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Published on: September 18, 2013
Roles of dual specificity tyrosine-phosphorylation-regulated kinase 2 in nervous system development and disease
Gabriel Nicolás Santos-Durán1, Antón Barreiro-Iglesias1
1Department of Functional Biology, Faculty of Biology, CIBUS, Universidade de Santiago de Compostela, Santiago de Compostela, Spain.
Abstract:
Dual specificity tyrosine-phosphorylation-regulated kinases (DYRKs) are a group of conserved eukaryotic kinases phosphorylating tyrosine, serine, and threonine residues. The human DYRK family comprises 5 members (DYRK1A, DYRK1B, DYRK2, DYRK3, and DYRK4). The different DYRKs have been implicated in neurological diseases, cancer, and virus infection. Specifically, DYRK2 has been mainly implicated in cancer progression. However, its role in healthy and pathological nervous system function has been overlooked. In this context, we review current available data on DYRK2 in the nervous system, where the available studies indicate that it has key roles in neuronal development and function. DYRK2 regulates neuronal morphogenesis (e.g., axon growth and branching) by phosphorylating cytoskeletal elements (e.g., doublecortin). Comparative data reveals that it is involved in the development of olfactory and visual systems, the spinal cord and possibly the cortex. DYRK2 also participates in processes such as olfaction, vision and, learning. However, DYRK2 could be involved in other brain functions since available expression data shows that it is expressed across the whole brain. High DYRK2 protein levels have been detected in basal ganglia and cerebellum. In adult nervous system, DYRK2 mRNA expression is highest in the cortex, hippocampus, and retina. Regarding nervous system disease, DYRK2 has been implicated in neuroblastoma, glioma, epilepsy, neuroinflammation, Alzheimer's disease, Parkinson's disease, spinal cord injury and virus infection. DYRK2 upregulation usually has a negative impact in cancer-related conditions and a positive impact in non-malignant conditions. Its role in axon growth makes DYRK2 as a promising target for spinal cord or brain injury and regeneration.
Insights
Dual specificity tyrosine-phosphorylation-regulated kinases 2 (DYRK2) plays key roles in nervous system development and function. This review highlights DYRK2
Area of Science:
- Molecular Biology
- Neuroscience
Background:
- Dual specificity tyrosine-phosphorylation-regulated kinases (DYRKs) are crucial eukaryotic kinases.
- The human DYRK family has five members, including DYRK2.
- DYRK2 is primarily linked to cancer, with its role in the nervous system less explored.
Purpose of the Study:
- To review the current understanding of DYRK2's function in the healthy and diseased nervous system.
- To consolidate available data on DYRK2's involvement in neuronal development, function, and neurological disorders.
Main Methods:
- Literature review of existing studies on DYRK2 in the nervous system.
- Analysis of expression data and functional roles in neuronal processes.
- Examination of DYRK2's implication in various neurological diseases.
Main Results:
- DYRK2 is vital for neuronal morphogenesis, regulating axon growth and branching via cytoskeletal element phosphorylation.
- DYRK2 is involved in olfactory and visual system development, spinal cord formation, and potentially cortical development.
- DYRK2 expression is widespread in the brain, with high levels in basal ganglia, cerebellum, cortex, hippocampus, and retina.
- DYRK2 is implicated in neuroblastoma, glioma, epilepsy, neuroinflammation, Alzheimer's, Parkinson's, spinal cord injury, and viral infections.
- DYRK2 upregulation negatively impacts cancer but positively affects non-malignant conditions.
Conclusions:
- DYRK2 is a critical regulator of neuronal development and function.
- DYRK2's role in axon growth presents therapeutic potential for spinal cord and brain injury regeneration.
- Further research into DYRK2's broader functions in the brain is warranted.
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