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Gut microbiota protects from triptolide-induced hepatotoxicity: Key role of propionate and its downstream signalling
Jian-Feng Huang1, Qi Zhao2, Man-Yun Dai1
1State Key Laboratory of Phytochemistry and Plant Resources in West China, Kunming Institute of Botany, Chinese Academy of Sciences, Kunming, 650201, China; University of Chinese Academy of Sciences, Beijing, 100049, China.
Abstract:
As a potential drug for treating inflammatory, autoimmune diseases and cancers, triptolide (TP) is greatly limited in clinical practice due to its severe toxicity, particularly for liver injury. Recently, metabolic homeostasis was vitally linked to drug-induced liver injury and gut microbiota was established to play an important role. In this study, we aimed to investigate the functions of gut microbiota on TP-induced hepatotoxicity using metabolomics in mice. Here, predepletion of gut microbiota by antibiotic treatment strikingly aggravated liver injury and caused mortality after treated with a relatively safe dosage of TP at 0.5 mg/kg, which could be reversed by gut microbial transplantation. The loss of gut microbiota prior to TP treatment dramatically elevated long chain fatty acids and bile acids in plasma and liver. Further study suggested that gut microbiota-derived propionate contributed to the protective effect of gut microbiota against TP evidenced by ameliorative inflammatory level (Tnfa, Il6 and Cox2), ATP, malondialdehyde and hepatic histology. Supplementing with propionate significantly decreased the mRNA levels of genes involved in fatty acid biosynthesis (Srebp1c, Fasn and Elovl6), resulting in the decreased long chain fatty acids in liver. Moreover, TP restricted the growth of Firmicutes and led to the deficiency of short chain fatty acids in cecum content. In conclusion, our study warns the risk for TP and its preparations when antibiotics are co-administrated. Intervening by foods, prebiotics and probiotics toward gut microbiota or supplementing with propionate may be a clinical strategy to improve toxicity induced by TP.
Insights
Gut microbiota protects against triptolide (TP)-induced liver injury. Depleting gut microbes worsens TP toxicity, while propionate supplementation offers protection by regulating fatty acid metabolism.
Area of Science:
- Pharmacology
- Toxicology
- Microbiology
Background:
- Triptolide (TP) shows therapeutic potential for inflammatory diseases, autoimmune conditions, and cancers.
- Severe hepatotoxicity limits TP's clinical application.
- Gut microbiota and metabolic homeostasis are increasingly recognized as critical factors in drug-induced liver injury.
Purpose of the Study:
- To investigate the role of gut microbiota in triptolide (TP)-induced hepatotoxicity.
- To elucidate the underlying mechanisms of TP-induced liver injury influenced by gut microbiota.
Main Methods:
- Utilized a mouse model with predepletion of gut microbiota via antibiotics.
- Employed metabolomics to analyze plasma and liver samples.
- Investigated the effects of gut microbial transplantation and propionate supplementation.
Main Results:
- Antibiotic-induced gut microbiota depletion significantly aggravated TP hepatotoxicity and mortality.
- Loss of gut microbiota led to elevated plasma and liver long-chain fatty acids and bile acids.
- Gut microbiota-derived propionate demonstrated a protective effect by reducing inflammation and improving hepatic histology, partly by decreasing fatty acid biosynthesis.
Conclusions:
- Gut microbiota plays a crucial protective role against triptolide-induced liver injury.
- Co-administration of TP with antibiotics poses a significant risk due to microbiota disruption.
- Strategies targeting gut microbiota, such as propionate supplementation, may mitigate TP toxicity.
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