Methylnicotinamide shields the intestinal epithelial barrier following radiotherapy in colorectal cancer through AhR/RNF43-dependent Wnt suppression and Occludin/ZO-1 enhancement

Background A frequent adverse effect of radiotherapy in colorectal cancer (CRC) patients is radiation-induced intestinal injury (RIII), which compromises the intestinal epithelial barrier's functionality. Emerging evidence highlights the importance of multiple tryptophan-derived metabolites in preserving gut barrier integrity. However, methylnicotinamide (MNA), a metabolite originating from tryptophan, in the context of RIII are not well understood. This study sought to determine if MNA can mitigate radiation-triggered intestinal epithelial barrier impairment and to clarify the associated molecular mechanisms. Methods A RIII in vitro model was established by irradiating Caco-2 cells with X-rays; in vitro functional assays were employed to evaluate the protective effect of MNA against radiation-induced intestinal injury, and the role of the aryl hydrocarbon receptor (AhR)/RNF43/Wnt signaling axis in this process was investigated. Additionally, the AhR antagonist CH223191 was used for pharmacological inhibition to validate the causal role of this signaling axis in the MNA-mediated protective effect. Results In an in vitro Caco-2 model of radiation-induced intestinal injury, pretreatment with MNA (6–24 ng/mL) attenuated barrier dysfunction and apoptosis induced by 10 Gy X-ray irradiation in a dose-dependent manner, as evidenced by upregulated expression and restored membrane localization of the tight junction proteins Occludin and zonula occludens-1 (ZO-1), with the highest concentration (24 ng/mL) restoring cell function to normal levels. Mechanistically, MNA activated AhR signaling (as evidenced by increased CYP1A1 expression) and upregulated RNF43 in an AhR-dependent manner. Importantly, CH223191 treatment abolished MNA-mediated protection against radiation-induced barrier dysfunction and apoptosis. Conclusion This study demonstrates that MNA protects the integrity of the intestinal epithelial barrier from radiation-induced disruption through the AhR/RNF43/Wnt/β-catenin signaling pathway, thereby maintaining the levels of Occludin and ZO-1. These results reveal a new mechanism through which MNA operates and highlight AhR and RNF43 as possible therapeutic targets for preventing and treating intestinal damage induced by radiation.

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Journal
Journal of Radiation Research and Applied Sciences
Published
2026-08-25
DOI
https://doi.org/10.1016/j.jrras.2026.102633
Primary Topic
Barrier Structure and Function Studies
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article
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article

Methylnicotinamide shields the intestinal epithelial barrier following radiotherapy in colorectal cancer through AhR/RNF43-dependent Wnt suppression and Occludin/ZO-1 enhancement

Kejin Li, Limao Xu, Dan Wang, Haijun Zeng et al.
Journal of Radiation Research and Applied Sciences
Barrier Structure and Function Studies
article

Methylnicotinamide shields the intestinal epithelial barrier following radiotherapy in colorectal cancer through AhR/RNF43-dependent Wnt suppression and Occludin/ZO-1 enhancement

Kejin Li, Limao Xu, Dan Wang, Haijun Zeng, Hongkun Zhao, Jia Tang
article en

Abstract

Background A frequent adverse effect of radiotherapy in colorectal cancer (CRC) patients is radiation-induced intestinal injury (RIII), which compromises the intestinal epithelial barrier's functionality. Emerging evidence highlights the importance of multiple tryptophan-derived metabolites in preserving gut barrier integrity. However, methylnicotinamide (MNA), a metabolite originating from tryptophan, in the context of RIII are not well understood. This study sought to determine if MNA can mitigate radiation-triggered intestinal epithelial barrier impairment and to clarify the associated molecular mechanisms. Methods A RIII in vitro model was established by irradiating Caco-2 cells with X-rays; in vitro functional assays were employed to evaluate the protective effect of MNA against radiation-induced intestinal injury, and the role of the aryl hydrocarbon receptor (AhR)/RNF43/Wnt signaling axis in this process was investigated. Additionally, the AhR antagonist CH223191 was used for pharmacological inhibition to validate the causal role of this signaling axis in the MNA-mediated protective effect. Results In an in vitro Caco-2 model of radiation-induced intestinal injury, pretreatment with MNA (6–24 ng/mL) attenuated barrier dysfunction and apoptosis induced by 10 Gy X-ray irradiation in a dose-dependent manner, as evidenced by upregulated expression and restored membrane localization of the tight junction proteins Occludin and zonula occludens-1 (ZO-1), with the highest concentration (24 ng/mL) restoring cell function to normal levels. Mechanistically, MNA activated AhR signaling (as evidenced by increased CYP1A1 expression) and upregulated RNF43 in an AhR-dependent manner. Importantly, CH223191 treatment abolished MNA-mediated protection against radiation-induced barrier dysfunction and apoptosis. Conclusion This study demonstrates that MNA protects the integrity of the intestinal epithelial barrier from radiation-induced disruption through the AhR/RNF43/Wnt/β-catenin signaling pathway, thereby maintaining the levels of Occludin and ZO-1. These results reveal a new mechanism through which MNA operates and highlight AhR and RNF43 as possible therapeutic targets for preventing and treating intestinal damage induced by radiation.

Journal of Radiation Research and Applied SciencesVol. 19(3)
Wuhou District People's Hospital, Chengdu (CN)
Good health and well-being
Openalex Percentile: Top 12%
Barrier Structure and Function Studies
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