Effects of Galacto-Oligosaccharide Supplementation on Cecal Microbiota, Phospholipid and Aromatic Amino Acid Metabolism in Mice
Abstract
1. Introduction
2. Materials and Methods
2.1. Animal Experimental Design and Sample Collection
2.2. DNA Extraction, 16S rRNA Gene Amplification, and High-Throughput Sequencing
2.3. Data Processing and Bioinformatics Analysis
2.4. Sample Preparation for LC-MS Metabolomics Analysis
2.5. LC-MS/MS Analysis
2.6. Metabolite Identification and Analysis
2.7. Statistical Analysis
3. Results
3.1. GOS Supplementation Increases Cecal Bacterial Richness in Mice
3.2. GOS Supplementation Alters the Cecal Bacterial Composition in Mice
3.3. GOS Supplementation Changes Cecal Metabolic Profile in Mice
3.4. GOS Supplementation Modulates the Cecal Content of Phospholipid Derivatives in Mice
3.5. GOS Supplementation Modulates the Cecal Composition of Aromatic Amino Acids in Mice
4. Discussion
5. Conclusions
Supplementary Materials
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Acknowledgments
Conflicts of Interest
References
- Dai, W.; Song, X.; Wang, R.; He, W.; Yin, J.; Nie, S. Mechanism exploration of intestinal mucus penetration of nano-Se: Regulated by polysaccharides with different functional groups and molecular weights. J. Control. Release 2025, 379, 524–536. [Google Scholar] [CrossRef] [PubMed]
- Mavrogeni, M.E.; Asadpoor, M.; Henricks, P.A.; Keshavarzian, A.; Folkerts, G.; Braber, S. Direct action of non-digestible oligosaccharides against a leaky gut. Nutrients 2022, 14, 4699. [Google Scholar] [CrossRef] [PubMed]
- Yuan, M.; Fan, R.; Peng, K.; Cui, X.; Song, X. Induction of degradation of fucoidan oligosaccharides via low-temperature plasma treatment for enhanced structural characteristics and bioactivities. Chem. Eng. J. 2025, 523, 168080. [Google Scholar] [CrossRef]
- Wang, K.; Duan, F.; Sun, T.; Zhang, Y.; Lu, L. Galactooligosaccharides: Synthesis, metabolism, bioactivities and food applications. Crit. Rev. Food Sci. Nutr. 2024, 64, 6160–6176. [Google Scholar] [CrossRef]
- Sánchez, C.; Fente, C.; Regal, P.; Lamas, A.; Lorenzo, M.P. Human milk oligosaccharides (HMOs) and infant microbiota: A Scoping review. Foods 2021, 10, 1429. [Google Scholar] [CrossRef]
- Tian, S.; Wang, J.; Yu, H.; Wang, J.; Zhu, W. Effects of galacto-oligosaccharides on growth and gut function of newborn suckling piglets. J. Anim. Sci. Biotechnol. 2018, 9, 75. [Google Scholar] [CrossRef]
- Tian, S.; Wang, J.; Gao, R.; Zhao, F.; Wang, J.; Zhu, W. Galacto-oligosaccharides alleviate LPS-induced immune imbalance in small intestine through regulating gut microbe composition and bile acid pool. J. Agric. Food Chem. 2023, 71, 17615–17626. [Google Scholar] [CrossRef]
- Liu, J.; Hou, X.; Wang, Z.; Gao, F.; Ye, G.; Liu, J. Sonochemical fabrication and characterization of β-Lactoglobulin-Galactooligosaccharide conjugates: Enhancement of calcium absorption. Food Chem. 2025, 483, 144236. [Google Scholar] [CrossRef]
- Wang, W.; Xu, C.; Zhou, X.; Zhang, L.; Gu, L.; Liu, Z.; Ma, J.; Hou, J.; Jiang, Z. Lactobacillus plantarum combined with galactooligosaccharides supplement: A neuroprotective regimen against neurodegeneration and memory impairment by regulating short-chain fatty acids and the c-Jun N-terminal kinase signaling pathway in mice. J. Agric. Food Chem. 2022, 70, 8619–8630. [Google Scholar] [CrossRef] [PubMed]
