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Author Spotlight: Enhancements in Gene Expression Regulation Research
Published on: September 15, 2023
Novel histone modifications in microglia derived from a mouse model of chronic pain
Ping Zhang1, Jennifer Guergues2, Amy R Alleyne1
1Department of Pharmacodynamics, University of Florida, Gainesville, Florida, USA.
Abstract:
As the resident immune cells in the central nervous system, microglia play an important role in the maintenance of its homeostasis. Dysregulation of microglia has been associated with the development and maintenance of chronic pain. However, the relevant molecular pathways remain poorly defined. In this study, we used a mass spectrometry-based proteomic approach to screen potential changes of histone protein modifications in microglia isolated from the brain of control and cisplatin-induced neuropathic pain adult C57BL/6J male mice. We identified several novel microglial histone modifications associated with pain, including statistically significantly decreased histone H3.1 lysine 27 mono-methylation (H3.1K27me1, 54.8% of control) and H3 lysine 56 tri-methylation (7.5% of control), as well as a trend suggesting increased H3 tyrosine 41 nitration. We further investigated the functional role of H3.1K27me1 and found that treatment of cultured microglial cells for 4 consecutive days with 1-10 μM of NCDM-64, a potent and selective inhibitor of lysine demethylase 7A, an enzyme responsible for the demethylation of H3K27me1, dose-dependently elevated its levels with a greater than a two-fold increase observed at 10 μM compared to vehicle-treated control cells. Moreover, pretreatment of mice with NCDM-64 (10 or 25 mg/kg/day, i.p.) prior to cisplatin treatment prevented the development of neuropathic pain in mice. The identification of specific chromatin marks in microglia associated with chronic pain may yield critical insight into the contribution of microglia to the development and maintenance of pain, and opens new avenues for the development of novel nonopioid therapeutics for the effective management of chronic pain.
Insights
Researchers identified novel microglial histone modifications linked to neuropathic pain. Inhibiting a specific enzyme reversed these changes and prevented pain development, offering new therapeutic targets for chronic pain management.
Area of Science:
- Neuroscience
- Immunology
- Epigenetics
Background:
- Microglia are central nervous system immune cells crucial for homeostasis.
- Microglial dysregulation is implicated in chronic pain, but molecular pathways are unclear.
- Understanding microglial epigenetic changes is key to defining their role in pain.
Purpose of the Study:
- To identify microglial histone modifications associated with cisplatin-induced neuropathic pain.
- To investigate the functional role of identified histone modifications in pain development.
- To explore potential non-opioid therapeutic strategies targeting microglial epigenetic regulation.
Main Methods:
- Proteomic analysis using mass spectrometry on microglia from control and neuropathic pain mice.
- Investigation of histone H3.1 lysine 27 mono-methylation (H3.1K27me1) using NCDM-64, a lysine demethylase 7A inhibitor.
- Assessment of neuropathic pain development in mice pretreated with NCDM-64.
Main Results:
- Identified decreased H3.1K27me1 (54.8% of control) and H3 lysine 56 tri-methylation (7.5% of control) in microglia from pain mice.
- Observed a trend towards increased H3 tyrosine 41 nitration.
- NCDM-64 treatment dose-dependently increased H3.1K27me1 levels in cultured microglia and prevented neuropathic pain development in vivo.
Conclusions:
- Specific microglial histone modifications are associated with chronic neuropathic pain.
- Targeting H3.1K27me1 demethylation via lysine demethylase 7A inhibition can alleviate pain.
- These findings suggest novel epigenetic targets for non-opioid pain therapeutics.
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