Agaro-Oligosaccharide Supplementation Alters the Gut Microbiota, Revealing Potential Agaro-Oligosaccharide-Utilizing Taxa in Healthy Japanese Adults
Abstract
1. Introduction
2. Materials and Methods
2.1. Study Design and Participants
2.2. Intervention
2.3. Assessment of Bowel Habits
2.4. Fecal Sample Collection and Microbiota Analysis
2.5. Primer Design
2.6. Quantitative PCR Analysis
2.7. Next-Generation Sequencing (NGS) Analysis of Amplified ACI Fractions
2.8. Fecal Short-Chain Fatty Acid Analysis
2.9. Statistical Analyses
3. Results
3.1. Participants and Baseline Characteristics
3.2. Bowel Condition and Stool Characteristics
3.3. Effects of AOS on the Gut Microbiota
3.3.1. Alpha and Beta Diversity of Gut Microbiota
3.3.2. Distribution and Diversity of the Gut Microbiota at the Phylum, Genus, and Species Levels
3.4. Exploratory Functional Predictions of Galactose Metabolism Following AOS Intake
3.5. qPCR-Based Quantification of ACI Gene Levels
3.6. NGS Analysis of Amplified ACI Gene Fragments
4. Discussion
Limitation of the Study
Supplementary Materials
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Acknowledgments
Conflicts of Interest
Abbreviations
| ACI | 3,6-anhydro-L-galactonate cycloisomerase |
| AHG | 3,6-anhydro-L-galactose |
| AOS | agaro-oligosaccharides |
| ASVs | amplicon sequence variants |
| BSFS | Bristol Stool Form Scale |
| FAS | full analysis set |
| FDR | false discovery rate |
| KDGal | 2-keto-3-deoxy-galactonate |
| KDPGal | 2-keto-3-deoxy-6-phosphogalactonate |
| NGS | next-generation sequencing |
| PCR | polymerase chain reaction |
| PCoA | principal coordinate analysis |
| PERMANOVA | permutational multivariate analysis of variance |
| qPCR | quantitative polymerase chain reaction |
| SCFAs | short-chain fatty acids |
| UMIN | University Hospital Medical Information Network |
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| Variable | Study Population (n = 18) |
|---|---|
| Gender | |
| Female (%) | 33.3 |
| Male (%) | 66.7 |
| Mean age (years) (SD) | 38.3 (6.6) |
| Mean height (cm) (SD) | 169.2 (8.1) |
| Mean weight (kg) (SD) | 61.2 (9.6) |
| Mean BMI (kg/m2) (SD) | 21.3 (2.5) |
| Smoking | |
| Non (%) | 72.2 |
| Previously (%) | 11.1 |
| Current (%) | 16.7 |
| Alcohol | |
| Non (%) | 44.4 |
| Previously (%) | 5.6 |
| Current (%) | 50.0 |
| Exercise | |
| Non (%) | 5.6 |
| Previously (%) | 66.7 |
| Current (%) | 27.7 |
| EC Number | Enzyme | FDR | log2 FC |
|---|---|---|---|
| EC:1.1.1.90 | p-hydroxybenzyl alcohol dehydrogenase | 0.201 | 3.66 |
| EC:2.1.1.178 | 16S rRNA (cytosine1407-C5)-methyltransferase | 0.201 | 1.05 |
| EC:2.1.1.186 | 23S rRNA (cytidine2498-2′-O)-methyltransferase | 0.201 | 1.18 |
| EC:2.3.1.118 | N-hydroxyarylamine O-acetyltransferase | 0.201 | 1.02 |
| EC:2.7.1.184 | Sulfofructose kinase | 0.201 | 1.92 |
| EC:2.7.1.58 | 2-keto-3-deoxygalactonokinase | 0.201 | 1.53 |
| EC:3.1.2.28 | 1,4-dihydroxy-2-naphthoyl-CoA hydrolase | 0.201 | 2.20 |
| EC:4.1.2.21 | 2-keto-3-deoxy-6-phosphogalactonate aldolase | 0.201 | 4.04 |
| EC:4.2.1.80 | 2-keto-4-pentenoate hydratase | 0.201 | 2.81 |
| EC:4.2.1.83 | 4-oxalmesaconate hydratase | 0.201 | 2.17 |
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Share and Cite
Hoshiba, N.; Fujii, T.; Yagasaki, R.; Ochi, T.; Shiba, K.; Takahashi, H.; Funasaka, K.; Ono, E.; Hirooka, Y.; Tochio, T.; et al. Agaro-Oligosaccharide Supplementation Alters the Gut Microbiota, Revealing Potential Agaro-Oligosaccharide-Utilizing Taxa in Healthy Japanese Adults. Biomedicines 2026, 14, 1112. https://doi.org/10.3390/biomedicines14051112
Hoshiba N, Fujii T, Yagasaki R, Ochi T, Shiba K, Takahashi H, Funasaka K, Ono E, Hirooka Y, Tochio T, et al. Agaro-Oligosaccharide Supplementation Alters the Gut Microbiota, Revealing Potential Agaro-Oligosaccharide-Utilizing Taxa in Healthy Japanese Adults. Biomedicines. 2026; 14(5):1112. https://doi.org/10.3390/biomedicines14051112
Chicago/Turabian StyleHoshiba, Natasia, Tadashi Fujii, Rina Yagasaki, Toshiyuki Ochi, Katsuhiro Shiba, Hideaki Takahashi, Kohei Funasaka, Eizaburo Ono, Yoshiki Hirooka, Takumi Tochio, and et al. 2026. "Agaro-Oligosaccharide Supplementation Alters the Gut Microbiota, Revealing Potential Agaro-Oligosaccharide-Utilizing Taxa in Healthy Japanese Adults" Biomedicines 14, no. 5: 1112. https://doi.org/10.3390/biomedicines14051112
APA StyleHoshiba, N., Fujii, T., Yagasaki, R., Ochi, T., Shiba, K., Takahashi, H., Funasaka, K., Ono, E., Hirooka, Y., Tochio, T., & Karasawa, K. (2026). Agaro-Oligosaccharide Supplementation Alters the Gut Microbiota, Revealing Potential Agaro-Oligosaccharide-Utilizing Taxa in Healthy Japanese Adults. Biomedicines, 14(5), 1112. https://doi.org/10.3390/biomedicines14051112

