Exercise ameliorates osteopenia in mice via intestinal microbial-mediated bile acid metabolism pathway.

IF 13.3 1区 医学 Q1 MEDICINE, RESEARCH & EXPERIMENTAL Theranostics Pub Date : 2025-01-02 eCollection Date: 2025-01-01 DOI:10.7150/thno.104186
Congcong Yu, Rongtai Sun, Wentao Yang, Tianyuan Gu, Xiaozhang Ying, Lin Ye, Yang Zheng, Shunwu Fan, Xiangjun Zeng, Shasha Yao
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Abstract

Rationale: Physical exercise is essential for skeletal integrity and bone health. The gut microbiome, as a pivotal modulator of overall physiologic states, is closely associated with skeletal homeostasis and bone metabolism. However, the potential role of intestinal microbiota in the exercise-mediated bone gain remains unclear. Methods: We conducted microbiota depletion and fecal microbiota transplantation (FMT) in ovariectomy (OVX) mice and aged mice to investigate whether the transfer of gut ecological traits could confer the exercise-induced bone protective effects. The study analyzed the gut microbiota and metabolic profiles via 16S rRNA gene sequencing and LC-MS untargeted metabolomics to identify key microbial communities and metabolites responsible for bone protection. Transcriptome sequencing and RNA interference were employed to explore the molecular mechanisms. Results: We found that gut microbiota depletion hindered the osteogenic benefits of exercise, and FMT from exercised osteoporotic mice effectively mitigated osteopenia. Comprehensive profiling of the microbiome and metabolome revealed that the exercise-matched FMT reshaped intestinal microecology and metabolic landscape. Notably, alterations in bile acid metabolism, specifically the enrichment of taurine and ursodeoxycholic acid, mediated the protective effects on bone mass. Mechanistically, FMT from exercised mice activated the apelin signaling pathway and restored the bone-fat balance in recipient MSCs. Conclusion: Our study underscored the important role of the microbiota-metabolic axis in the exercise-mediated bone gain, heralding a potential breakthrough in the treatment of osteoporosis.

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运动通过肠道微生物介导的胆汁酸代谢途径改善小鼠骨质减少。
理由:体育锻炼对骨骼完整性和骨骼健康至关重要。肠道微生物群作为整体生理状态的关键调节剂,与骨骼稳态和骨代谢密切相关。然而,肠道微生物群在运动介导的骨质增加中的潜在作用仍不清楚。方法:对卵巢切除(OVX)小鼠和老年小鼠进行微生物群消耗和粪便微生物群移植(FMT),探讨肠道生态性状的转移是否能赋予运动诱导的骨骼保护作用。该研究通过16S rRNA基因测序和LC-MS非靶向代谢组学分析了肠道微生物群和代谢谱,以确定负责骨骼保护的关键微生物群落和代谢物。利用转录组测序和RNA干扰技术探索其分子机制。结果:我们发现肠道菌群的减少阻碍了运动的成骨作用,而来自运动的骨质疏松小鼠的FMT有效地减轻了骨质减少。微生物组和代谢组的综合分析显示,运动匹配的FMT重塑了肠道微生态和代谢景观。值得注意的是,胆汁酸代谢的改变,特别是牛磺酸和熊去氧胆酸的富集,介导了对骨量的保护作用。从机制上讲,来自运动小鼠的FMT激活了apelin信号通路,恢复了受体MSCs的骨脂平衡。结论:我们的研究强调了微生物代谢轴在运动介导的骨质增加中的重要作用,预示着骨质疏松症治疗的潜在突破。
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来源期刊
Theranostics
Theranostics MEDICINE, RESEARCH & EXPERIMENTAL-
CiteScore
25.40
自引率
1.60%
发文量
433
审稿时长
1 months
期刊介绍: Theranostics serves as a pivotal platform for the exchange of clinical and scientific insights within the diagnostic and therapeutic molecular and nanomedicine community, along with allied professions engaged in integrating molecular imaging and therapy. As a multidisciplinary journal, Theranostics showcases innovative research articles spanning fields such as in vitro diagnostics and prognostics, in vivo molecular imaging, molecular therapeutics, image-guided therapy, biosensor technology, nanobiosensors, bioelectronics, system biology, translational medicine, point-of-care applications, and personalized medicine. Encouraging a broad spectrum of biomedical research with potential theranostic applications, the journal rigorously peer-reviews primary research, alongside publishing reviews, news, and commentary that aim to bridge the gap between the laboratory, clinic, and biotechnology industries.
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