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Updated: Dec 6, 2025

In Vivo Functional Study of Disease-associated Rare Human Variants Using Drosophila
Published on: August 20, 2019
Uncovering DNA-PKcs ancient phylogeny, unique sequence motifs and insights for human disease
James P Lees-Miller1, Alexander Cobban1, Panagiotis Katsonis2
1Department of Biochemistry and Molecular Biology, Cumming School of Medicine, University of Calgary, Calgary, Alberta, T2N 4N1, Canada.
Abstract:
DNA-dependent protein kinase catalytic subunit (DNA-PKcs) is a key member of the phosphatidylinositol-3 kinase-like (PIKK) family of protein kinases with critical roles in DNA-double strand break repair, transcription, metastasis, mitosis, RNA processing, and innate and adaptive immunity. The absence of DNA-PKcs from many model organisms has led to the assumption that DNA-PKcs is a vertebrate-specific PIKK. Here, we find that DNA-PKcs is widely distributed in invertebrates, fungi, plants, and protists, and that threonines 2609, 2638, and 2647 of the ABCDE cluster of phosphorylation sites are highly conserved amongst most Eukaryotes. Furthermore, we identify highly conserved amino acid sequence motifs and domains that are characteristic of DNA-PKcs relative to other PIKKs. These include residues in the Forehead domain and a novel motif we have termed YRPD, located in an α helix C-terminal to the ABCDE phosphorylation site loop. Combining sequence with biochemistry plus structural data on human DNA-PKcs unveils conserved sequence and conformational features with functional insights and implications. The defined generally progressive DNA-PKcs sequence diversification uncovers conserved functionality supported by Evolutionary Trace analysis, suggesting that for many organisms both functional sites and evolutionary pressures remain identical due to fundamental cell biology. The mining of cancer genomic data and germline mutations causing human inherited disease reveal that robust DNA-PKcs activity in tumors is detrimental to patient survival, whereas germline mutations compromising function are linked to severe immunodeficiency and neuronal degeneration. We anticipate that these collective results will enable ongoing DNA-PKcs functional analyses with biological and medical implications.
Insights
DNA-dependent protein kinase catalytic subunit (DNA-PKcs) is conserved across eukaryotes, not just vertebrates. Its key phosphorylation sites and unique motifs reveal conserved functions critical for cell biology and disease.
Area of Science:
- Biochemistry
- Molecular Biology
- Evolutionary Biology
Background:
- DNA-dependent protein kinase catalytic subunit (DNA-PKcs) is a vital PIKK family kinase.
- Its presence was previously thought to be vertebrate-specific.
- DNA-PKcs regulates DNA repair, immunity, and other cellular processes.
Purpose of the Study:
- To investigate the evolutionary distribution of DNA-PKcs.
- To identify conserved functional domains and motifs within DNA-PKcs.
- To explore the implications of DNA-PKcs conservation and variation in disease.
Main Methods:
- Bioinformatic analysis of DNA-PKcs sequences across diverse taxa.
- Identification and comparison of conserved amino acid motifs and domains.
- Integration of sequence data with existing biochemical and structural information.
- Evolutionary Trace analysis to map functional sites.
Main Results:
- DNA-PKcs is widely distributed in invertebrates, fungi, plants, and protists.
- Key phosphorylation sites (T2609, T2638, T2647) and motifs (Forehead domain, YRPD) are highly conserved.
- Conserved sequence and conformational features suggest conserved functionality.
- Tumor DNA-PKcs activity correlates with poor survival; mutations link to immunodeficiency and neurodegeneration.
Conclusions:
- DNA-PKcs is an ancient, broadly conserved kinase essential across eukaryotes.
- Conserved features highlight fundamental roles in cell biology.
- Dysregulation of DNA-PKcs has significant implications for cancer and inherited diseases.
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