Fructooligosaccharides and ellagic acid synergistically enhance muscular endurance via targeting gut microbial urolithin A biosynthesis

鞣花酸 生物合成 生物化学 化学 肠道菌群 肌萎缩 生物 肠道菌群 新陈代谢 细菌
作者
Laiming Zhang,Zengliang Jiang,Donghong Liu,Chengxiao Yu,Yanru Wang,Haozhen Zhang,Jiaxiong Wu,Haibo Pan,Xingqian Ye,Shiguo Chen
出处
期刊:Journal of Advanced Research [Elsevier BV]
被引量:1
标识
DOI:10.1016/j.jare.2026.01.017
摘要

INTRODUCTION: Sarcopenia, characterized by the progressive loss of muscle mass and function, may be alleviated by ellagic acid (EA) through its microbial metabolite urolithin A (Uro-A). However, the low in vivo conversion efficiency of EA to Uro-A limits its clinical utility. OBJECTIVES: This study aimed to develop a gut microbiota-targeted dietary strategy to enhance Uro-A biosynthesis and improve muscle performance. METHODS: A combinatorial approach using EA and fructooligosaccharides (FOS) was applied in vivo to modulate microbial metabolism. Gut microbiota composition, urolithin profiles, and muscle performance were assessed. Mechanistic roles of key bacterial species were further explored. RESULTS: EA and FOS synergistically improved muscle endurance and strength by enhancing Uro-A production, compared with either intervention alone. Mechanistically, we identified a previously unrecognized two-step cooperative pathway: Bifidobacterium pseudolongum initiated EA metabolism by converting it to urolithin C (Uro-C), and while Enterococcus faecalis, identified here for the first time, catalyzed the conversion of Uro-C to Uro-A. This newly uncovered cross-feeding partnership between the two species proved essential for maximizing Uro-A biosynthesis and mediating the physiological benefits. CONCLUSION: This study demonstrates a proof-of-concept strategy to boost gut microbial Uro-A biosynthesis through dietary modulation, providing a novel and cost-effective approach for sarcopenia prevention and management.
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