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Inhibition of the key metabolic pathways, glycolysis and lipogenesis, of oral cancer by bitter melon extract

机译:苦瓜提取物抑制口腔癌关键代谢途径,糖酵解和脂肪生成

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Metabolic reprogramming is one of the hallmarks of cancer which favours rapid energy production, biosynthetic capabilities and therapy resistance. In our previous study, we showed bitter melon extract (BME) prevents carcinogen induced mouse oral cancer. RNA sequence analysis from mouse tongue revealed a significant modulation in “Metabolic Process” by altering glycolysis and lipid metabolic pathways in BME fed group as compared to cancer group. In present study, we evaluated the effect of BME on glycolysis and lipid metabolism pathways in human oral cancer cells. Cal27 and JHU022 cells were treated with BME. RNA and protein expression were analysed for modulation of glycolytic and lipogenesis genes by quantitative real-time PCR, western blot analyses and immunofluorescence. Lactate and pyruvate level was determined by GC/MS. Extracellular acidification and glycolytic rate were measured using the Seahorse XF analyser. Shotgun lipidomics in Cal27 and JHU022 cell lines following BME treatment was performed by ESI/ MS. ROS was measured by FACS. Treatment with BME on oral cancer cell lines significantly reduced mRNA and protein expression levels of key glycolytic genes SLC2A1 (GLUT-1), PFKP, LDHA, PKM and PDK3. Pyruvate and lactate levels and glycolysis rate were reduced in oral cancer cells following BME treatment. In lipogenesis pathway, we observed a significant reduction of genes involves in fatty acid biogenesis, ACLY, ACC1 and FASN, at the mRNA and protein levels following BME treatment. Further, BME treatment significantly reduced phosphatidylcholine, phosphatidylethanolamine, and plasmenylethanolamine, and reduced iPLA2 activity. Additionally, BME treatment inhibited lipid raft marker flotillin expression and altered its subcellular localization. ER-stress associated CHOP expression and generation of mitochondrial reactive oxygen species were induced by BME, which facilitated apoptosis. Our study revealed that bitter melon extract inhibits glycolysis and lipid metabolism and induces ER and oxidative stress-mediated cell death in oral cancer. Thus, BME-mediated metabolic reprogramming of oral cancer cells will have important preventive and therapeutic implications along with conventional therapies.
机译:代谢重编程是癌症的标志之一,它有利于快速产生能量,生物合成能力和治疗抗性。在我们以前的研究中,我们证明了苦瓜提取物(BME)可以预防致癌物诱发的小鼠口腔癌。小鼠舌头的RNA序列分析显示,与癌症组相比,BME进食组通过改变糖酵解和脂质代谢途径,显着调节了“代谢过程”。在本研究中,我们评估了BME对人口腔癌细胞中糖酵解和脂质代谢途径的影响。用BME处理Cal27和JHU022细胞。通过定量实时PCR,蛋白质印迹分析和免疫荧光分析RNA和蛋白质表达对糖酵解和脂肪生成基因的调控。乳酸和丙酮酸水平通过GC / MS测定。使用Seahorse XF分析仪测量细胞外酸化和糖酵解速率。通过ESI / MS在BME处理后在Cal27和JHU022细胞系中进行弹枪脂质组学研究。 ROS通过FACS测量。在口腔癌细胞系上用BME处理显着降低了关键糖酵解基因SLC2A1(GLUT-1),PFKP,LDHA,PKM和PDK3的mRNA和蛋白质表达水平。 BME治疗后口腔癌细胞的丙酮酸和乳酸水平以及糖酵解速率降低。在脂肪形成途径中,我们观察到在BME处理后,mRNA和蛋白质水平上涉及脂肪酸生物发生的基因ACLY,ACC1和FASN显着减少。此外,BME处理显着降低了磷脂酰胆碱,磷脂酰乙醇胺和纤维素乙醇胺,并降低了iPLA2活性。此外,BME处理可抑制脂质筏标志物弗洛蒂林的表达并改变其亚细胞定位。 BME诱导内质网应激相关的CHOP表达和线粒体活性氧的产生,促进细胞凋亡。我们的研究表明,苦瓜提取物抑制糖酵解和脂质代谢,并诱导口腔癌中ER和氧化应激介导的细胞死亡。因此,BME介导的口腔癌细胞的代谢重编程将与常规疗法一起具有重要的预防和治疗意义。

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