Related Experiment Video
Updated: Sep 23, 2025

Author Spotlight: Enhancements in Gene Expression Regulation Research
Published on: September 15, 2023
Epigenetic regulation of innate immune memory in microglia
Xiaoming Zhang1, Laura Kracht1, Antonio M Lerario2
1Department of Biomedical Sciences of Cells and Systems, Section Molecular Neurobiology, University Medical Center Groningen, University of Groningen, Antonius Deusinglaan 1, Hpc-FB43, 9713 AV, Groningen, The Netherlands.
Background:
Microglia are the tissue-resident macrophages of the CNS. They originate in the yolk sac, colonize the CNS during embryonic development and form a self-sustaining population with limited turnover. A consequence of their relative slow turnover is that microglia can serve as a long-term memory for inflammatory or neurodegenerative events.
Methods:
Using ATAC-, ChIP- and RNA-sequencing, we characterized the epigenomes and transcriptomes of FACS-purified microglia from mice exposed to different stimuli. A repeated endotoxin challenge (LPS) was used to induce tolerance in microglia, while genotoxic stress (DNA repair deficiency-induced accelerated aging through Ercc1 deficiency) resulted in primed (hypersensitive) microglia.
Results:
Whereas the enrichment of permissive epigenetic marks at enhancer regions could explain training (hyper-responsiveness) of primed microglia to an LPS challenge, the tolerized response of microglia seems to be regulated by loss of permissive epigenetic marks. We identify that inflammatory stimuli and accelerated aging as a result of genotoxic stress activate distinct gene networks. These gene networks and associated biological processes are partially overlapping, which is likely driven by specific transcription factor networks, resulting in altered epigenetic signatures and distinct functional (desensitized vs. primed) microglia phenotypes.
Conclusion:
This study provides insight into epigenetic profiles and transcription factor networks associated with transcriptional signatures of tolerized and trained microglia in vivo, leading to a better understanding of innate immune memory of microglia.
Insights
Microglia exhibit innate immune memory, with distinct epigenetic and gene network changes underlying their trained (hypersensitive) or tolerized responses to stimuli. This reveals how microglia remember inflammatory events.
Area of Science:
- Neuroimmunology
- Epigenetics
- Innate Immunity
Background:
- Microglia, the CNS's resident macrophages, originate in the yolk sac and have limited turnover.
- Their slow turnover allows microglia to retain long-term memory of CNS inflammatory and neurodegenerative events.
Purpose of the Study:
- To investigate the epigenetic and transcriptional mechanisms underlying microglial memory.
- To differentiate the molecular signatures of trained (primed) and tolerized microglia in vivo.
Main Methods:
- Utilized ATAC-, ChIP-, and RNA-sequencing on FACS-purified mouse microglia.
- Induced microglial tolerance via repeated lipopolysaccharide (LPS) challenge.
- Induced microglial priming through genotoxic stress (Ercc1 deficiency-induced accelerated aging).
Main Results:
- Enrichment of permissive epigenetic marks at enhancers explains trained microglial hyper-responsiveness.
- Loss of permissive epigenetic marks regulates the tolerized microglial response.
- Distinct, partially overlapping gene networks and transcription factor networks drive altered epigenetic signatures and functional microglial phenotypes (primed vs. tolerized).
Conclusions:
- Provides insights into epigenetic profiles and transcription factor networks governing microglial transcriptional signatures.
- Enhances understanding of innate immune memory in microglia, differentiating trained and tolerized states.
Related Concept Videos
Epigenetic Regulation
Cells of the Adaptive Immune Response
Immunological Memory
What is Immunological Memory?
Immunological memory is an integral function of the immune system that allows it to recognize and react more rapidly and effectively to pathogens previously encountered. This feature...
Inflammatory Response
Inflammation can be triggered by various stimuli, such as impact, abrasion, chemical irritation, infections, and extreme hot or cold temperatures. These can damage cells and connective tissue fibers,...

