Amuc_1473 Links Gut Microbes to Skeletal Homeostasis and Counteracts Multifactorial Osteoporosis
Shan-Shan Rao, Hai-Jin Zeng, Zun Wang, Chun-Gu Hong, Yi-Juan Tan, Yan-Xin Duan, Jing-Yao Luo, Ming-Jie Luo, Yi-Wei Liu, Xin Wang, Yi Luo, Teng-Fei Wan, Yong Zhou, Zheng-Guang Wang, Guo-Wen Hu, Hao Yin, Xin-Yue Hu, Zhen-Xing Wang, Ze-Hui He, Si-Yi Cheng, Wei Du, Zhe Guan, Hai-Li Lang, Hong-Ji Liu, Jia Cao, Peng Chen, Jiang-Hua Liu, Hui Xie, Chun-Yuan Chen
Journal:Advanced Science
IF:14.1
DOI:10.1002/advs.202523067
PMID:
Published:2026-06-13
research field:转化医学肠-骨轴骨骼生物学微生物学分子医学
Abstract
Emerging evidence suggests that gut microbiota-derived signals can influence distant organs including the skeleton, yet the key microbial effectors remain elusive. Here, we identify Amuc_1473, a previously uncharacterized protein enriched in extracellular vesicles (EVs) from the commensal bacterium Akkermansia muciniphila (Akk), as a critical mediator of gut-bone communication. Amuc_1473 directly promotes osteogenesis and suppresses osteoclastogenesis by binding to negative elongation factor E (NELF-E) and ribosomal protein L26 (RPL26), regulators of transcriptional pausing and mRNA translation, respectively. Notably, Amuc_1473 levels decline in bone and circulation under diverse pro-osteoporotic conditions-including aging, estrogen deficiency, mechanical unloading, high-fat diet, smoking, alcohol, and chronic stress-paralleling reductions in Akk and its EVs. Intermittent fasting robustly restores Akk abundance, Amuc_1473 levels, and bone quality in these models, via enhanced mucin production. Our findings establish Amuc_1473 as a microbial effector that systemically regulates bone homeostasis, offering a translatable strategy to prevent or treat multifactorial osteoporosis.
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