Dietary choline metabolite TMAO impairs cognitive function and induces hippocampal synaptic plasticity declining
Shihan Zhou1,2, Jing Liu1,2, Yan Sun1,2
1College of Traditional Chinese Medicine and College of Integrated Chinese and Western Medicine, Nanjing University of Chinese Medicine, Nanjing, China. zhuboran@njucm.edu.cn.
Abstract:
Mild cognitive impairment (MCI) is an intermediate state between "healthy" and "dementia", which affects memory and cognitive function. Timely intervention and treatment of MCI can effectively prevent it from developing into an incurable neurodegenerative disease. Lifestyle factors, such as dietary habits, were highlighted as risk factors for MCI. The effect of a high-choline diet on cognitive function is contentious. In this study, we focus our attention on the choline metabolite trimethylamine-oxide (TMAO), an acknowledged pathogenic molecule of cardiovascular disease (CVD). With recent studies indicating that TMAO also plays a potential role in the central nervous system (CNS), we aim to explore the effect of TMAO on synaptic plasticity in the hippocampus, the basic structure of studying and memory. Using various hippocampal-dependent spatial references or working memory-related behavioral texts, we found that TMAO treatment caused both long-term memory (LTM) and short-term memory (STM) deficits in vivo. Simultaneously, the plasm and whole brain levels of choline and TMAO were measured by employing liquid phase mass spectrometry (LC/MS). Furthermore, the effects of TMAO on the hippocampus were further explored by applying Nissl staining and transmission electron microscopy (TEM). Moreover, the expression of synaptic plasticity-related proteins, including synaptophysin (SYN), postsynaptic density protein95 (PSD95), and N-methyl-aspartate receptor (NMDAR), was examined by western blotting and immunohistochemical (IHC). The results showed that TMAO treatment contributes to neuron loss, synapse ultrastructure alteration, and synaptic plasticity impairments. In mechanism, the mammalian target of rapamycin (mTOR) regulates synaptic function, and the activation of the mTOR signaling pathway was observed in TMAO groups. In conclusion, this study confirmed that the choline metabolite TMAO can induce hippocampal-dependent learning and memory ability impairment with synaptic plasticity deficits by activating the mTOR signaling pathway. The effects of choline metabolites on cognitive function may provide a theoretical basis for establishing the daily reference intakes (DRIs) of choline.
Insights
Trimethylamine-N-oxide (TMAO), a choline metabolite, impairs memory and learning by affecting synaptic plasticity in the hippocampus. This study reveals TMAO
Area of Science:
- Neuroscience
- Metabolomics
- Cognitive Science
Background:
- Mild cognitive impairment (MCI) is a precursor to dementia, influenced by lifestyle factors like diet.
- The role of choline metabolites, such as trimethylamine-N-oxide (TMAO), in cognitive function is under investigation.
- TMAO is a known cardiovascular disease risk factor with emerging links to the central nervous system.
Purpose of the Study:
- To investigate the impact of TMAO on hippocampal synaptic plasticity and cognitive function.
- To explore the underlying mechanisms of TMAO's effects on learning and memory.
Main Methods:
- In vivo behavioral tests assessing spatial and working memory.
- Liquid chromatography-mass spectrometry (LC/MS) for measuring TMAO and choline levels.
- Nissl staining, transmission electron microscopy (TEM), western blotting, and immunohistochemistry (IHC) to evaluate hippocampal structure and protein expression (SYN, PSD95, NMDAR).
Main Results:
- TMAO administration led to significant short-term and long-term memory deficits.
- Histological analysis revealed neuron loss and altered synapse ultrastructure in the hippocampus.
- TMAO treatment impaired synaptic plasticity and activated the mammalian target of rapamycin (mTOR) signaling pathway.
Conclusions:
- TMAO induces cognitive impairment, specifically affecting hippocampal-dependent learning and memory.
- Synaptic plasticity deficits, neuron loss, and mTOR pathway activation are key mechanisms.
- Findings suggest choline metabolite levels may influence cognitive health and inform dietary recommendations.
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