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Published on: December 16, 2021
Commensal microbiota is fundamental for the development of inflammatory pain
F A Amaral1, D Sachs, V V Costa
1Department of Bioquímica e Imunologia, Instituto de Ciências Biológicas, Universidade Federal de Minas Gerais, Pampulha, 31270-901 Belo Horizonte, Brazil.
Abstract:
The ability of an individual to sense pain is fundamental for its capacity to adapt to its environment and to avoid damage. The sensation of pain can be enhanced by acute or chronic inflammation. In the present study, we have investigated whether inflammatory pain, as measured by hypernociceptive responses, was modified in the absence of the microbiota. To this end, we evaluated mechanical nociceptive responses induced by a range of inflammatory stimuli in germ-free and conventional mice. Our experiments show that inflammatory hypernociception induced by carrageenan, lipopolysaccharide, TNF-alpha, IL-1beta, and the chemokine CXCL1 was reduced in germ-free mice. In contrast, hypernociception induced by prostaglandins and dopamine was similar in germ-free or conventional mice. Reduction of hypernociception induced by carrageenan was associated with reduced tissue inflammation and could be reversed by reposition of the microbiota or systemic administration of lipopolysaccharide. Significantly, decreased hypernociception in germ-free mice was accompanied by enhanced IL-10 expression upon stimulation and could be reversed by treatment with an anti-IL-10 antibody. Therefore, these results show that contact with commensal microbiota is necessary for mice to develop inflammatory hypernociception. These findings implicate an important role of the interaction between the commensal microbiota and the host in favoring adaptation to environmental stresses, including those that cause pain.
Insights
The gut microbiota is essential for developing inflammatory pain responses in mice. Germ-free mice showed reduced pain sensitivity, highlighting the microbiota-host interaction
Area of Science:
- Neuroscience
- Immunology
- Microbiology
Background:
- Pain sensation is crucial for survival and adaptation.
- Inflammation can significantly amplify pain perception.
- The role of the gut microbiota in pain modulation is largely unexplored.
Purpose of the Study:
- To investigate the impact of microbiota absence on inflammatory pain responses.
- To determine if germ-free conditions alter hypernociceptive responses to various inflammatory stimuli.
Main Methods:
- Comparison of mechanical nociceptive responses in germ-free and conventional mice.
- Administration of inflammatory agents like carrageenan, lipopolysaccharide, TNF-alpha, IL-1beta, and CXCL1.
- Assessment of pain responses to prostaglandins and dopamine.
Main Results:
- Germ-free mice exhibited reduced inflammatory hypernociception to carrageenan, lipopolysaccharide, TNF-alpha, IL-1beta, and CXCL1.
- Hypernociception to prostaglandins and dopamine was unaffected by microbiota status.
- Reduced inflammation and pain in germ-free mice were linked to increased IL-10 expression, reversible by microbiota restoration or anti-IL-10 treatment.
Conclusions:
- Commensal microbiota is necessary for the development of inflammatory hypernociception.
- The host-microbiota interaction plays a critical role in adapting to pain-inducing environmental stressors.
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