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Stimulation of Cytoplasmic DNA Sensing Pathways In Vitro and In Vivo
Published on: September 18, 2014
Cytosolic DNA sensors and glial responses to endogenous DNA
Alexander J Suptela1, Ian Marriott1
1Department of Biological Sciences, University of North Carolina at Charlotte, Charlotte, NC, United States.
Abstract:
Genomic instability is a key driving force for the development and progression of many neurodegenerative diseases and central nervous system (CNS) cancers. The initiation of DNA damage responses is a critical step in maintaining genomic integrity and preventing such diseases. However, the absence of these responses or their inability to repair genomic or mitochondrial DNA damage resulting from insults, including ionizing radiation or oxidative stress, can lead to an accumulation of self-DNA in the cytoplasm. Resident CNS cells, such as astrocytes and microglia, are known to produce critical immune mediators following CNS infection due to the recognition of pathogen and damage-associated molecular patterns by specialized pattern recognition receptors (PRRs). Recently, multiple intracellular PRRs, including cyclic GMP-AMP synthase, interferon gamma-inducible 16, absent in melanoma 2, and Z-DNA binding protein, have been identified as cytosolic DNA sensors and to play critical roles in glial immune responses to infectious agents. Intriguingly, these nucleic acid sensors have recently been shown to recognize endogenous DNA and trigger immune responses in peripheral cell types. In the present review, we discuss the available evidence that cytosolic DNA sensors are expressed by resident CNS cells and can mediate their responses to the presence of self-DNA. Furthermore, we discuss the potential for glial DNA sensor-mediated responses to provide protection against tumorigenesis versus the initiation of potentially detrimental neuroinflammation that could initiate or foster the development of neurodegenerative disorders. Determining the mechanisms that underlie the detection of cytosolic DNA by glia and the relative role of each pathway in the context of specific CNS disorders and their stages may prove pivotal in our understanding of the pathogenesis of such conditions and might be leveraged to develop new treatment modalities.
Insights
Genomic instability drives neurodegenerative diseases and CNS cancers. Cytosolic DNA sensors in glial cells can detect self-DNA, potentially protecting against tumors or causing harmful neuroinflammation.
Area of Science:
- Neuroscience
- Immunology
- Genetics
Background:
- Genomic instability is a major factor in neurodegenerative diseases and CNS cancers.
- DNA damage responses are crucial for maintaining genomic integrity.
- Accumulation of self-DNA in the cytoplasm can occur due to failed DNA repair.
Purpose of the Study:
- To review evidence for cytosolic DNA sensors in CNS cells.
- To discuss the role of these sensors in glial immune responses to self-DNA.
- To explore the dual potential of these responses in cancer versus neurodegeneration.
Main Methods:
- Literature review of studies on cytosolic DNA sensors in the CNS.
- Analysis of pattern recognition receptor (PRR) involvement in glial cells.
- Discussion of endogenous DNA recognition by nucleic acid sensors.
Main Results:
- Multiple intracellular PRRs (e.g., cGAS, IFI16, AIM2, ZBP1) act as cytosolic DNA sensors.
- These sensors are expressed in resident CNS cells like astrocytes and microglia.
- Evidence suggests these sensors can recognize endogenous DNA and trigger immune responses.
Conclusions:
- Cytosolic DNA sensors in glia can respond to self-DNA, with implications for CNS health.
- These responses may offer protection against tumorigenesis.
- Conversely, they could initiate neuroinflammation, contributing to neurodegenerative disorders.
- Further research into glial DNA detection mechanisms is vital for understanding CNS diseases and developing treatments.