- Zhou, S.; Tan, Q.; Wen, B.; Bai, Y.; Che, Q.; Cao, H.; Guo, J.; Su, Z. Galacto-oligosaccharide alleviates alcohol-induced liver injury by inhibiting oxidative stress and inflammation. Metabolites 2022, 12, 867. [Google Scholar] [CrossRef]
- Wang, J.; Tian, S.; Yu, H.; Wang, J.; Zhu, W. Response of colonic mucosa-associated microbiota composition, mucosal immune homeostasis, and barrier function to early life galactooligosaccharides intervention in suckling piglets. J. Agric. Food Chem. 2018, 67, 578–588. [Google Scholar] [CrossRef]
- Martin-Gallausiaux, C.; Marinelli, L.; Blottière, H.M.; Larraufie, P.; Lapaque, N. SCFA: Mechanisms and functional importance in the gut. Proc. Nutr. Soc. 2021, 80, 37–49. [Google Scholar] [CrossRef]
- Oliphant, K.; Allen-Vercoe, E. Macronutrient metabolism by the human gut microbiome: Major fermentation by-products and their impact on host health. Microbiome 2019, 7, 91. [Google Scholar] [CrossRef]
- Hu, Y.; Heyer, C.M.; Wang, W.; Zijlstra, R.T.; Gänzle, M.G. Digestibility of branched and linear α-gluco-oligosaccharides in vitro and in ileal-cannulated pigs. Food Res. Int. 2020, 127, 108726. [Google Scholar] [CrossRef]
- Diether, N.E.; Willing, B.P. Microbial Fermentation of Dietary Protein: An Important Factor in Diet-Microbe-Host Interaction. Microorganisms 2019, 7, 19. [Google Scholar] [CrossRef]
- Li, Y.; Wang, Y.; Shi, F.; Zhang, X.; Zhang, Y.; Bi, K.; Chen, X.; Li, L.; Diao, H. Phospholipid metabolites of the gut microbiota promote hypoxia-induced intestinal injury via CD1d-dependent γδ T cells. Gut Microbes 2022, 14, 2096994. [Google Scholar] [CrossRef]
- Yang, J.; Wang, H.; Yan, J.; Sun, J.; Wang, Y.; Huang, G.; Zhang, F.; Cao, H.; Li, D. Biotherapeutic potential of gut microbiota-derived indole-3-acetic acid. Crit. Rev. Microbiol. 2025, 52, 118–138. [Google Scholar] [CrossRef]
- Tian, S.; Wang, J.; Yu, H.; Wang, J.; Zhu, W. Changes in ileal microbial composition and microbial metabolism by an early-life galacto-oligosaccharides intervention in a neonatal porcine model. Nutrients 2019, 11, 1753. [Google Scholar] [CrossRef]
- Wu, L.; Liu, Y.; Deng, J.; Gui, S.; Nie, H. Integrated analysis of electrical stimulation effects on Pseudomonas aeruginosa PAO1 inoculated denitrifying community: Targeted and untargeted metabolomic analysis of phenazine biosynthesis and quorum sensing. Front. Microbiol. 2025, 16, 1621417. [Google Scholar] [CrossRef]
- Ma, J.; Chen, Z.; Malik, K.; Li, C. Comparative Metabolite Profiling Between Cordyceps sinensis and Other Cordyceps by Untargeted UHPLC-MS/MS. Biology 2025, 14, 118. [Google Scholar] [CrossRef]
- Ambrogi, V.; Bottacini, F.; Cao, L.; Kuipers, B.; Schoterman, M.; van Sinderen, D. Galacto-oligosaccharides as infant prebiotics: Production, application, bioactive activities and future perspectives. Crit. Rev. Food Sci. Nutr. 2023, 63, 753–766. [Google Scholar] [CrossRef]
- Tian, S.; Wang, J.; Wang, J.; Zhu, W. Differential effects of early-life and postweaning galacto-oligosaccharide intervention on colonic bacterial composition and function in weaning piglets. Appl. Environ. Microb. 2022, 88, e01318-21. [Google Scholar] [CrossRef]
- Wu, Y.; Zhang, X.; Pi, Y.; Han, D.; Feng, C.; Zhao, J.; Chen, L.; Che, D.; Bao, H.; Xie, Z.; et al. Maternal galactooligosaccharides supplementation programmed immune defense, microbial colonization and intestinal development in piglets. Food Funct. 2021, 12, 7260–7270. [Google Scholar] [CrossRef]
