Publication: Updating dual-specificity tyrosine-phosphorylation-regulated kinase 2 (DYRK2): molecular basis, functions and role in diseases.
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Identifiers
Date
2020-05-18
Authors
Correa-Saez, Alejandro
Jimenez-Izquierdo, Rafael
Garrido-Rodriguez, Martin
Morrugares, Rosario
Muñoz, Eduardo
Calzado, Marco A
Advisors
Journal Title
Journal ISSN
Volume Title
Publisher
Springer
Abstract
Members of the dual-specificity tyrosine-regulated kinase (DYRKs) subfamily possess a distinctive capacity to phosphorylate tyrosine, serine, and threonine residues. Among the DYRK class II members, DYRK2 is considered a unique protein due to its role in disease. According to the post-transcriptional and post-translational modifications, DYRK2 expression greatly differs among human tissues. Regarding its mechanism of action, this kinase performs direct phosphorylation on its substrates or acts as a priming kinase, enabling subsequent substrate phosphorylation by GSK3β. Moreover, DYRK2 acts as a scaffold for the EDVP E3 ligase complex during the G2/M phase of cell cycle. DYRK2 functions such as cell survival, cell development, cell differentiation, proteasome regulation, and microtubules were studied in complete detail in this review. We have also gathered available information from different bioinformatic resources to show DYRK2 interactome, normal and tumoral tissue expression, and recurrent cancer mutations. Then, here we present an innovative approach to clarify DYRK2 functionality and importance. DYRK2 roles in diseases have been studied in detail, highlighting this kinase as a key protein in cancer development. First, DYRK2 regulation of c-Jun, c-Myc, Rpt3, TERT, and katanin p60 reveals the implication of this kinase in cell-cycle-mediated cancer development. Additionally, depletion of this kinase correlated with reduced apoptosis, with consequences on cancer patient response to chemotherapy. Other functions like cancer stem cell formation and epithelial-mesenchymal transition regulation are also controlled by DYRK2. Furthermore, the pharmacological modulation of this protein by different inhibitors (harmine, curcumine, LDN192960, and ID-8) has enabled to clarify DYRK2 functionality.
Description
MeSH Terms
Disease
Humans
Phosphorylation
Protein processing, post-translational
Protein serine-threonine kinases
Tyrosine
Humans
Phosphorylation
Protein processing, post-translational
Protein serine-threonine kinases
Tyrosine
DeCS Terms
Enfermedad
Fosforilación
Procesamiento proteico-postraduccional
Proteínas serina-treonina quinasas
Tirosina
Fosforilación
Procesamiento proteico-postraduccional
Proteínas serina-treonina quinasas
Tirosina
CIE Terms
Keywords
Apoptosis, Cancer, Cell cycle, DYRK2, Disease, Kinase, Phosphorylation
Citation
Correa-Sáez A, Jiménez-Izquierdo R, Garrido-Rodríguez M, Morrugares R, Muñoz E, Calzado MA. Updating dual-specificity tyrosine-phosphorylation-regulated kinase 2 (DYRK2): molecular basis, functions and role in diseases. Cell Mol Life Sci. 2020 Dec;77(23):4747-4763