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Author Spotlight: Peptidome Extraction from Small Extracellular Vesicles Isolated from Bone Marrow-Derived Macrophages
Published on: June 30, 2023
Microglial epigenetic memory is associated with accelerated resolution of inflammatory pain induced by prophylactic
Xuan Luo1, Jason R Wickman1, Jason T DaCunza1
1Department of Pharmacology & Physiology, Drexel University College of Medicine, 245 North 15th Street, Philadelphia, PA 19102, USA.
Abstract:
Small extracellular vesicles (sEVs) including exosomes play an important role in intercellular communication and can exert immunomodulatory effects in recipient cells. We have shown that a single prophylactic intrathecal injection of sEVs from RAW 264.7 macrophages two weeks prior, promotes faster resolution of mechanical and thermal hypersensitivity in the complete Freund's adjuvant (CFA) mouse model of inflammatory pain. How this long-term memory develops, and how sEVs regulate immune responses are unknown. Recent studies have shown that priming microglia with inflammatory stimuli can enhance or suppress responses to a delayed secondary insult via epigenetic modifications. We hypothesized that prophylactic intrathecal administration of macrophage-derived sEVs confers accelerated resolution of inflammatory pain by reprogramming epigenetic memory in spinal microglia in recipient CFA model mice. To determine whether prophylactic sEVs could attenuate pain in the absence of microglia when administering sEVs, we ablated microglia using a colony-stimulating factor 1 receptor (CSF1R) inhibitor, PLX5622. sEV-induced pain prophylaxis was completely abolished in PLX5622-fed mice, indicating that microglia are required to be present during sEV administration to confer early resolution of inflammatory pain hypersensitivity. ChIP-seq analysis in spinal microglia 14 days after sEV administration (prior to CFA) revealed an increased number of gene loci enriched for H3K4me1, a hallmark of innate immune memory. Furthermore, inhibiting the H3K4 mono-methyltransferase SETD7 abolished sEV-induced pain attenuation. Our findings indicate that both microglia and its epigenetic reprogramming contribute to pain prophylaxis induced by macrophage-derived sEVs, providing novel insights into the development of non-addictive preventive analgesia.
Insights
Macrophage-derived small extracellular vesicles (sEVs) accelerate inflammatory pain resolution by reprogramming spinal microglia. This effect requires microglia presence and involves epigenetic modifications, offering insights into non-addictive pain prevention.
Area of Science:
- Neuroscience
- Immunology
- Cell Biology
Background:
- Small extracellular vesicles (sEVs) mediate intercellular communication and immunomodulation.
- Prophylactic intrathecal sEVs from macrophages accelerate inflammatory pain resolution in mice.
- The mechanisms of sEV-induced long-term pain memory and immune regulation are unclear.
Purpose of the Study:
- To investigate if macrophage-derived sEVs accelerate inflammatory pain resolution by reprogramming epigenetic memory in spinal microglia.
- To determine the role of microglia in sEV-mediated pain prophylaxis.
Main Methods:
- Utilized the complete Freund's adjuvant (CFA) mouse model of inflammatory pain.
- Administered sEVs intrathecally and ablated microglia using a CSF1R inhibitor (PLX5622).
- Performed ChIP-seq analysis to identify epigenetic modifications (H3K4me1) in spinal microglia.
- Inhibited the H3K4 mono-methyltransferase SETD7 to assess its role in pain attenuation.
Main Results:
- sEV-induced pain prophylaxis was abolished in microglia-ablated mice, confirming microglia's essential role.
- ChIP-seq revealed increased H3K4me1 enrichment in spinal microglia 14 days post-sEV administration.
- Inhibition of SETD7 abolished the pain-attenuating effects of sEVs.
Conclusions:
- Microglia are essential for the early resolution of inflammatory pain hypersensitivity induced by macrophage-derived sEVs.
- Epigenetic reprogramming of spinal microglia, specifically H3K4me1 modification, contributes to sEV-mediated pain prophylaxis.
- Macrophage-derived sEVs offer potential for developing non-addictive preventive analgesia through microglia modulation.
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