Medical Faculty, Institute of Anatomy, Otto-von-Guericke University, 39120 Magdeburg, Germany.
Institute for Pharmacology and Toxicology, Otto-von-Guericke University, 39120 Magdeburg, Germany.
Toxins (Basel). 2018 Nov 9;10(11):464. doi: 10.3390/toxins10110464.
Deoxynivalenol (DON) is a toxin found in cereals as well as in processed products such as pasta, and causes substantial economic losses for stock breeding as it induces vomiting, reduced feeding, and reduced growth rates in piglets. Oxidative phosphorylation, TCA-cycle, transcription, and translation have been hypothesized to be leading pathways that are affected by DON. We used an application of high and low glucose to examine oxidative phosphorylation and anaerobic glycolysis. A change in the metabolic status of IPEC-J2 was observed and confirmed by microarray data. Measurements of oxygen consumption resulted in a significant reduction, if DON attacks from the basolateral. Furthermore, we found a dose-dependent effect with a significant reduction at 2000 ng/mL. In addition, SLC7A11 and PHB, the genes with the highest regulation in our microarray analyses under low glucose supply, were investigated and showed a variable regulation on protein level. Lactate production and glucose consumption was investigated to examine the impact of DON on anaerobic glycolysis and we observed a significant increase in 2000 bl and a decrease in 2000 ap. Interestingly, both groups as well as 200 bl showed a significant higher de novo protein synthesis when compared to the control. These results indicate the direct or indirect impact of DON on metabolic pathways in IPEC-J2.
脱氧雪腐镰刀菌烯醇(DON)是一种存在于谷物及其加工产品(如意大利面)中的毒素,它会导致仔猪呕吐、采食量减少和生长速度下降,给畜牧业造成巨大的经济损失。据推测,DON 会影响氧化磷酸化、三羧酸循环、转录和翻译等主要途径。我们应用高糖和低糖来研究氧化磷酸化和无氧糖酵解。通过微阵列数据分析,观察到并证实了 IPEC-J2 代谢状态的变化。如果 DON 从基底外侧攻击,耗氧量的测量会显著减少。此外,我们发现 2000ng/mL 时存在剂量依赖性效应,其显著降低。此外,我们研究了在低糖供应下我们的微阵列分析中具有最高调控的基因 SLC7A11 和 PHB,结果显示其在蛋白水平上的调控存在差异。还研究了乳酸生成和葡萄糖消耗,以检查 DON 对无氧糖酵解的影响,结果观察到 2000bl 显著增加,2000ap 显著减少。有趣的是,与对照组相比,这两个组以及 200bl 都表现出显著更高的从头蛋白质合成。这些结果表明 DON 对 IPEC-J2 代谢途径的直接或间接影响。