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Published on: February 28, 2018
A Novel Trimethylamine Oxide-Induced Model Implicates Gut Microbiota-Related Mechanisms in Frailty
Si-Yue Chen1,2, Xing-Yu Rong3, Xin-Yi Sun2
1Graduate School, Shanghai University of Traditional Chinese Medicine, Shanghai, China.
Abstract:
Frailty is a complicated syndrome that occurs at various ages, with highest incidence in aged populations, suggesting associations between the pathogenesis of frailty and age-related changes. Gut microbiota (GM) diversity and abundance change with age, accompanied by increased levels of trimethylamine oxide (TMAO), a systemic inflammation-inducing GM metabolite. Thus, we hypothesized that TMAO may be involved in the development of frailty. We successfully established and verified a novel model of frailty in adult mice based on a 4-week intraperitoneal injection regime of TMAO followed by LPS challenge. The frailty index significantly increased in TMAO-treated mice after LPS challenge. TMAO also decreased claudin-1 immunofluorescent staining intensity in the jejunum, ileum, and colon, indicating that the destruction of intestinal wall integrity may increase vulnerability to exogenous pathogens and invoke frailty. 16S sequencing showed that TMAO significantly reduced the GM Firmicutes/Bacteroidetes (F/B) ratio, but not α-diversity. Interestingly, after LPS challenge, more genera of bacterial taxa were differently altered in the control mice than in the TMAO-treated mice. We infer that a variety of GM participate in the maintenance of homeostasis, whereas TMAO could blunt the GM and impair the ability to recover from pathogens, which may explain the continuous increase in the frailty index in TMAO-treated mice after LPS challenge. TMAO also significantly increased serum imidazole metabolites, and led to different patterns of change in serum peptide and phenylpropanoid metabolites after LPS stimulation. These changes indicate that glucose metabolism may be one mechanism by which GM inactivation causes frailty. In conclusion, TMAO leads to frailty by destroying intestinal barrier integrity and blunting the GM response.
Insights
Trimethylamine oxide (TMAO) contributes to frailty by damaging the gut barrier and impairing gut microbiota responses. This study establishes a mouse model demonstrating TMAO
Area of Science:
- Gerontology and Aging Research
- Microbiology and Gut Health
- Metabolomics and Inflammation
Background:
- Frailty is a complex syndrome associated with aging and characterized by increased vulnerability.
- Gut microbiota (GM) alterations and increased trimethylamine oxide (TMAO) levels are linked to aging and inflammation.
- The role of TMAO in frailty pathogenesis remains unclear.
Purpose of the Study:
- To investigate the hypothesis that TMAO contributes to the development of frailty.
- To establish and validate a novel mouse model for studying TMAO-induced frailty.
Main Methods:
- Adult mice received intraperitoneal TMAO injections for 4 weeks, followed by lipopolysaccharide (LPS) challenge.
- Frailty index was assessed, and intestinal integrity was evaluated via claudin-1 staining.
- Gut microbiota composition was analyzed using 16S rRNA sequencing, and serum metabolomics were performed.
Main Results:
- TMAO treatment significantly increased the frailty index post-LPS challenge.
- TMAO reduced intestinal claudin-1 expression, indicating compromised gut barrier integrity.
- TMAO decreased the Firmicutes/Bacteroidetes ratio in the GM and blunted microbial responses to LPS, alongside altered serum imidazole, peptide, and phenylpropanoid metabolites.
Conclusions:
- TMAO induces frailty by disrupting intestinal barrier integrity and impairing gut microbiota homeostasis.
- The blunted GM response and metabolic alterations suggest impaired recovery from pathogens contribute to frailty.
- TMAO is identified as a key factor in the pathogenesis of frailty.

