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Updated: Jan 18, 2026

Stimulation of Cytoplasmic DNA Sensing Pathways In Vitro and In Vivo
Published on: September 18, 2014
Innate immune sensing and signaling: Co-opted for genome surveillance? Implications for tumorigenesis
Hexiao Wang1, John H J Petrini1
1Molecular Biology Program, Memorial Sloan-Kettering Cancer Center, New York, NY, United States.
Abstract:
Innate immune signaling is traditionally associated with the response to pathogenic infection. However, emerging evidence suggests that nuclear innate immune sensors and their downstream pathways may also serve as a critical mechanism for genome surveillance. This review explores a model in which DNA sensors such as mouse IFI204 and IFI205 (IFI16 in humans) localize to replication forks, where they detect endogenous aberrant DNA structures and initiate an interferon-stimulated gene (ISG) transcriptional program. A key output of this transcriptional program is ISG15, which we find conjugated to fork-associated proteins and facilitates recruitment of the replication fork protection complex, thereby stabilizing replication forks under physiological conditions. We discuss how nuclear innate immune sensors mediate replication stress sensing and examine the broad consequences of downstream ISG transcription across diverse contexts-including its impact on genome stability and its dual roles in modulating tumor cell behavior and the tumor microenvironment. These findings suggest that the innate immune system, through its nuclear DNA sensing arm, may be evolutionarily co-opted for genome surveillance and may influence tumor initiation and therapy resistance. Understanding how innate immune signaling intersects with replication stress could offer mechanistic insights into tumor development and reveal novel therapeutic targets.
Insights
Nuclear DNA sensors detect aberrant DNA structures at replication forks, initiating interferon-stimulated gene (ISG) transcription. This process stabilizes replication forks and influences genome stability, tumor behavior, and therapy resistance.
Area of Science:
- Immunology
- Molecular Biology
- Genetics
Background:
- Innate immune signaling traditionally targets pathogens.
- Emerging evidence points to nuclear innate immune sensors for genome surveillance.
- Replication forks are crucial sites for DNA replication and integrity.
Purpose of the Study:
- To explore the role of nuclear DNA sensors in genome surveillance.
- To investigate the mechanism by which these sensors detect aberrant DNA structures.
- To examine the consequences of downstream interferon-stimulated gene (ISG) transcription.
Main Methods:
- Review of existing literature on innate immunity and DNA sensing.
- Focus on mouse IFI204/IFI205 and human IFI16 as nuclear DNA sensors.
- Analysis of ISG15 conjugation and its role in replication fork protection.
Main Results:
- Nuclear DNA sensors (IFI204, IFI205/IFI16) localize to replication forks.
- They detect endogenous aberrant DNA structures and initiate ISG transcription.
- ISG15 is conjugated to fork-associated proteins, stabilizing replication forks.
Conclusions:
- Nuclear innate immune sensors mediate replication stress sensing.
- ISG transcription impacts genome stability and tumor biology.
- This innate immune pathway may be co-opted for genome surveillance and influence cancer therapy resistance.
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