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Hierarchical Organization Endows the Kinase Domain with Regulatory Plasticity.

Pau Creixell | Jai P Pandey | Antonio Palmeri | Moitrayee Bhattacharyya | Marc Creixell | Rama Ranganathan | David Pincus | Michael B Yaffe
Cell systems | 2018

The functional diversity of kinases enables specificity in cellular signal transduction. Yet how more than 500 members of the human kinome specifically receive regulatory inputs and convey information to appropriate substrates-all while using the common signaling output of phosphorylation-remains enigmatic. Here, we perform statistical co-evolution analysis, mutational scanning, and quantitative live-cell assays to reveal a hierarchical organization of the kinase domain that facilitates the orthogonal evolution of regulatory inputs and substrate outputs while maintaining catalytic function. We find that three quasi-independent "sectors"-groups of evolutionarily coupled residues-represent functional units in the kinase domain that encode for catalytic activity, substrate specificity, and regulation. Sector positions impact both disease and pharmacology: the catalytic sector is significantly enriched for somatic cancer mutations, and residues in the regulatory sector interact with allosteric kinase inhibitors. We propose that this functional architecture endows the kinase domain with inherent regulatory plasticity.

Pubmed ID: 30243563

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Associated grants

  • Agency: NIEHS NIH HHS, United States
    Id: R01 ES015339
  • Agency: NIH HHS, United States
    Id: DP5 OD017941
  • Agency: NIEHS NIH HHS, United States
    Id: R35 ES028374
  • Agency: NIGMS NIH HHS, United States
    Id: R01 GM104047
  • Agency: NCI NIH HHS, United States
    Id: K99 CA226396

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PAML (tool)

RRID:SCR_014932

Package of programs for phylogenetic analyses of DNA or protein sequences using maximum likelihood. PAML estimates parameters and tests hypotheses to study the evolutionary process from a phylogenetic tree.

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