their susceptibility to phosphorylation by protein kinase CK1 (also termed casein kinase-1). The I-2-derived peptides are by far preferred over the library peptides by both rat liver CK1 (and by the alpha/beta, gamma and delta/epsilon isoforms immunoprecipitated from it) and recombinant Xenopus laevis CK1 alpha. The superiority of the I-2-derived peptides over the library ones is reflected by Vmax values one to two orders of magnitude higher while the Km values are comparable. Individual substitutions of any of the aspartic acids with alanine in the I-2-derived peptide RRKHAAIGDDDDAYSITA is detrimental, producing both a fall in Vmax and an increase in Km which are more pronounced at position n -3, but also quite significant at positions n -4, n -5 and, to a lesser extent, n -6. The unfavourable effect of these substitutions is more evident with rat liver CK1 than with recombinant Xenopus laevis CK1 alpha. The chimeric peptide IGDDDDAY-S-IIIFFA, resulting from the combination of the N-terminal acidic sequence of the I-2 (Ser86) site and the C-terminal hydrophobic cluster selected in the library peptides (MAEFDTG-S-IIIFFAKKK and MAYYDAA-S-IIIFFAKKK) is phosphorylated as efficiently as the I-2-derived peptide in terms of both Km and Vmax. These combined data strongly support the conclusion that, at variance with the optimal sequences selected in the library, optimal non-phosphate-directed phosphorylation of peptide substrates by CK1 critically relies on the presence of a cluster of acidic residues (preferably aspartic acid) upstream from position n -2, while the highly hydrophobic region downstream from serine selected in the library appears to be dispensable. The reason for these discrepancies remains unclear. The possibility that the library data are biased by the invariant elements forming its scaffold (MA-x-x-x-x-x-SI-x-x-x-x-AKKK) would be consistent with the observation that the library-selected peptides, despite their low Km values, fail to compete against the phosphorylation of protein and peptide substrates by CK1, suggesting that they bind to elements partially distinct from those responsible for substrate recognition.
Insights
Protein kinase CK1 preferentially phosphorylates peptides mimicking inhibitor-2 sites over library-selected sequences. Acidic residues upstream are crucial for optimal CK1 phosphorylation, unlike downstream hydrophobic regions.
Area of Science:
- Biochemistry
- Molecular Biology
- Enzymology
Background:
- Protein kinase CK1 (casein kinase-1) plays a role in various cellular processes.
- Understanding CK1 substrate specificity is crucial for deciphering its regulatory functions.
- Previous studies utilized oriented peptide libraries to identify optimal CK1 phosphorylation sites.
Purpose of the Study:
- To compare the phosphorylation efficiency of synthetic peptides derived from inhibitor-2 (I-2) phosphoacceptor sites versus library-selected optimal sequences by protein kinase CK1.
- To elucidate the structural requirements for optimal CK1 substrate recognition and phosphorylation.
Main Methods:
- Synthesis and characterization of various peptides, including I-2 derived, library-selected, and chimeric sequences.
- Enzymatic assays measuring the phosphorylation of these peptides by rat liver CK1 and recombinant Xenopus laevis CK1 alpha.
- Kinetic analysis (Km and Vmax) to quantify substrate preference and catalytic efficiency.
- Site-directed mutagenesis by substituting aspartic acid residues with alanine to assess their contribution to phosphorylation.
Main Results:
- I-2 derived peptides were significantly preferred over library peptides by both rat liver CK1 and Xenopus laevis CK1 alpha.
- I-2 derived peptides exhibited Vmax values one to two orders of magnitude higher than library peptides, with comparable Km values.
- Substitution of aspartic acids with alanine in I-2 derived peptides reduced Vmax and increased Km, particularly at positions n-3 to n-6.
- A chimeric peptide combining I-2 acidic residues and library hydrophobic regions was phosphorylated as efficiently as I-2 derived peptides.
Conclusions:
- Optimal non-phosphate-directed phosphorylation of peptide substrates by CK1 critically depends on a cluster of acidic residues upstream of the phosphorylation site.
- The highly hydrophobic region downstream from the serine residue, selected in library peptides, appears dispensable for efficient CK1 phosphorylation.
- Discrepancies between library-selected and I-2 derived peptide preferences suggest potential biases in library selection or distinct binding modes.
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