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Published on: August 21, 2017
Involvement of intestinal mucosal microbiota in adenine-induced liver function injury
Leyao Fang1, Junxi Shen1, Yi Wu1
1School of Traditional Chinese Medicine, Hunan University of Chinese Medicine, Hanpu Science and Education Park, Yuelu District, Changsha, Hunan 410208 People's Republic of China.
Abstract:
Adenine is frequently utilized as a model medication for chronic renal disease. Adenine can affect organs other than the kidneys, including the heart and the intestine. The liver is a vital organ involved in the in vivo metabolism of adenine. Adenine may negatively impact liver function. Research indicated that adenine caused dysbiosis of the gut microbiota in mice. Investigations into the gut-liver axis have demonstrated a substantial association between drug-induced hepatic dysfunction and gut microbiota. Consequently, we delivered distinct dosages of adenine via gavage to mice to examine the correlation between adenine-induced liver impairment and gut microbiota dysbiosis. Mice were treated with low-dose adenine suspension (NLA), medium-dose adenine suspension (NMA), high-dose adenine suspension (NHA), and sterile water (NC) as a control. The results indicated that mice in the NLA, NMA, and NHA groups had decreased body weight and a reduction in liver index. Subsequent to adenine administration, the concentrations of AST, ALT, and LDH increased, whereas SDH levels decreased. As doses increased, liver function impairment and hepatic energy metabolism abnormalities aggravated. Adenine also damaged the colonic architecture in mice. Moreover, adenine modified the makeup and structure of the gut mucosal microbiota, enhancing specific bacterial genera and influencing the microbiota's energy metabolism-related functions. The results of our research established a correlation among certain bacteria, liver function injury, and hepatic energy metabolism. The gut mucosal microbiota was involved in adenine-induced liver injury and hepatic energy metabolism. These results can offer novel insights into the role of gut microbiota in drug-induced liver injury and provide specific guidelines for the modeling and therapeutic application of adenine.
Insights
Adenine administration in mice impaired liver function and altered gut microbiota composition. This study highlights the gut mucosal microbiota
Area of Science:
- Biomedical Science
- Toxicology
- Microbiology
Background:
- Adenine is a model drug for chronic renal disease, potentially affecting multiple organs including the liver.
- Drug-induced liver injury (DILI) is often linked to gut microbiota dysbiosis via the gut-liver axis.
- Understanding adenine's impact on the liver and gut microbiota is crucial for DILI research.
Purpose of the Study:
- To investigate the correlation between adenine-induced liver impairment and gut microbiota dysbiosis.
- To examine the impact of different adenine dosages on liver function and gut microbiota in mice.
- To elucidate the role of gut mucosal microbiota in adenine-induced liver injury and hepatic energy metabolism.
Main Methods:
- Mice were administered varying doses of adenine suspension (low, medium, high) or sterile water (control) via gavage.
- Evaluated body weight, liver index, and serum biochemical markers (AST, ALT, LDH, SDH) to assess liver function and energy metabolism.
- Analyzed colonic architecture and gut mucosal microbiota composition and function.
Main Results:
- Adenine administration led to decreased body weight and liver index in a dose-dependent manner.
- Increased levels of AST, ALT, and LDH, with decreased SDH, indicated liver function impairment and altered hepatic energy metabolism.
- Adenine damaged colonic architecture and significantly modified gut mucosal microbiota, affecting bacterial genera and their metabolic functions.
Conclusions:
- A correlation exists between specific gut bacteria, liver function injury, and hepatic energy metabolism following adenine exposure.
- Gut mucosal microbiota plays a significant role in adenine-induced liver injury and hepatic energy metabolism.
- Findings offer insights into DILI mechanisms and provide guidelines for adenine-based modeling and therapeutic strategies.

