Optimal sequences for non-phosphate-directed phosphorylation by protein kinase CK1 (casein kinase-1)--a re-evaluation

V Pulgar1, O Marin, F Meggio

  • 1Instituto de Ciencias Biomédicas, Facultad de Medicina, Universidad de Chile.

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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