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Umezaki, M.

Publications and source records attributed to Umezaki, M..

2 recordsLinked to original sources

Dietary fiber induces a fat preference associated with the gut microbiota

Eating behavior is essential to human health. However, whether future eating behavior is subjected to the conditioning of precedent dietary composition is unknown. This study aimed to investigate the effect of dietary fiber consumption on subsequent nutrient-specific food preferences between palatable high-fat and high-sugar diets and explore its correlation with the gut microbiota. C57BL/6NJcl male mice were subjected to a 2-week dietary intervention and fed either a control (n = 6) or inulin (n = 6) diet. Afterwards, all mice were subjected to a 3-day eating behavioral test to self-select a high-fat or a high-sugar diet. The test diet feed intakes were recorded, and the mices fecal samples were analyzed to evaluate the gut microbiota composition. The inulin mice exhibited a preference for a high-fat diet over a high-sugar diet, associated with distinct gut microbiota compositions profiles between the inulin and control mice. The gut microbiota Bacteroides acidifaciens (99.68%), Bacteroides caecemuris (99.37%), and Bacteroides xylanolyticus (92.28%) positively correlated with a preference for fat. Further studies involving fecal microbiota transplantation and eating behavior-related neurotransmitter analyses may clarify the role of gut microbiota on food preferences. Food preferences induced by dietary intervention are a novel observation, and the gut microbiome may be significantly associated with this preference.

microbiology↗

Lifelong temporal dynamics of the gut microbiome associated with longevity in mice

The temporal changes of the gut microbiome are thought to be critical for understanding its interactions with host aging, but lifelong dynamics within the same individual remain largely unknown. Here we firstly report the high temporal resolution dynamics of gut microbiomes in mice sharing the same genetic background and environment from their birth to natural death, spanning >1,000 days. The 16S rRNA sequencing analysis revealed 9 patterns of OTU temporal dynamics and 38 common "life-core" bacterial species/operational taxonomic units (OTUs) in [≥]80% of all samples across the lifespan of individual mice. The life-core OTUs are largely represented by the phylum Bacteroidota, whereas the transient bacterial group predominantly includes the phylum Firmicutes (Bacillota). Despite the shared genetic background and dietary habits, the gut microbiome structure significantly diversified with age and among individuals. A positive correlation existed between longevity and the microbiome -diversity in middle age (200-500 days) followed by a negative correlation in old age (>700 days), likely influenced by the increase in diversity during the last days of life. The abundance of several "life-core" species also exhibited non-static correlation trends with lifespan. Overall, this research characterized the gut microbiomes based on its persistence over hosts lifetime and suggested a non-static host-microbiome relationship within individual mice.

microbiology↗