Deep evolutionary conservation of an intramolecular protein kinase activation mechanism

Jingfen Han1, Diego Miranda-Saavedra, Nathan Luebbering

  • 1Division of Developmental Biology, Cincinnati Children's Hospital Medical Center, Cincinnati, Ohio, United States of America.

Plos One
|January 12, 2012
PubMed

Insights

Class 2 Dual-specificity Tyrosine-(Y) and Serine/Threonine-Kinase (DYRKs) are ancient, present in the earliest eukaryotes. Their conserved activation loop autophosphorylation mechanism suggests primitive kinase self-activation.

Area of Science:

  • Evolutionary biology
  • Molecular biology
  • Biochemistry

Background:

  • Dual-specificity Tyrosine-(Y) and Serine/Threonine-Kinases (DYRKs) regulate cellular processes through autophosphorylation.
  • Existing DYRK studies primarily focus on the Unikont supergroup, limiting understanding of their evolutionary history.
  • The intramolecular activation mechanism of DYRKs is conserved but its evolutionary age remains unclear.

Purpose of the Study:

  • To determine the evolutionary age and conservation of the DYRK intramolecular kinase-activation mechanism across eukaryotic supergroups.
  • To investigate the role of N-terminal NAPA regions in class 2 DYRK autophosphorylation.
  • To identify the oldest founding member of the DYRK family.

Main Methods:

  • Bioinformatic survey of 21 eukaryotic genomes representing four supergroups for DYRK presence.
  • Analysis of the activation mechanism of Trypanosoma brucei class 2 DYRK (TbDYRK2).
  • In vitro assays including trans-complementation and sequential deletion analysis.

Main Results:

  • Class 2 DYRKs were identified across all four surveyed eukaryotic supergroups, suggesting ancient origins.
  • Conserved N-terminal NAPA regions are essential for activation loop autophosphorylation in class 2 DYRKs.
  • TbDYRK2 and human DYRK2 NAPA regions could complement Drosophila DYRK2 kinase domain autophosphorylation in trans.

Conclusions:

  • Class 2 DYRKs likely existed in the primordial eukaryote, potentially representing the oldest DYRK subfamily.
  • The conserved activation loop autophosphorylation mechanism highlights the primitive nature of kinase self-activation.
  • This study expands the understanding of DYRK evolution and kinase activation mechanisms across eukaryotes.

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