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One-carbon-derived bioactive peptides improve reproductive performance via regulating placental nutrient transport and offspring glycolipid metabolism
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  • Published: 27 February 2026

One-carbon-derived bioactive peptides improve reproductive performance via regulating placental nutrient transport and offspring glycolipid metabolism

  • Lu-min Gao1,
  • Xu-dong Yang1,
  • Shu-fan Liu1,
  • Lu Liu1,
  • Xiao-fan Ma1,
  • Shu-guang Liu2 &
  • …
  • Xin Wu1 

npj Science of Food , Article number:  (2026) Cite this article

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We are providing an unedited version of this manuscript to give early access to its findings. Before final publication, the manuscript will undergo further editing. Please note there may be errors present which affect the content, and all legal disclaimers apply.

Subjects

  • Biochemistry
  • Biotechnology
  • Molecular biology
  • Physiology

Abstract

This study aimed to develop novel bioactive peptides from Pichia pastoris (PpBP) as a potential functional ingredient for maternal nutrition. A high-efficiency strain was obtained through generated by ARTP mutagenesis of a winery by-product isolate and optimized via automated fermentation, yielding an enzymatic hydrolysate rich in short-chain peptides (Content = 30.73%). In vitro assays demonstrated that PpBP significantly upregulated the expression of intestinal peptide transporter PEPT1 in IPEC-J2 cells. Molecular docking revealed that dipeptides, especially Leu-Pro, can directly bind to the active site of PEPT1. Maternal PpBP (2 g/kg) supplementation from late gestation through lactation significantly reduced the incidence of IUGR and improved offspring growth performance. Mechanistic investigations indicated that PpBP intake modulated placental nutrient transport function, altering the expression of key glucose and lipid transporters and downregulating p38 MAPK and p-AKT signaling pathways. Placental transcriptomics further highlighted enriched pathways in Ras/Wnt signaling and lipid metabolism. In neonatal piglets, maternal PpBP supplementation shifted hepatic metabolism towards gluconeogenesis while suppressing glycolysis and TCA cycle activity. In conclusion, P. pastoris-derived bioactive peptides improved fetal growth and neonatal development by regulating maternal peptide absorption (via PEPT1 activation) and subsequently optimizing placental nutrient transport and fetal hepatic energy metabolism.

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Data availability

The raw RNA sequencing data generated in this study have been deposited in the NCBI BioProject database under accession number PRJNA1418818 (project link: https://www.ncbi.nlm.nih.gov/bioproject/1418818). All other relevant data supporting the findings of this study are available within the manuscript and supplementary data.

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Acknowledgements

This work was supported by the Strategic Priority Research Program of the Chinese Academy of Sciences [XDC0110304] and National Key R&D Program of China [2026YFF1500800] .

Author information

Authors and Affiliations

  1. State Key Laboratory of Engineering Biology for Low-Carbon Manufacturing, Tianjin Institute of Industrial Biotechnology, Chinese Academy of Sciences, Tianjin, China

    Lu-min Gao, Xu-dong Yang, Shu-fan Liu, Lu Liu, Xiao-fan Ma & Xin Wu

  2. Beijing Chase Future Biotech Co. Ltd, Beijing, China

    Shu-guang Liu

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Contributions

L.-M.G.: writing–original draft, methodology, data curation, conceptualization. X.-D.Y.: data curation, methodology, investigation. S.-F.L. and L.L.: methodology, supervision. X.-F.M. and S.-G.L.: investigation, methodology. X.W.: project administration, funding acquisition, supervision.

Corresponding author

Correspondence to Xin Wu.

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Gao, Lm., Yang, Xd., Liu, Sf. et al. One-carbon-derived bioactive peptides improve reproductive performance via regulating placental nutrient transport and offspring glycolipid metabolism. npj Sci Food (2026). https://doi.org/10.1038/s41538-026-00769-9

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  • Received: 15 December 2025

  • Accepted: 11 February 2026

  • Published: 27 February 2026

  • DOI: https://doi.org/10.1038/s41538-026-00769-9

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