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Updated: Jan 16, 2026

Production, Crystallization, and Structure Determination of the IKK-binding Domain of NEMO
Published on: December 28, 2019
In Silico Analysis of Human NEK10 Reveals Novel Domain Architecture and Protein-Protein Interactions
Andriele S Eichner1,2, Nathaniel Zimmerman1, Avdar San1
1Department of Biology, Brooklyn College, The City University of New York, New York, New York, USA.
Abstract:
Cancer is the second leading cause of death worldwide, with an estimated 27.5 million new cases projected by 2040. Disruptions in cell cycle control cause DNA replication errors to accumulate during cell growth, leading to genomic instability and tumor development. Proteins that regulate cell cycle progression and checkpoint mechanisms are crucial targets for cancer therapy. NIMA-related kinases (NEKs) are a family of serine/threonine kinases involved in regulating various aspects of the cell cycle and mitotic checkpoints in humans. Among these, NEK10 is the most divergent member and has been associated with both cancer and ciliopathies, a group of disorders caused by defects in cilia structure or function. Despite its biological significance and distinctive domain architecture, the structural details of NEK10 remain largely unknown. To address this gap, we employed computational modeling techniques to predict the complete structure of the NEK10 protein. Our analysis revealed a catalytic domain flanked by two coiled-coil domains, armadillo repeats (ARM repeats), an ATP binding site, two putative ubiquitin-associated (UBA) domains, and a PEST sequence known to regulate protein degradation. Furthermore, we mapped a comprehensive interactome of NEK10, uncovering previously unreported interactions with the cancer-related proteins MAP3K1 and HSPB1. MAP3K1, a serine/threonine kinase and E3 ubiquitin ligase frequently mutated in cancers, interacts with the catalytic region of NEK10. The interaction with HSPB1, a molecular chaperone associated with poor cancer prognosis, is mediated by NEK10's ARM repeats. Our findings highlight a potential connection between NEK10, ciliogenesis, and cancer, suggesting an important role in cancer development and progression.
Insights
NIMA-related kinase 10 (NEK10) protein structure was predicted using computational methods. This revealed new interactions with cancer-related proteins MAP3K1 and HSPB1, suggesting a role in cancer development.
Area of Science:
- Biochemistry
- Molecular Biology
- Cancer Research
Background:
- Cancer is a leading cause of death, driven by cell cycle disruptions and genomic instability.
- NIMA-related kinases (NEKs) regulate cell cycle and mitotic checkpoints; NEK10 is linked to cancer and ciliopathies.
- The structure and function of NEK10, a divergent NEK family member, are poorly understood.
Purpose of the Study:
- To predict the complete structure of the NEK10 protein using computational modeling.
- To identify novel protein interactions of NEK10.
- To explore the potential role of NEK10 in cancer development and ciliogenesis.
Main Methods:
- Computational modeling was used to predict the full structure of NEK10.
- Bioinformatic analysis was performed to map the NEK10 interactome.
- Protein domains, including catalytic, coiled-coil, ARM repeats, ATP binding site, UBA domains, and PEST sequence, were identified.
Main Results:
- The predicted NEK10 structure includes a catalytic domain, coiled-coil domains, ARM repeats, an ATP binding site, UBA domains, and a PEST sequence.
- Novel interactions were identified between NEK10 and MAP3K1 (cancer-related kinase and E3 ubiquitin ligase) and HSPB1 (molecular chaperone).
- MAP3K1 interacts with NEK10's catalytic region, while HSPB1 interacts via NEK10's ARM repeats.
Conclusions:
- The predicted structure and identified interactions provide new insights into NEK10 function.
- NEK10's interactions with MAP3K1 and HSPB1 suggest a potential role in cancer progression.
- Findings highlight a possible link between NEK10, ciliogenesis, and cancer development.
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