Dual Specificity PDZ- and 14-3-3-Binding Motifs: A Structural and Interactomics Study

Structure. 2020 Jul 7;28(7):747-759.e3. doi: 10.1016/j.str.2020.03.010. Epub 2020 Apr 14.

Abstract

Protein-protein interaction motifs are often alterable by post-translational modifications. For example, 19% of predicted human PDZ domain-binding motifs (PBMs) have been experimentally proven to be phosphorylated, and up to 82% are theoretically phosphorylatable. Phosphorylation of PBMs may drastically rewire their interactomes, by altering their affinities for PDZ domains and 14-3-3 proteins. The effect of phosphorylation is often analyzed by performing "phosphomimetic" mutations. Here, we focused on the PBMs of HPV16-E6 viral oncoprotein and human RSK1 kinase. We measured the binding affinities of native, phosphorylated, and phosphomimetic variants of both PBMs toward the 266 human PDZ domains. We co-crystallized all the motif variants with a selected PDZ domain to characterize the structural consequence of the different modifications. Finally, we elucidated the structural basis of PBM capture by 14-3-3 proteins. This study provides novel atomic and interactomic insights into phosphorylatable dual specificity motifs and the differential effects of phosphorylation and phosphomimetic approaches.

Keywords: 14-3-3 proteins; PDZ domains; domain-motif interactions; phosphorylation; protein-protein interactions; quantitative interactomics.

Publication types

  • Research Support, Non-U.S. Gov't

MeSH terms

  • 14-3-3 Proteins / chemistry*
  • 14-3-3 Proteins / metabolism
  • Binding Sites
  • Molecular Docking Simulation
  • Oncogene Proteins, Viral / chemistry*
  • Oncogene Proteins, Viral / metabolism
  • PDZ Domains*
  • Protein Binding
  • Repressor Proteins / chemistry*
  • Repressor Proteins / metabolism
  • Ribosomal Protein S6 Kinases, 90-kDa / chemistry*
  • Ribosomal Protein S6 Kinases, 90-kDa / metabolism

Substances

  • 14-3-3 Proteins
  • E6 protein, Human papillomavirus type 16
  • Oncogene Proteins, Viral
  • Repressor Proteins
  • RPS6KA1 protein, human
  • Ribosomal Protein S6 Kinases, 90-kDa