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Updated: May 7, 2026

Stimulation of Cytoplasmic DNA Sensing Pathways In Vitro and In Vivo
Published on: September 18, 2014
The DNA damage pathway regulates innate immune system ligands of the NKG2D receptor
Stephan Gasser1, Sandra Orsulic, Eric J Brown
1Department of Molecular and Cell Biology and Cancer Research Laboratory, University of California, Berkeley, California 94720-3200, USA.
Abstract:
Some stimulatory receptors of the innate immune system, such as the NKG2D receptor (also called KLRK1) expressed by natural killer cells and activated CD8(+)T cells, recognize self-molecules that are upregulated in diseased cells by poorly understood mechanisms. Here we show that mouse and human NKG2D ligands are upregulated in non-tumour cell lines by genotoxic stress and stalled DNA replication, conditions known to activate a major DNA damage checkpoint pathway initiated by ATM (ataxia telangiectasia, mutated) or ATR (ATM- and Rad3-related) protein kinases. Ligand upregulation was prevented by pharmacological or genetic inhibition of ATR, ATM or Chk1 (a downstream transducer kinase in the pathway). Furthermore, constitutive ligand expression by a tumour cell line was inhibited by targeting short interfering RNA to ATM, suggesting that ligand expression in established tumour cells, which often harbour genomic irregularities, may be due to chronic activation of the DNA damage response pathway. Thus, the DNA damage response, previously shown to arrest the cell cycle and enhance DNA repair functions, or to trigger apoptosis, may also participate in alerting the immune system to the presence of potentially dangerous cells.
Insights
The DNA damage response pathway upregulates NKG2D ligands on diseased cells. This mechanism alerts the immune system, involving ATM and ATR kinases, to potentially dangerous cells.
Area of Science:
- Immunology
- Molecular Biology
- Cell Biology
Background:
- Innate immune receptors like NKG2D recognize self-molecules on diseased cells via unknown mechanisms.
- NKG2D is expressed on natural killer cells and activated CD8(+)T cells.
Purpose of the Study:
- To elucidate the mechanisms by which NKG2D ligands are upregulated in diseased cells.
- To investigate the role of the DNA damage response pathway in NKG2D ligand expression.
Main Methods:
- Utilized genotoxic stress and stalled DNA replication in cell lines.
- Employed pharmacological and genetic inhibition of ATR, ATM, and Chk1 kinases.
- Used short interfering RNA targeting ATM in tumor cell lines.
Main Results:
- Genotoxic stress and stalled DNA replication upregulated NKG2D ligands in mouse and human non-tumor cell lines.
- Inhibition of ATR, ATM, or Chk1 prevented ligand upregulation.
- Targeting ATM with siRNA reduced constitutive ligand expression in a tumor cell line.
Conclusions:
- The DNA damage response pathway, initiated by ATR and ATM, upregulates NKG2D ligands.
- Chronic activation of this pathway may drive ligand expression in tumor cells.
- The DNA damage response may alert the immune system to dangerous cells.
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