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Updated: Jul 12, 2025

Stimulation of Cytoplasmic DNA Sensing Pathways In Vitro and In Vivo
Published on: September 18, 2014
Cytosolic DNA accumulation promotes breast cancer immunogenicity via a STING-independent pathway
Jing Zhang1, Hui Dai2, Lei Huo3
1Department of Systems Biology, The University of Texas MD Anderson Cancer Center, Houston, Texas, USA zhangjing@him.cas.cn sylin@mdanderson.org.
Background:
Immune checkpoint blockade (ICB) has revolutionized cancer treatment. However, ICB alone has demonstrated only benefit in a small subset of patients with breast cancer. Recent studies have shown that agents targeting DNA damage response improve the efficacy of ICB and promote cytosolic DNA accumulation. However, recent clinical trials have shown that these agents are associated with hematological toxicities. More effective therapeutic strategies are urgently needed.
Methods:
Primary triple negative breast cancer tumors were stained for cytosolic single-stranded DNA (ssDNA) using multiplex immunohistochemical staining. To increase cytosolic ssDNA, we genetically silenced TREX1. The role of tumor cytosolic ssDNA in promoting tumor immunogenicity and antitumor immune response was evaluated using murine breast cancer models.
Results:
We found the tumorous cytosolic ssDNA is associated with tumor-infiltrating lymphocyte in patients with triple negative breast cancer. TREX1 deficiency triggered a STING-independent innate immune response via DDX3X. Cytosolic ssDNA accumulation in tumors due to TREX1 deletion is sufficient to drastically improve the efficacy of ICB. We further identified a cytosolic ssDNA inducer CEP-701, which sensitized breast tumors to ICB without the toxicities associated with inhibiting DNA damage response.
Conclusions:
This work demonstrated that cytosolic ssDNA accumulation promotes breast cancer immunogenicity and may be a novel therapeutic strategy to improve the efficacy of ICB with minimal toxicities.
Insights
Accumulating cytosolic single-stranded DNA (ssDNA) in breast cancer tumors enhances immune response and improves the effectiveness of immune checkpoint blockade (ICB). This novel strategy offers a promising alternative with reduced toxicities.
Area of Science:
- Oncology
- Immunology
- Cancer Biology
Background:
- Immune checkpoint blockade (ICB) shows limited efficacy in breast cancer.
- Agents targeting DNA damage response improve ICB but cause toxicities.
- Novel strategies are needed to enhance ICB efficacy in breast cancer.
Purpose of the Study:
- To investigate the role of cytosolic single-stranded DNA (ssDNA) in breast cancer immunogenicity.
- To evaluate the potential of targeting cytosolic ssDNA to enhance ICB efficacy.
- To identify therapeutic strategies for improving ICB with minimal toxicity.
Main Methods:
- Analyzed cytosolic ssDNA in triple-negative breast cancer tumors.
- Genetically silenced TREX1 to increase cytosolic ssDNA.
- Evaluated ssDNA's role in tumor immunity using murine models.
Main Results:
- Tumor cytosolic ssDNA correlates with tumor-infiltrating lymphocytes in triple-negative breast cancer.
- TREX1 deficiency induces STING-independent innate immunity via DDX3X.
- TREX1 deletion-induced cytosolic ssDNA accumulation significantly enhances ICB efficacy.
- CEP-701, a novel inducer, sensitizes tumors to ICB without associated toxicities.
Conclusions:
- Cytosolic ssDNA accumulation enhances breast cancer immunogenicity.
- Targeting cytosolic ssDNA represents a novel therapeutic strategy for improving ICB.
- This approach offers potential for enhanced cancer treatment with reduced side effects.
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