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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.
Abstract:
DYRK-family kinases employ an intramolecular mechanism to autophosphorylate a critical tyrosine residue in the activation loop. Once phosphorylated, DYRKs lose tyrosine kinase activity and function as serine/threonine kinases. DYRKs have been characterized in organisms from yeast to human; however, all entities belong to the Unikont supergroup, only one of five eukaryotic supergroups. To assess the evolutionary age and conservation of the DYRK intramolecular kinase-activation mechanism, we surveyed 21 genomes representing four of the five eukaryotic supergroups for the presence of DYRKs. We also analyzed the activation mechanism of the sole DYRK (class 2 DYRK) present in Trypanosoma brucei (TbDYRK2), a member of the excavate supergroup and separated from Drosophila by ∼850 million years. Bioinformatics showed the DYRKs clustering into five known subfamilies, class 1, class 2, Yaks, HIPKs and Prp4s. Only class 2 DYRKs were present in all four supergroups. These diverse class 2 DYRKs also exhibited conservation of N-terminal NAPA regions located outside of the kinase domain, and were shown to have an essential role in activation loop autophosphorylation of Drosophila DmDYRK2. Class 2 TbDYRK2 required the activation loop tyrosine conserved in other DYRKs, the NAPA regions were critical for this autophosphorylation event, and the NAPA-regions of Trypanosoma and human DYRK2 complemented autophosphorylation by the kinase domain of DmDYRK2 in trans. Finally, sequential deletion analysis was used to further define the minimal region required for trans-complementation. Our analysis provides strong evidence that class 2 DYRKs were present in the primordial or root eukaryote, and suggest this subgroup may be the oldest, founding member of the DYRK family. The conservation of activation loop autophosphorylation demonstrates that kinase self-activation mechanisms are also primitive.
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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