Neonatal overfeeding accelerates age-related sarcopenia and metabolic disorders through lifelong gut mucosa and microbiota programming in mice

Early-life nutrition shapes lifelong health, yet the long-term consequences of childhood overnutrition, particularly on musculoskeletal aging, remain unclear. Here, we show that neonatal overfeeding acts as a developmental insult that accelerates age-related sarcopenia in both sexes. Using different mouse models, early overnutrition shortens lifespan and exacerbates late-life muscle atrophy, accompanied by metabolic dysfunction. Mechanistically, neonatal overfeeding disrupts goblet cell development, leading to persistent mucus barrier defects and consequently reduced Akkermansia muciniphila (A. muciniphila) colonization during aging. Fecal microbiota transplantation transfers the sarcopenic phenotype, implicating gut dysbiosis in disease propagation. Loss of A. muciniphila reduces acetate production, impairs muscle mitochondrial function at least in part via suppressed GPR43 signaling, and aggravates sarcopenia. Conversely, A. muciniphila reconstitution or acetate supplementation restores mitochondrial homeostasis and improves muscle performance in aged mice. These findings reveal a developmental origin of age-related sarcopenia and define a gut-muscle axis linking early-life overnutrition to muscle aging, highlighting the preventive potential of optimizing early nutrition to support healthy aging. Here, the authors demonstrate that neonatal overfeeding in mice shortens lifespan and accelerates late-life muscle loss. This originates from persistent gut mucus defects and depleted Akkermansia muciniphila, revealing a targetable developmental origin for sarcopenia.

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Publication Details

Journal
Nature Communications
Published
2026-10-07
DOI
https://doi.org/10.1038/s41467-026-78216-2
Primary Topic
Gut microbiota and health
Type
article
Field-Weighted Citation Impact
0.00

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article

Neonatal overfeeding accelerates age-related sarcopenia and metabolic disorders through lifelong gut mucosa and microbiota programming in mice

Cen Xie, Zhuo‐Xian Meng, 马援第, XinYu Liang et al.
Nature Communications
Gut microbiota and health
article

Neonatal overfeeding accelerates age-related sarcopenia and metabolic disorders through lifelong gut mucosa and microbiota programming in mice

Cen Xie, Zhuo‐Xian Meng, 马援第, XinYu Liang, Yutang Cao, Yeyu Song, Jingyi Xu, Yameng Liu, Shuwu Yu, Lijuan An, Jingjie Zhao, Jian-Gao Fan, Rong Yang, Yi-Ming Hou, Yongxin Zhang, Jiaqi Li, Kanglong Wang
article en

Abstract

Early-life nutrition shapes lifelong health, yet the long-term consequences of childhood overnutrition, particularly on musculoskeletal aging, remain unclear. Here, we show that neonatal overfeeding acts as a developmental insult that accelerates age-related sarcopenia in both sexes. Using different mouse models, early overnutrition shortens lifespan and exacerbates late-life muscle atrophy, accompanied by metabolic dysfunction. Mechanistically, neonatal overfeeding disrupts goblet cell development, leading to persistent mucus barrier defects and consequently reduced Akkermansia muciniphila (A. muciniphila) colonization during aging. Fecal microbiota transplantation transfers the sarcopenic phenotype, implicating gut dysbiosis in disease propagation. Loss of A. muciniphila reduces acetate production, impairs muscle mitochondrial function at least in part via suppressed GPR43 signaling, and aggravates sarcopenia. Conversely, A. muciniphila reconstitution or acetate supplementation restores mitochondrial homeostasis and improves muscle performance in aged mice. These findings reveal a developmental origin of age-related sarcopenia and define a gut-muscle axis linking early-life overnutrition to muscle aging, highlighting the preventive potential of optimizing early nutrition to support healthy aging. Here, the authors demonstrate that neonatal overfeeding in mice shortens lifespan and accelerates late-life muscle loss. This originates from persistent gut mucus defects and depleted Akkermansia muciniphila, revealing a targetable developmental origin for sarcopenia.

Nature Communications
Nanjing University of Chinese Medicine (CN), Shanghai Jiao Tong University (CN), Chinese Academy of Sciences (CN), XinHua Hospital (CN), ShanghaiTech University (CN), Shanghai Institute of Nutrition and Health (CN), Shanghai University of Traditional Chinese Medicine (CN), Longhua Hospital Shanghai University of Traditional Chinese Medicine (CN), Shanghai Institute of Materia Medica (CN), Second Affiliated Hospital of Zhejiang University (CN), University of Chinese Academy of Sciences (CN), State Key Laboratory of Drug Research, Zhejiang University (CN)
National Natural Science Foundation of China, National Science and Technology Major Project
Good health and well-being
Openalex Percentile: Top 23%
Gut microbiota and health
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