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Trimethylamine-N-oxide promotes brain aging and cognitive impairment in mice
Dang Li1, Yilang Ke1, Rui Zhan2
1Department of Geriatrics, Fujian Medical University Union Hospital, Fuzhou, China.
Abstract:
Gut microbiota can influence the aging process and may modulate aging-related changes in cognitive function. Trimethylamine-N-oxide (TMAO), a metabolite of intestinal flora, has been shown to be closely associated with cardiovascular disease and other diseases. However, the relationship between TMAO and aging, especially brain aging, has not been fully elucidated. To explore the relationship between TMAO and brain aging, we analysed the plasma levels of TMAO in both humans and mice and administered exogenous TMAO to 24-week-old senescence-accelerated prone mouse strain 8 (SAMP8) and age-matched senescence-accelerated mouse resistant 1 (SAMR1) mice for 16 weeks. We found that the plasma levels of TMAO increased in both the elderly and the aged mice. Compared with SAMR1-control mice, SAMP8-control mice exhibited a brain aging phenotype characterized by more senescent cells in the hippocampal CA3 region and cognitive dysfunction. Surprisingly, TMAO treatment increased the number of senescent cells, which were primarily neurons, and enhanced the mitochondrial impairments and superoxide production. Moreover, we observed that TMAO treatment increased synaptic damage and reduced the expression levels of synaptic plasticity-related proteins by inhibiting the mTOR signalling pathway, which induces and aggravates aging-related cognitive dysfunction in SAMR1 and SAMP8 mice, respectively. Our findings suggested that TMAO could induce brain aging and age-related cognitive dysfunction in SAMR1 mice and aggravate the cerebral aging process of SAMP8 mice, which might provide new insight into the effects of intestinal microbiota on the brain aging process and help to delay senescence by regulating intestinal flora metabolites.
Insights
Trimethylamine-N-oxide (TMAO), a gut microbe metabolite, accelerates brain aging and cognitive decline. Reducing TMAO may help delay brain senescence and improve cognitive function in aging populations.
Area of Science:
- Neuroscience
- Geroscience
- Microbiology
Background:
- Gut microbiota influences aging and cognitive function.
- Trimethylamine-N-oxide (TMAO) is linked to diseases but its role in brain aging is unclear.
Purpose of the Study:
- To investigate the relationship between TMAO and brain aging.
- To determine TMAO's effect on cognitive function and neuronal senescence.
Main Methods:
- Analyzed plasma TMAO levels in humans and mice.
- Administered TMAO to senescence-accelerated mouse models (SAMP8 and SAMR1).
- Assessed brain aging markers, cognitive function, mitochondrial function, and synaptic plasticity.
Main Results:
- Plasma TMAO levels increase with age in humans and mice.
- TMAO treatment exacerbated brain aging phenotypes, including increased senescent neurons, mitochondrial dysfunction, and synaptic damage.
- TMAO inhibited the mTOR signaling pathway, worsening cognitive dysfunction in both mouse strains.
Conclusions:
- TMAO can induce brain aging and cognitive decline.
- TMAO aggravates existing age-related cognitive dysfunction.
- Regulating gut microbiota metabolites like TMAO may offer a strategy to delay brain aging.
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