Ochratoxin A induces reprogramming of glucose metabolism by switching energy metabolism from oxidative phosphorylation to glycolysis in human gastric epithelium GES-1 cells in vitro
Yuan Wang , Man Zhao , Jinfeng Cui , Xin Wu , Yuehong Li , Wenxin Wu , Xianghong Zhang
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引用次数: 7
Abstract
Ochratoxin A (OTA) is a ubiquitous mycotoxin with potential nephrotoxic, hepatotoxic and immunotoxic effects. We previously demonstrated that OTA could cause mitochondrial function disturbance in GES-1 cells in vitro, which lead to the presumption that the glucose metabolism of GES-1 cells will be altered by OTA. Therefore in the present study, we explored the toxicity of OTA on glucose metabolism of GES-1 cells and the molecular mechanism. We found that OTA could induce aerobic glycolysis, evidenced shown by increase of glucose consumption, lactate production and cellular ATP concentration. We further detected expressions of GLUT1 and glycolytic enzymes including HK2, PFK1, PKM2 and LDHA as well as tricarboxylic acid (TCA) cycle-associated enzymes including IDH1, OGDH and CS. The results showed that expression of GLUT1 as well as the activities and expressions of HK2, PFK1 and LDHA were significantly increased while IDH1 and OGDH were reduced by OTA. As to PKM2, western blot showed that OTA could elevated the phospho-PKM2 Ser37 protein level and induce the nuclear accumulation of PKM2, which was further supported by immunofluorescence analyses, in addition, pyruvate kinase activity was reduced by OTA. In conclusion, these findings suggest that OTA exposure induces the metabolic shift from oxidative phosphorylation to aerobic glycolysis via regulating the activities and expressions of glycolysis and TCA-cycle associated molecules in GES-1 cells.
赭曲霉毒素A (OTA)是一种普遍存在的真菌毒素,具有潜在的肾毒性、肝毒性和免疫毒性。我们之前在体外实验中证实OTA可引起GES-1细胞线粒体功能紊乱,由此推测OTA会改变GES-1细胞的糖代谢。因此,在本研究中,我们探讨了OTA对GES-1细胞糖代谢的毒性及其分子机制。我们发现OTA可以诱导有氧糖酵解,通过增加葡萄糖消耗、乳酸生成和细胞ATP浓度来证明。我们进一步检测了GLUT1和糖酵解酶HK2、PFK1、PKM2和LDHA以及三羧酸(TCA)循环相关酶IDH1、OGDH和CS的表达。结果表明,OTA显著提高了GLUT1的表达,显著提高了HK2、PFK1和LDHA的活性和表达,显著降低了IDH1和OGDH的表达。对于PKM2, western blot结果显示,OTA可以提高磷酸化PKM2 Ser37蛋白水平,诱导PKM2的核积累,免疫荧光分析进一步支持了这一点,此外,OTA还降低了丙酮酸激酶的活性。综上所述,这些研究结果表明,OTA暴露通过调节GES-1细胞中糖酵解和tca循环相关分子的活性和表达,诱导代谢从氧化磷酸化向有氧糖酵解转变。