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May 7, 2026Antioxidants0 citationsOpen Access

High-Fiber Diet Supplemented with N-Carbamylglutamate Modulates Uterine Microbiota, Metabolites, and Transcriptome to Improve Reproductive Efficiency in Sows

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YLYaxu LiangHWHongyang WangZWZhibo Wang

Key Points

  • This research aims to explore how a high-fiber diet supplemented with N-carbamylglutamate affects reproductive efficiency in sows.
  • Sows were assigned to low-fiber or high-fiber groups with or without N-carbamylglutamate during gestation.
  • Serum sex hormones and antioxidants were measured.
  • Multi-omics approaches assessed the effects on uterine microbiota, metabolites, and gene expression.
  • High-fiber diet with N-carbamylglutamate increased total antioxidant capacity in serum.
  • Clostridium disporicum abundance elevated in the uterine microbiota.
  • Hydroxylysine identified as a key metabolite correlated with increased Clostridium disporicum.

Abstract

Uterine microbiome homeostasis and antioxidant capacity are critical for sow fertility. While high-fiber diets and N-carbamylglutamate (NCG) individually enhance sow fertility, their synergistic effects on the antioxidant status, microbiota, metabolites, and transcriptome remain unclear. Here, sows were assigned to the low-fiber (3.73%) or high-fiber (7.46% crude fiber) group, each without or with 0.05% NCG, throughout the 114-day gestation. Sex hormones and antioxidants in serum were detected. Multi-omics approaches were employed to investigate the impact of a high-fiber diet supplemented with NCG (H + N) on uterine microbiota, metabolites, and gene expression profiles. The study revealed that H + N significantly increased total antioxidant capacity (T-AOC) level in serum. Metagenomic analysis revealed an increased abundance of Clostridium disporicum in the uterine microbiota. Plasma metabolomics identified hydroxylysine as a key metabolite mediating this effect, and this metabolite was positively correlated with elevated abundance of Clostridium disporicum. Subsequent transcriptomic profiling revealed activation of the PI3K-Akt signaling pathway, closely linked to improved T-AOC level. Overall, these findings demonstrated that H + N could modulate the uterine microbiota (specifically Clostridium disporicum), increase hydroxylysine production, and activate the PI3K-Akt signaling pathway. These effects further enhanced hormonal activity and antioxidant capacity, ultimately improving sow reproductive efficiency.

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Cite This Study

Liang et al. (2026) studied this question.

synapsesocial.com/papers/69fbe357164b5133a91a2a87https://doi.org/10.3390/antiox15050542
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