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Site-Specific Phosphoproteomics Uncovers Potential Regulatory Networks of NEK4 in DNA Damage Response and Cancer
Spoorthi Sathish Kashipatna1, Apoorva Pai1, Leona Dcunha1
1Centre for Integrative Omics Data Science, Yenepoya (Deemed to be University), Mangalore, India.
Abstract:
NIMA-related kinase 4 (NEK4) is a serine/threonine kinase implicated in microtubule stabilization, cilia function, and DNA damage response (DDR), with emerging roles in cancer progression through context-dependent effects on proliferation, epithelial-to-mesenchymal transition (EMT), and metastasis. Despite its significance, site-specific phosphorylation dynamics of NEK4 remain underexplored. Here, we conducted a comprehensive computational phosphoproteomic analysis by curating Class-1 phosphosites from over 3800 public datasets, identifying NEK4 phosphosites, including four predominant sites (S563, S661, S461, S639) outside the kinase domain that exhibit high detection frequencies and differential regulation. Coregulation analysis revealed phosphosites in other proteins (PsOPs) that coordinate with these NEK4 sites, linking them to DDR pathways (e.g., via interactions with DNA-PK complex components), EMT signaling, microtubule organization, and mitochondrial function. Network mapping integrated predicted upstream kinases (e.g., CDK13, RPS6KA1/3), downstream substrates (e.g., MKI67, INCENP), and binary interactors (e.g., TMPO, RRP1B), highlighting NEK4's integration into cancer-associated networks involving cell cycle regulation, apoptosis, and autophagy. Functional enrichment underscored NEK4's potential in modulating genotoxic stress responses and tumorigenic reprogramming. These findings provide a phospho-centric framework for NEK4 signaling, positioning it as a therapeutic target in DDR-defective and EMT-driven cancers, and lay the groundwork for experimental validation of its site-specific roles.
Insights
NIMA-related kinase 4 (NEK4) phosphorylation sites were identified, revealing coordination with DNA damage response and epithelial-to-mesenchymal transition pathways. This offers a new therapeutic target for cancers.
Area of Science:
- Molecular Biology
- Cancer Research
- Proteomics
Background:
- NIMA-related kinase 4 (NEK4) is crucial for microtubule stability, cilia, and DNA damage response (DDR).
- NEK4 influences cancer progression via proliferation, epithelial-to-mesenchymal transition (EMT), and metastasis.
- Site-specific phosphorylation of NEK4 is not well understood.
Purpose of the Study:
- To computationally analyze NEK4 phosphorylation dynamics.
- To identify key NEK4 phosphosites and their regulatory networks.
- To explore NEK4's role in cancer signaling pathways.
Main Methods:
- Computational phosphoproteomic analysis of over 3800 public datasets.
- Identification and characterization of NEK4 Class-1 phosphosites.
- Coregulation, network mapping, and functional enrichment analyses.
Main Results:
- Four predominant NEK4 phosphosites (S563, S661, S461, S639) outside the kinase domain were identified.
- NEK4 phosphosites are coregulated with proteins involved in DDR, EMT, microtubule organization, and mitochondrial function.
- Network analysis revealed NEK4's integration into cell cycle, apoptosis, and autophagy networks relevant to cancer.
Conclusions:
- NEK4 signaling is linked to genotoxic stress response and cancer reprogramming.
- NEK4's phosphorylation dynamics provide a framework for understanding its role in cancer.
- NEK4 is a potential therapeutic target for DNA damage response-defective and EMT-driven cancers.
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