首页> 外文期刊>International Journal of Nanomedicine >Biogenic selenium nanoparticles synthesized by Lactobacillus casei ATCC 393 alleviate intestinal epithelial barrier dysfunction caused by oxidative stress via Nrf2 signaling-mediated mitochondrial pathway
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Biogenic selenium nanoparticles synthesized by Lactobacillus casei ATCC 393 alleviate intestinal epithelial barrier dysfunction caused by oxidative stress via Nrf2 signaling-mediated mitochondrial pathway

机译:干酪乳杆菌ATCC 393合成的生物硒纳米颗粒通过Nrf2信号介导的线粒体途径缓解了氧化应激引起的肠上皮屏障功能障碍。

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Background: Selenium (Se) can exert antioxidative activity and prevent the body from experiencing oxidative injury. Biogenic Se nanoparticles (SeNPs) synthesized by probiotics possess relatively strong chemical stability, high bioavailability, and low toxicity, this makes them potential Se supplements. Previously, we demonstrated that SeNPs synthesized by Lactobacillus casei ATCC 393 can alleviate hydrogen peroxide (Hsub2/subOsub2/sub)-induced human and porcine intestinal epithelial cells’ oxidative damage. However, the antioxidant mechanism remains unclear. Methods: The possible antioxidant mechanism and protective effect of SeNPs on intestinal epithelial permeability and mitochondrial function were evaluated by establishing an Hsub2/subOsub2/sub-induced oxidative damage model of human colon mucosal epithelial cells (NCM460) and conducting Nrf2 inhibitor interference experiments. Mitochondrial membrane potential (MMP), mitochondrial DNA content, adenosine triphosphate (ATP), ROS, and protein expression levels of Nrf2-related genes were determined. Mitochondrial ultrastructure was visualized by transmission electron microscopy. Results: An amount of 4 μg Se/mL of SeNPs synthesized by L. casei ATCC 393 alleviated increase of ROS, reduced ATP and MMP, and maintained intestinal epithelial permeability in NCM460 cells challenged by Hsub2/subOsub2/sub. In addition, SeNPs improved the protein levels of Nrf2, HO-1, and NQO-1. Moreover, SeNPs attenuated the damage of mitochondrial ultrastructure caused by oxidative stress. Nrf2 inhibitor (ML385) abolished the regulatory effect of SeNPs on intracellular ROS production. Conclusion: Data suggest that biogenic SeNPs synthesized by L. casei ATCC 393 can protect the intestinal epithelial barrier function against oxidative damage by alleviating ROS-mediated mitochondrial dysfunction via Nrf2 signaling pathway. Biogenic SeNPs are an attractive candidate for potential Se supplement agent in preventing oxidative stress-related intestinal disease by targeting mitochondria.
机译:背景:硒(Se)可以发挥抗氧化活性,并防止人体遭受氧化损伤。益生菌合成的生物硒纳米颗粒(SeNPs)具有相对较强的化学稳定性,高生物利用度和低毒性,这使其成为潜在的硒补充剂。以前,我们证明干酪乳杆菌ATCC 393合成的SeNPs可以减轻过氧化氢(H 2 O 2 )诱导的人和猪肠道上皮细胞的氧化损伤。然而,抗氧化剂的机制仍不清楚。方法:通过建立H 2 O 2 诱导的人结肠黏膜氧化损伤模型,评估SeNPs可能对肠道上皮通透性和线粒体功能的抗氧化机制和保护作用。上皮细胞(NCM460)和进行Nrf2抑制剂干扰实验。测定了线粒体膜电位(MMP),线粒体DNA含量,三磷酸腺苷(ATP),ROS和Nrf2相关基因的蛋白表达水平。通过透射电子显微镜观察线粒体的超微结构。结果:干酪乳杆菌ATCC 393合成的4μgSe / mL SeNPs减轻了H 2 O < sub> 2 。此外,SeNPs改善了Nrf2,HO-1和NQO-1的蛋白质水平。此外,SeNPs减轻了氧化应激对线粒体超微结构的损害。 Nrf2抑制剂(ML385)取消了SeNPs对细胞内ROS产生的调节作用。结论:数据表明干酪乳杆菌ATCC 393合成的生物SeNPs可以通过Nrf2信号通路减轻ROS介导的线粒体功能障碍,从而保护肠上皮屏障功能免受氧化损伤。在靶向线粒体以预防氧化应激相关的肠道疾病方面,生物SeNPs是潜在的Se补充剂的有吸引力的候选者。

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