Xueting Niu, Shengwei Chen, Xinchen Wang, Jiaying Wen, Xiaoxi Liu, Yanhong Yong, Zhichao Yu, Xingbing Ma, A M Abd El-Aty, Xianghong Ju
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Our findings demonstrated that BTL-I effectively inhibited the heat-stress-induced upregulation of HSP70 and HSP90, alleviating intestinal heat stress. Both in vitro and in vivo experiments revealed that heat stress increased intestinal cell apoptosis, with a significant upregulation of Bax/Bcl-2 expression, while BTL-I pretreatment significantly reduced apoptosis-related protein levels, showcasing its protective effects. Furthermore, BTL-I suppressed oxidative stress markers (ROS and MDA) while enhancing antioxidant activity (SOD levels). BTL-I also reduced the expression of p-PERK, p-eIF2α, ATF4, and CHOP, mitigating oxidative and endoplasmic reticulum stress in intestinal cells. In conclusion, BTL-I demonstrates the potential to improve animal resilience to heat stress, supporting sustainable livestock production systems. 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引用次数: 0
摘要
热应激是畜牧业面临的重大挑战,引起氧化应激、肠黏膜损伤和细胞凋亡,严重影响动物的健康、生长和生产效率。开发安全、可持续和自然产生的解决方案来减轻这些影响,对于推进可持续农业实践至关重要。丁内酯- i (BTL-I)是一种从深海真菌(曲霉)中提取的生物活性化合物,有望成为对抗动物热应激的功能性饲料添加剂。本研究探讨BTL-I对IPEC-J2细胞和小鼠热应激诱导的氧化应激和凋亡的保护作用。我们的研究结果表明,BTL-I可以有效抑制热应激诱导的HSP70和HSP90的上调,减轻肠道热应激。体外和体内实验均显示,热应激可增加肠细胞凋亡,Bax/Bcl-2表达显著上调,而BTL-I预处理可显著降低凋亡相关蛋白水平,显示其保护作用。此外,btl - 1还能抑制氧化应激标志物(ROS和MDA),提高抗氧化活性(SOD)水平。BTL-I还能降低p-PERK、p-eIF2α、ATF4和CHOP的表达,减轻肠细胞的氧化应激和内质网应激。总之,btl - 1显示了提高动物热应激恢复能力的潜力,支持可持续畜牧生产系统。它作为一种天然、环保的饲料添加剂的应用将有助于可持续农业实践的发展。
Butyrolactone-I from Marine Fungal Metabolites Mitigates Heat-Stress-Induced Apoptosis in IPEC-J2 Cells and Mice Through the ROS/PERK/CHOP Signaling Pathway.
Heat stress poses a significant challenge to animal husbandry, contributing to oxidative stress, intestinal mucosal injury, and apoptosis, which severely impact animal health, growth, and production efficiency. The development of safe, sustainable, and naturally derived solutions to mitigate these effects is critical for advancing sustainable agricultural practices. Butyrolactone-I (BTL-I), a bioactive compound derived from deep-sea fungi (Aspergillus), shows promise as a functional feed additive to combat heat stress in animals. This study explored the protective effects of BTL-I against heat-stress-induced oxidative stress and apoptosis in IPEC-J2 cells and mice. Our findings demonstrated that BTL-I effectively inhibited the heat-stress-induced upregulation of HSP70 and HSP90, alleviating intestinal heat stress. Both in vitro and in vivo experiments revealed that heat stress increased intestinal cell apoptosis, with a significant upregulation of Bax/Bcl-2 expression, while BTL-I pretreatment significantly reduced apoptosis-related protein levels, showcasing its protective effects. Furthermore, BTL-I suppressed oxidative stress markers (ROS and MDA) while enhancing antioxidant activity (SOD levels). BTL-I also reduced the expression of p-PERK, p-eIF2α, ATF4, and CHOP, mitigating oxidative and endoplasmic reticulum stress in intestinal cells. In conclusion, BTL-I demonstrates the potential to improve animal resilience to heat stress, supporting sustainable livestock production systems. Its application as a natural, eco-friendly feed additive will contribute to the development of sustainable agricultural practices.
期刊介绍:
Marine Drugs (ISSN 1660-3397) publishes reviews, regular research papers and short notes on the research, development and production of drugs from the sea. Our aim is to encourage scientists to publish their experimental and theoretical research in as much detail as possible, particularly synthetic procedures and characterization information for bioactive compounds. There is no restriction on the length of the experimental section.