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Ginsenoside Rg1 mitigates morphine dependence via regulation of gut microbiota, tryptophan metabolism, and
Zhijie Chen1, Yingbo Lin2, Qichun Zhou1
1School of Traditional Chinese Medicine, Southern Medical University, Guangzhou, China.
Background:
Morphine dependence, a devastating neuropsychiatric condition, may be closely associated with gut microbiota dysbiosis. Ginsenoside Rg1 (Rg1), an active ingredient extracted from the roots of Panax ginseng C.A. Meyer, has potential health-promoting effects on the nervous system. However, its role in substance use disorders remains unclear. Here, we explored the potential modulatory roles of Rg1 in protection against morphine dependence.
Methods:
Conditioned place preference (CPP) was used for establishing a murine model of morphine dependence. 16S rRNA gene sequencing and metabolomics were performed for microbial and metabolite analysis. Molecular analysis was tested for evaluating the host serum and brain responses.
Results:
Rg1 prevented morphine-induced CPP in mice. The 16S rRNA gene-based microbiota analysis demonstrated that Rg1 ameliorated morphine-induced gut microbiota dysbiosis, specifically for Bacteroidetes. Moreover, Rg1 also inhibited gut microbiota-derived tryptophan metabolism and reduced the serotonin, 5-hydroxytryptamine receptor 1B (5-HTR1B), and 5-hydroxytryptamine receptor 2 A (5-HTR2A) levels. However, the Rg1-induced amelioration of CPP was not observed in mice when their gut microbiome was depleted by non-absorbable antibiotics. Subsequently, gavage with Bacteroides vulgatus increased the abundance of Bacteroidetes. B. vulgatus supplementation synergistically enhanced Rg1-alleviated morphine-induced CPP in mice with microbiome knockdown. Co-treatment with B. vulgatus and Rg1 produced suppressive effects against morphine dependency by inhibiting tryptophan metabolism and reducing the serotonin and 5-HTR1B/5-HTR2A levels.
Conclusions:
The gut microbiota-tryptophan metabolism-serotonin plays an important role in gut-brain signaling in morphine disorders, which may represent a novel approach for drug dependence treatment via manipulation of the gut microbial composition and tryptophan metabolite.
Insights
Ginsenoside Rg1 (Rg1) combats morphine dependence by restoring gut microbiota balance and inhibiting tryptophan metabolism. This highlights the gut-brain axis
Area of Science:
- Neuroscience
- Microbiology
- Pharmacology
Background:
- Morphine dependence is linked to gut microbiota dysbiosis.
- Ginsenoside Rg1 (Rg1) shows potential neurological benefits but its role in substance use disorders is unknown.
- This study investigates Rg1's protective effects against morphine dependence.
Purpose of the Study:
- To explore the modulatory role of Rg1 in morphine dependence.
- To investigate the influence of gut microbiota and tryptophan metabolism in Rg1's effects.
- To assess Rg1's impact on gut-brain signaling pathways.
Main Methods:
- Established a murine model of morphine dependence using conditioned place preference (CPP).
- Analyzed gut microbiota composition via 16S rRNA gene sequencing and metabolomics.
- Evaluated host molecular responses in serum and brain tissue.
Main Results:
- Rg1 administration prevented morphine-induced CPP in mice.
- Rg1 ameliorated morphine-induced gut dysbiosis, particularly affecting Bacteroidetes.
- Rg1 inhibited gut microbiota-derived tryptophan metabolism, reducing serotonin and 5-HTR1B/5-HTR2A levels.
- Antibiotic-induced microbiome depletion abolished Rg1's protective effect.
- Supplementation with Bacteroides vulgatus enhanced Rg1's efficacy.
Conclusions:
- Gut microbiota-tryptophan metabolism-serotonin signaling is crucial in morphine use disorders.
- Manipulation of gut microbial composition and tryptophan metabolites offers a novel therapeutic strategy for drug dependence.
- Rg1 demonstrates potential as a therapeutic agent for morphine dependence by modulating the gut microbiome.
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