Corncob-Derived Xylo-Oligosaccharides Attenuate Acrylamide-Induced Gut–Liver Toxicity in Mice, Associated with Modulation of Gut Microbiota and SCFA Metabolism

Acrylamide (AA) is a common foodborne toxicant formed during the thermal processing of starch-rich foods and poses significant risks to the gut–liver axis. Although corncob-derived xylo-oligosaccharides (XOS) have emerged as promising prebiotics with multiple bioactivities, their protective effects against foodborne toxicants have not been explored. This study investigated the ameliorative effects of dietary corncob-derived XOS on AA-induced gut–liver toxicity and the underlying mechanisms in mice. Female C57BL/6J mice were gavaged with AA and concurrently fed diets with or without 7.0% XOS for 7 weeks. The results showed that XOS effectively alleviated AA-induced gut–liver toxicity, as evidenced by attenuated intestinal and hepatic inflammation (decreased pro-inflammatory cytokines IL-6 in colon, TNF-α, and IL1-β in liver; increased anti-inflammatory IL-10 in colon and liver), restored intestinal barrier integrity (upregulated Zo-1, Occludin, and Claudin-1 mRNA, along with increased goblet cell numbers and mucus secretion), and ameliorated hepatic oxidative stress (upregulated Nrf2/Nqo1/Ho1 mRNA expression, restored CAT activity, and reduced H2O2 accumulation). 16S sequencing revealed that XOS supplementation significantly increased the Shannon index in AA-exposed mice compared with the AA group, suggesting enhanced cecal microbial diversity, although AA exposure did not significantly reduce α-diversity. Further analysis showed that XOS reshaped the community composition, particularly by reducing pro-inflammatory genera (Dubosiella, Desulfovibrio, Faecalibaculum, and Faecalimonas) and enriching short chain fatty acid (SCFA)-producing bacteria (Bifidobacterium, norank_f__Muribaculaceae, and Akkermansia). Furthermore, XOS significantly elevated SCFA levels in AA-treated mice, including acetic, propionic, butyric, valeric, and isovaleric acids. Collectively, these findings demonstrate that dietary XOS ameliorates AA-induced gut–liver toxicity in mice when co-administered with AA. This protective effect was associated with modulation of the gut microbiota and SCFA metabolism, providing a basis for future studies exploring the potential of XOS against foodborne contaminant toxicity.

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Journal
Biology
Published
2026-09-22
DOI
https://doi.org/10.3390/biology15191684
Primary Topic
Potato Plant Research
Type
article
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article

Corncob-Derived Xylo-Oligosaccharides Attenuate Acrylamide-Induced Gut–Liver Toxicity in Mice, Associated with Modulation of Gut Microbiota and SCFA Metabolism

Zhongke Sun, Zonghao Yue, Le He, Lili Li et al.
Biology
Potato Plant Research
article

Corncob-Derived Xylo-Oligosaccharides Attenuate Acrylamide-Induced Gut–Liver Toxicity in Mice, Associated with Modulation of Gut Microbiota and SCFA Metabolism

Zhongke Sun, Zonghao Yue, Le He, Lili Li, Yanjuan Chen, Ruiping Luo, Erting Liu
article en

Abstract

Acrylamide (AA) is a common foodborne toxicant formed during the thermal processing of starch-rich foods and poses significant risks to the gut–liver axis. Although corncob-derived xylo-oligosaccharides (XOS) have emerged as promising prebiotics with multiple bioactivities, their protective effects against foodborne toxicants have not been explored. This study investigated the ameliorative effects of dietary corncob-derived XOS on AA-induced gut–liver toxicity and the underlying mechanisms in mice. Female C57BL/6J mice were gavaged with AA and concurrently fed diets with or without 7.0% XOS for 7 weeks. The results showed that XOS effectively alleviated AA-induced gut–liver toxicity, as evidenced by attenuated intestinal and hepatic inflammation (decreased pro-inflammatory cytokines IL-6 in colon, TNF-α, and IL1-β in liver; increased anti-inflammatory IL-10 in colon and liver), restored intestinal barrier integrity (upregulated Zo-1, Occludin, and Claudin-1 mRNA, along with increased goblet cell numbers and mucus secretion), and ameliorated hepatic oxidative stress (upregulated Nrf2/Nqo1/Ho1 mRNA expression, restored CAT activity, and reduced H2O2 accumulation). 16S sequencing revealed that XOS supplementation significantly increased the Shannon index in AA-exposed mice compared with the AA group, suggesting enhanced cecal microbial diversity, although AA exposure did not significantly reduce α-diversity. Further analysis showed that XOS reshaped the community composition, particularly by reducing pro-inflammatory genera (Dubosiella, Desulfovibrio, Faecalibaculum, and Faecalimonas) and enriching short chain fatty acid (SCFA)-producing bacteria (Bifidobacterium, norank_f__Muribaculaceae, and Akkermansia). Furthermore, XOS significantly elevated SCFA levels in AA-treated mice, including acetic, propionic, butyric, valeric, and isovaleric acids. Collectively, these findings demonstrate that dietary XOS ameliorates AA-induced gut–liver toxicity in mice when co-administered with AA. This protective effect was associated with modulation of the gut microbiota and SCFA metabolism, providing a basis for future studies exploring the potential of XOS against foodborne contaminant toxicity.

BiologyVol. 15(19)
Henan University of Technology (CN), Zhoukou Normal University (CN)
Openalex Percentile: Top 14%
Potato Plant Research
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