Selenium Supplementation Attenuates NET DNA-Mediated Intestinal Epithelial Pyroptosis and Intestinal Barrier Injury in MRSA Enteritis via Upregulating Selenoprotein S

Abstract It is widely believed that neutrophils exert an antibacterial defense through NETs during MRSA infection. However, this study found that during MRSA enteritis, NET DNA released by neutrophils under low-selenium (Se) conditions directly triggers intestinal epithelial pyroptosis and disrupts tight junctions. Following sodium selenite intervention, intestinal selenoprotein transcriptome screening identified selenoprotein S (SelS) as the most significantly downregulated selenoprotein after the MRSA challenge and the most sensitive to Se supplementation recovery. Notably, MRSA alone did not directly induce pyroptosis or tight junction disruption in MODE-K cells, whereas SelS silencing rendered them susceptible to the MRSA-induced damage. Mechanistically, neutrophils cultured under low-Se conditions showed reduced SelS expression and released pathological NET DNA upon MRSA infection, which directly triggered intestinal epithelial pyroptosis and barrier disruption. These findings provide a mechanistic basis for Se-based nutritional intervention in MRSA-associated enteritis and offer potential therapeutic targets for nonantibiotic strategies.

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Publication Details

Journal
Journal of Agricultural and Food Chemistry
Published
2026-09-18
DOI
https://doi.org/10.1021/acs.jafc.6c10442
Primary Topic
Selenium in Biological Systems
Type
article
Field-Weighted Citation Impact
0.00

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article

Selenium Supplementation Attenuates NET DNA-Mediated Intestinal Epithelial Pyroptosis and Intestinal Barrier Injury in MRSA Enteritis via Upregulating Selenoprotein S

Qianru Chi, Xueying Chen, Yanhua Li, Lixiu Zhu et al.
Journal of Agricultural and Food Chemistry
Selenium in Biological Systems
article

Selenium Supplementation Attenuates NET DNA-Mediated Intestinal Epithelial Pyroptosis and Intestinal Barrier Injury in MRSA Enteritis via Upregulating Selenoprotein S

Qianru Chi, Xueying Chen, Yanhua Li, Lixiu Zhu, Yaran Yang, Hao Wang, Jianqiang Yan, Ziyang Zhou, Mingyu Pi
article en

Abstract

Abstract It is widely believed that neutrophils exert an antibacterial defense through NETs during MRSA infection. However, this study found that during MRSA enteritis, NET DNA released by neutrophils under low-selenium (Se) conditions directly triggers intestinal epithelial pyroptosis and disrupts tight junctions. Following sodium selenite intervention, intestinal selenoprotein transcriptome screening identified selenoprotein S (SelS) as the most significantly downregulated selenoprotein after the MRSA challenge and the most sensitive to Se supplementation recovery. Notably, MRSA alone did not directly induce pyroptosis or tight junction disruption in MODE-K cells, whereas SelS silencing rendered them susceptible to the MRSA-induced damage. Mechanistically, neutrophils cultured under low-Se conditions showed reduced SelS expression and released pathological NET DNA upon MRSA infection, which directly triggered intestinal epithelial pyroptosis and barrier disruption. These findings provide a mechanistic basis for Se-based nutritional intervention in MRSA-associated enteritis and offer potential therapeutic targets for nonantibiotic strategies.

Journal of Agricultural and Food Chemistry
Northeast Agricultural University (CN), China Animal Disease Control Center (CN)
National Natural Science Foundation of China, China Postdoctoral Science Foundation, Natural Science Foundation of Heilongjiang Province, Heilongjiang Provincial Postdoctoral Science Foundation
Zero hunger
Openalex Percentile: Top 12%
Selenium in Biological Systems
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