- Fassarella, M.; Blaak, E.E.; Penders, J.; Nauta, A.; Smidt, H.; Zoetendal, E.G. Gut microbiome stability and resilience: Elucidating the response to perturbations in order to modulate gut health. Gut 2021, 70, 595–605. [Google Scholar] [CrossRef]
- Mukherjee, A.; Lordan, C.; Ross, R.P.; Cotter, P.D. Gut microbes from the phylogenetically diverse genus Eubacterium and their various contributions to gut health. Gut Microbes 2020, 12, 1802866. [Google Scholar] [CrossRef]
- Sakamoto, M.; Iino, T.; Ohkuma, M. Faecalimonas umbilicata gen. nov., sp. nov., isolated from human faeces, and reclassification of Eubacterium contortum, Eubacterium fissicatena and Clostridium oroticum as Faecalicatena contorta gen. nov., comb. nov., Faecalicatena fissicatena comb. nov. and Faecalicatena orotica comb. nov. Int. J. Syst. Evol. Microbiol. 2017, 67, 1219–1227. [Google Scholar] [CrossRef]
- Zakerska-Banaszak, O.; Ladziak, K.; Kruszka, D.; Maciejewski, K.; Wolko, L.; Krela-Kazmierczak, I.; Zawada, A.; Vestergaard, M.V.; Dobrowolska, A.; Skrzypczak-Zielinska, M. New potential biomarkers of ulcerative colitis and disease course—Integrated metagenomic and metabolomic analysis among Polish patients. J. Gastroenterol. 2025, 60, 1384–1399. [Google Scholar] [CrossRef]
- Suh, M.K.; Jin, J.S.; Do, H.E.; Kim, J.-S.; Eom, M.K.; Kim, H.S.; Lee, J.S. Adlercreutzia faecimuris sp. nov., producing propionate and acetate isolated from mouse feces. Antonie van Leeuwenhoek 2024, 117, 80. [Google Scholar] [CrossRef]
- Boldyreva, L.V.; Morozova, M.V.; Saydakova, S.S.; Kozhevnikova, E.N. Fat of the gut: Epithelial phospholipids in inflammatory bowel diseases. Int. J. Mol. Sci. 2021, 22, 11682. [Google Scholar] [CrossRef]
- Marzoog, B.A.; Vlasova, T.I. Membrane lipids under norm and pathology. Eur. J. Clin. Exp. Med. 2021, 19, 59–75. [Google Scholar] [CrossRef]
- Ko, C.-W.; Qu, J.; Black, D.D.; Tso, P. Regulation of intestinal lipid metabolism: Current concepts and relevance to disease. Nat. Rev. Gastroenterol. Hepatol. 2020, 17, 169–183. [Google Scholar] [CrossRef]
- Ryan, E.; Pastor, B.G.; Gethings, L.A.; Clarke, D.J.; Joyce, S.A. Lipidomic analysis reveals differences in Bacteroides species driven largely by plasmalogens, glycerophosphoinositols and certain sphingolipids. Metabolites 2023, 13, 360. [Google Scholar] [CrossRef]
- Ali, O.; Szabó, A. Review of eukaryote cellular membrane lipid composition, with special attention to the fatty acids. Int. J. Mol. Sci. 2023, 24, 15693. [Google Scholar] [CrossRef] [PubMed]
- Basu Ball, W.; Neff, J.K.; Gohil, V.M. The role of nonbilayer phospholipids in mitochondrial structure and function. FEBS Lett. 2018, 592, 1273–1290. [Google Scholar] [CrossRef]
- Wang, J.; Tian, S.; Wang, J.; Zhu, W. Early galactooligosaccharide intervention alters the metabolic profile, improves the antioxidant capacity of mitochondria and activates the AMPK/Nrf2 signaling pathway in suckling piglet liver. Food Funct. 2020, 11, 7280–7292. [Google Scholar] [CrossRef]
- Iqbal, J.; Hussain, M.M. Intestinal lipid absorption. Am. J. Physiol. Metab. 2009, 296, E1183–E1194. [Google Scholar] [CrossRef]
- Li, H.; Guo, W.; Ma, X.-J.; Li, J.-S.; Song, X. In vitro and in vivo anticancer activity of sophorolipids to human cervical cancer. Appl. Biochem. Biotechnol. 2017, 181, 1372–1387. [Google Scholar] [CrossRef] [PubMed]
