Related Experiment Video
Updated: May 5, 2026

A Method to Define the Effects of Environmental Enrichment on Colon Microbiome Biodiversity in a Mouse Colon Tumor Model
Published on: February 28, 2018
Ageing-associated gut dysbiosis deteriorates mouse cognition
Huihui Ju1, Yile Zhou1, Wanting Wei2
1Department of Anesthesiology, Zhongshan Hospital, Fudan University, Shanghai 200032, China.
Abstract:
Ageing is an independent factor for cognitive dysfunction. Ageing-associated alterations in the gut microbiota also affect cognition. The present study is designed to investigate changes in the gut microbiota and their participation in ageing-associated cognitive impairment. Both 10-week-old and 18-month-old mice are used. Mouse cognition is examined by novel object recognition and T-maze tests. Mouse feces are collected for sequencing and transplantation. Protein expression in the mouse intestine and hippocampus is studied using immunohistochemistry and immunofluorescence staining. Senescent neurons are induced by hydrogen peroxide in vitro. The cell lysates are used for western blot analysis and adenosine triphosphate (ATP) measurement. Our results show that 18-month-old mice exhibit cognitive dysfunction compared with young mice. In aged mice, transplanting the microbiota of young mice increases the protein presence of synaptophysin in the hippocampus and partially restores cognition. The protein expressions of mucin-2 and E-cadherin in the intestine are reduced in aged mice but are increased by transplantation. Gut microbiota analyses reveal that the reduced abundance of the microbe Bacilli-Lactobacillales-Lactobacillaceae-Lactobacillus in aged mice is restored by transplantation. Fecal microbiota transplantation in young mice increases the serum level of acetic acid in aged mice. Hydrogen peroxide stimulation induces senescence and reduces the protein expression levels of synaptophysin and acetyl-coenzyme A synthetase member 2 (ACSS2) in primary neurons. Incubation with acetic acid upregulates the protein expressions of ACSS2 and synaptophysin and further increases ATP production in senescent neurons. In summary, gut microbiota transplantation increases the abundance of Lactobacillales, elevates serum acetic acid level, and improves cognitive function in aged mice. Gut microbiota transplantation has therapeutic importance for ageing-associated cognitive decline.
Insights
Ageing impairs cognition, but transplanting young gut microbes into aged mice restores cognitive function. This involves increasing beneficial bacteria and acetic acid levels, offering a potential therapy for age-related cognitive decline.
Area of Science:
- Neuroscience
- Microbiology
- Gerontology
Background:
- Ageing is a primary risk factor for cognitive dysfunction.
- Alterations in gut microbiota composition are linked to cognitive decline in aging.
- Understanding the gut-brain axis in aging is crucial for developing interventions.
Purpose of the Study:
- To investigate the role of gut microbiota changes in age-related cognitive impairment.
- To explore the therapeutic potential of gut microbiota transplantation for cognitive enhancement in aged mice.
Main Methods:
- Cognitive function assessment using novel object recognition and T-maze tests in young and aged mice.
- Fecal microbiota transplantation from young to aged mice.
- Analysis of gut microbiota composition, intestinal protein expression (mucin-2, E-cadherin), and hippocampal protein expression (synaptophysin).
- In vitro induction of neuronal senescence and assessment of protein expression and ATP levels.
Main Results:
- Aged mice exhibited significant cognitive dysfunction compared to young mice.
- Fecal microbiota transplantation partially restored cognition and improved hippocampal synaptophysin levels in aged mice.
- Transplantation normalized intestinal mucin-2 and E-cadherin expression and increased the abundance of specific Lactobacillus species.
- Acetic acid, increased by transplantation, was shown to improve neuronal senescence markers and ATP production in vitro.
Conclusions:
- Gut microbiota transplantation can ameliorate age-associated cognitive decline in mice.
- Restoration of specific gut bacteria (Lactobacillales) and increased acetic acid levels are key mechanisms.
- Fecal microbiota transplantation holds therapeutic promise for combating cognitive impairment in aging.
Related Concept Videos
Development of Human Microbiota
Gut-Brain Axis

