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Published on: September 7, 2019
Short-chain fatty acids contribute to neuropathic pain via regulating microglia activation and polarization
Feng Zhou1, Xian Wang2, Baoyu Han1
1Department of Anesthesiology, Jinling Hospital, School of Medicine, Nanjing University, Nanjing, China.
Abstract:
Microglia activation and subsequent pro-inflammatory responses play a key role in the development of neuropathic pain. The process of microglia polarization towards pro-inflammatory phenotype often occurs during neuroinflammation. Recent studies have demonstrated an active role for the gut microbiota in promoting microglial full maturation and inflammatory capabilities via the production of Short-Chain Fatty Acids (SCFAs). However, it remains unclear whether SCFAs is involved in pro-inflammatory/anti-inflammatory phenotypes microglia polarization in the neuropathic pain. In the present study, chronic constriction injury (CCI) was used to induce neuropathic pain in mice, the mechanical withdrawal threshold, thermal hyperalgesia were accomplished. The levels of microglia markers including ionized calcium-binding adaptor molecule 1 (Iba1), cluster of differentiation 11b (CD11b), pro-inflammatory phenotype markers including CD68, interleukin-1β (IL-1β), tumor necrosis factor-α (TNF-α), and anti-inflammatory phenotype markers including CD206, IL-4 in the hippocampus and spinal cord were determined on day 21 after CCI. The results showed that CCI produced mechanical allodynia and thermal hyperalgesia, and also increased the expressions of microglia markers (Iba1, CD11b) and pro-inflammatory phenotype markers (CD68, IL-1β, and TNF-α), but not anti-inflammatory phenotype marker (CD206, IL-4) in the hippocampus and spinal cord, accompanied by increased SCFAs in the gut. Notably, antibiotic administration reversed these abnormalities, and its effects was also bloked by SCFAs administration. In conclusion, data from our study suggest that CCI can lead to mechanical and thermal hyperalgesia, while SCFAs play a key role in the pathogenesis of neuropathic pain by regulating microglial activation and subsequent pro-inflammatory phenotype polarization. Antibiotic administration may be a new treatment for neuropathic pain by reducing the production of SCFAs and further inhibiting the process of microglia polarization.
Insights
Short-Chain Fatty Acids (SCFAs) from gut microbiota drive neuropathic pain by promoting pro-inflammatory microglia polarization. Antibiotic treatment reversed this, suggesting a novel therapeutic approach for pain management.
Area of Science:
- Neuroscience
- Immunology
- Microbiology
Background:
- Microglia activation and pro-inflammatory responses are crucial in neuropathic pain development.
- Gut microbiota and Short-Chain Fatty Acids (SCFAs) influence microglial maturation and inflammation.
- The specific role of SCFAs in microglia polarization phenotypes during neuropathic pain remains unclear.
Purpose of the Study:
- To investigate the role of SCFAs in microglia polarization towards pro-inflammatory or anti-inflammatory phenotypes in a mouse model of neuropathic pain.
- To determine the impact of gut microbiota modulation on neuropathic pain and microglial activation.
Main Methods:
- Neuropathic pain was induced using chronic constriction injury (CCI) in mice.
- Microglia markers (Iba1, CD11b) and phenotype markers (CD68, IL-1β, TNF-α, CD206, IL-4) were assessed in the hippocampus and spinal cord.
- Gut SCFA levels were measured; effects of antibiotic administration and SCFA supplementation were evaluated.
Main Results:
- CCI induced mechanical allodynia, thermal hyperalgesia, and increased pro-inflammatory microglia markers (Iba1, CD11b, CD68, IL-1β, TNF-α) but not anti-inflammatory markers (CD206, IL-4).
- Gut SCFA levels were elevated post-CCI.
- Antibiotic treatment reversed CCI-induced pain and microglial changes, an effect blocked by SCFA administration.
Conclusions:
- Gut-derived SCFAs play a key role in neuropathic pain pathogenesis by driving microglia towards a pro-inflammatory phenotype.
- Modulating gut microbiota, potentially by reducing SCFA production, offers a promising therapeutic strategy for neuropathic pain.
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