- Liu, F.; Zhang, Y.; Shi, Y.; Xiong, K.; Wang, F.; Yang, J. Ceramide induces pyroptosis through TXNIP/NLRP3/GSDMD pathway in HUVECs. BMC Cell Biol. 2022, 23, 54. [Google Scholar] [CrossRef] [PubMed]
- Zhang, L.C.; Yang, H.; Liu, Y.Y.; Wu, Q.; Gao, S.Y.; Zhang, L.W.; Feng, X.J.; Shan, A.S. Design and chromatography-free purification of a recombinant helix-bundle AMP with potent antibacterial activity for pork preservation. LWT 2026, 242, 119140. [Google Scholar] [CrossRef]
- Liu, Y.; Hou, Y.; Wang, G.; Zheng, X.; Hao, H. Gut microbial metabolites of aromatic amino acids as signals in host–microbe interplay. Trends Endocrinol. Metab. 2020, 31, 818–834. [Google Scholar] [CrossRef]
- Gao, K.; Mu, C.-L.; Farzi, A.; Zhu, W.-Y. Tryptophan metabolism: A link between the gut microbiota and brain. Adv. Nutr. 2020, 11, 709–723. [Google Scholar] [CrossRef] [PubMed]
- Saeedi Saravi, S.S.; Pugin, B.; Constancias, F.; Shabanian, K.; Spalinger, M.; Thomas, A.; Gludic, S.; Shabanian, T.; Karsai, G.; Colucci, M.; et al. Gut microbiota-dependent increase in phenylacetic acid induces endothelial cell senescence during aging. Nat. Aging 2025, 5, 1025–1045. [Google Scholar] [CrossRef] [PubMed]
- Shaheen, N.; Miao, J.; Xia, B.; Zhao, Y.; Zhao, J. Multifaceted Role of Microbiota-Derived Indole-3-Acetic Acid in Human Diseases and Its Potential Clinical Application. FASEB J. 2025, 39, e70574. [Google Scholar] [CrossRef] [PubMed]







Disclaimer/Publisher’s Note: The statements, opinions and data contained in all publications are solely those of the individual author(s) and contributor(s) and not of MDPI and/or the editor(s). MDPI and/or the editor(s) disclaim responsibility for any injury to people or property resulting from any ideas, methods, instructions or products referred to in the content. |
© 2026 by the authors. Licensee MDPI, Basel, Switzerland. This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution (CC BY) license.
Share and Cite
Gao, Z.; Wang, J.; Cheng, Z.; Zha, Z.; Xu, T.; Yang, K.; Zhao, T.; Jiang, J.; Zheng, P.; Pi, Y.; et al. Effects of Galacto-Oligosaccharide Supplementation on Cecal Microbiota, Phospholipid and Aromatic Amino Acid Metabolism in Mice. Microorganisms 2026, 14, 652. https://doi.org/10.3390/microorganisms14030652
Gao Z, Wang J, Cheng Z, Zha Z, Xu T, Yang K, Zhao T, Jiang J, Zheng P, Pi Y, et al. Effects of Galacto-Oligosaccharide Supplementation on Cecal Microbiota, Phospholipid and Aromatic Amino Acid Metabolism in Mice. Microorganisms. 2026; 14(3):652. https://doi.org/10.3390/microorganisms14030652
Chicago/Turabian StyleGao, Zisong, Jue Wang, Zhiheng Cheng, Ziyang Zha, Ting Xu, Ke Yang, Tiantian Zhao, Jinglun Jiang, Pengchao Zheng, Yu Pi, and et al. 2026. "Effects of Galacto-Oligosaccharide Supplementation on Cecal Microbiota, Phospholipid and Aromatic Amino Acid Metabolism in Mice" Microorganisms 14, no. 3: 652. https://doi.org/10.3390/microorganisms14030652
APA StyleGao, Z., Wang, J., Cheng, Z., Zha, Z., Xu, T., Yang, K., Zhao, T., Jiang, J., Zheng, P., Pi, Y., & Tian, S. (2026). Effects of Galacto-Oligosaccharide Supplementation on Cecal Microbiota, Phospholipid and Aromatic Amino Acid Metabolism in Mice. Microorganisms, 14(3), 652. https://doi.org/10.3390/microorganisms14030652

