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A Novel Druggable Dual-Specificity tYrosine-Regulated Kinase3/Calmodulin Kinase-like Vesicle-Associated Signaling
Esteban J Rozen1,2,3, Kim Wigglesworth3, Jason M Shohet3
1Crnic Institute Boulder Branch, BioFrontiers Institute, University of Colorado Boulder, 3415 Colorado Avenue, Boulder, CO 80303, USA.
Abstract:
High-risk neuroblastoma is a very aggressive pediatric cancer, accounting for ~15% of childhood cancer mortality. Therefore, novel therapeutic strategies for the treatment of neuroblastoma are urgently sought. Here, we focused on the potential implications of the Dual-specificity tYrosine-Regulated Kinase (DYRK) family and downstream signaling pathways. We used bioinformatic analysis of public datasets from neuroblastoma cohorts and cell lines to search correlations between patient survival and expression of DYRK kinases. Additionally, we performed biochemical, molecular, and cellular approaches to validate and characterize our observations, as well as an in vivo orthotopic murine model of neuroblastoma. We identified the DYRK3 kinase as a critical mediator of neuroblastoma cell proliferation and in vivo tumor growth. DYRK3 has recently emerged as a key regulator of several biomolecular condensates and has been linked to the hypoxic response of neuroblastoma cells. Our data suggest a role for DYRK3 as a regulator of the neuroblastoma-specific protein CAMKV, which is also required for neuroblastoma cell proliferation. CAMKV is a very understudied member of the Ca2+/calmodulin-dependent protein kinase family, originally described as a pseudokinase. We show that CAMKV is phosphorylated by DYRK3, and that inhibition of DYRK3 kinase activity induces CAMKV aggregation, probably mediated by its highly disordered C-terminal half. Importantly, we provide evidence that the DYRK3/CAMKV signaling module could play an important role for the function of the mitotic spindle during cell division. Our data strongly support the idea that inhibition of DYRK3 and/or CAMKV in neuroblastoma cells could constitute an innovative and highly specific intervention to fight against this dreadful cancer.
Insights
Researchers identified Dual-specificity tYrosine-Regulated Kinase 3 (DYRK3) as a key driver of high-risk neuroblastoma growth. Inhibiting DYRK3 and its target CAMKV shows promise as a novel therapeutic strategy for this aggressive pediatric cancer.
Area of Science:
- Oncology
- Molecular Biology
- Biochemistry
Background:
- High-risk neuroblastoma is an aggressive pediatric cancer with limited treatment options.
- Novel therapeutic targets are urgently needed to improve patient outcomes.
Purpose of the Study:
- To investigate the role of Dual-specificity tYrosine-Regulated Kinase (DYRK) family members in neuroblastoma.
- To identify novel therapeutic strategies targeting DYRK kinases and their downstream pathways.
Main Methods:
- Bioinformatic analysis of public neuroblastoma datasets.
- Biochemical, molecular, and cellular assays.
- In vivo orthotopic murine model of neuroblastoma.
Main Results:
- DYRK3 kinase is identified as a critical mediator of neuroblastoma cell proliferation and tumor growth.
- DYRK3 regulates the neuroblastoma-specific protein CAMKV, a pseudokinase.
- DYRK3 phosphorylates CAMKV, and its inhibition causes CAMKV aggregation.
- The DYRK3/CAMKV module is implicated in mitotic spindle function.
Conclusions:
- DYRK3 plays a significant role in neuroblastoma progression.
- Targeting the DYRK3/CAMKV signaling pathway offers a potential innovative therapeutic strategy for neuroblastoma.
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