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Updated: Aug 15, 2025

Expanding the Toolkit for In Vivo Imaging of Axonal Transport
Published on: December 23, 2021
DYRK3 phosphorylates SNAPIN to regulate axonal retrograde transport and neurotransmitter release
Ye Hyung Lee1, Bo Kyoung Suh2, Unghwi Lee3
1Department of Systems Biology, College of Life Science and Biotechnology, Yonsei University, Seoul, Korea.
Abstract:
Among the five members of the dual-specificity tyrosine-phosphorylation-regulated kinase (DYRK) family, the cellular functions of DYRK3 have not been fully elucidated. Some studies have indicated limited physiological roles and substrates of DYRK3, including promotion of glioblastoma, requirement in influenza virus replication, and coupling of stress granule condensation with mammalian target of rapamycin complex 1 signaling. Here, we demonstrate that serum deprivation causes a decrease in intracellular DYRK3 levels via the proteolytic autophagy pathway, as well as the suppression of DYRK3 gene expression. To further demonstrate how DYRK3 affects cell viability, especially in neurons, we used a yeast two-hybrid assay and identified multiple DYRK3-binding proteins, including SNAPIN, a SNARE-associated protein implicated in synaptic transmission. We also found that DYRK3 directly phosphorylates SNAPIN at the threonine (Thr) 14 residue, increasing the interaction of SNAPIN with other proteins such as dynein and synaptotagmin-1. In central nervous system neurons, SNAPIN is associated with and mediate the retrograde axonal transport of diverse cellular products from the distal axon terminal to the soma and the synaptic release of neurotransmitters, respectively. Moreover, phosphorylation of SNAPIN at Thr-14 was found to positively modulate mitochondrial retrograde transport in mouse cortical neurons and the recycling pool size of synaptic vesicles, contributing to neuronal viability. In conclusion, the present study demonstrates that DYRK3 phosphorylates SNAPIN, positively regulating the dynein-mediated retrograde transport of mitochondria and SNARE complex-mediated exocytosis of synaptic vesicles within the neurons. This finding further suggests that DYRK3 affects cell viability and provides a novel neuroprotective mechanism.
Insights
Dual-specificity tyrosine-phosphorylation-regulated kinase 3 (DYRK3) phosphorylates SNAPIN, enhancing mitochondrial transport and synaptic vesicle release in neurons. This reveals a novel neuroprotective mechanism for DYRK3, impacting neuronal viability.
Area of Science:
- Neuroscience
- Molecular Biology
- Cell Biology
Background:
- The cellular functions of DYRK3, a member of the DYRK kinase family, remain incompletely understood.
- Previous research suggested limited roles for DYRK3, including roles in glioblastoma and viral replication.
Purpose of the Study:
- To elucidate the cellular functions of DYRK3, particularly its role in neuronal viability.
- To identify DYRK3 substrates and their involvement in neuronal processes.
Main Methods:
- Yeast two-hybrid assay to identify DYRK3-binding proteins.
- In vitro phosphorylation assays.
- Studies in mouse cortical neurons to assess effects on axonal transport and synaptic vesicle dynamics.
Main Results:
- Serum deprivation decreases intracellular DYRK3 levels via autophagy and suppresses its gene expression.
- DYRK3 directly phosphorylates SNAPIN at threonine 14, enhancing its interaction with dynein and synaptotagmin-1.
- Phosphorylated SNAPIN positively regulates mitochondrial retrograde transport and synaptic vesicle recycling, crucial for neuronal viability.
Conclusions:
- DYRK3 phosphorylates SNAPIN, promoting dynein-mediated mitochondrial retrograde transport and SNARE complex-mediated synaptic vesicle exocytosis in neurons.
- This mechanism highlights DYRK3's role in maintaining neuronal viability and suggests a novel neuroprotective function.
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