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本文引用的文献

1
Bringing Warburg to lymphocytes.将瓦氏效应应用于淋巴细胞。
Nat Rev Immunol. 2015 Oct;15(10):598. doi: 10.1038/nri3918.
2
Metabolic interplay between glycolysis and mitochondrial oxidation: The reverse Warburg effect and its therapeutic implication.糖酵解与线粒体氧化之间的代谢相互作用:逆瓦伯格效应及其治疗意义。
World J Biol Chem. 2015 Aug 26;6(3):148-61. doi: 10.4331/wjbc.v6.i3.148.
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Inhibition of glucose-transporter 1 (GLUT-1) expression reversed Warburg effect in gastric cancer cell MKN45.抑制葡萄糖转运蛋白1(GLUT-1)的表达可逆转胃癌细胞MKN45中的瓦伯格效应。
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Inhibition of the Warburg effect with a natural compound reveals a novel measurement for determining the metastatic potential of breast cancers.用一种天然化合物抑制瓦伯格效应揭示了一种用于确定乳腺癌转移潜能的新方法。
Oncotarget. 2015 Jan 20;6(2):662-78. doi: 10.18632/oncotarget.2689.
5
Oleanolic Acid enhances the beneficial effects of preconditioning on PC12 cells.齐墩果酸增强预处理对PC12细胞的有益作用。
Parkinsons Dis. 2014;2014:929854. doi: 10.1155/2014/929854. Epub 2014 Nov 13.
6
Violacein inhibits matrix metalloproteinase mediated CXCR4 expression: potential anti-tumor effect in cancer invasion and metastasis.紫菌素抑制基质金属蛋白酶介导的CXCR4表达:对癌症侵袭和转移的潜在抗肿瘤作用。
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How do glycolytic enzymes favour cancer cell proliferation by nonmetabolic functions?糖酵解酶如何通过非代谢功能促进癌细胞增殖?
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ATP/ADP ratio, the missed connection between mitochondria and the Warburg effect.ATP/ADP 比值,线粒体与瓦伯格效应之间被忽视的联系。
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10
Separation of metabolic supply and demand: aerobic glycolysis as a normal physiological response to fluctuating energetic demands in the membrane.代谢供应与需求的分离:有氧糖酵解作为细胞膜中能量需求波动的正常生理反应。
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齐墩果酸抑制高盐诱导的乳腺癌细胞中类似瓦伯格代谢的增强。

Oleanolic Acid Inhibits High Salt-Induced Exaggeration of Warburg-like Metabolism in Breast Cancer Cells.

作者信息

Amara Suneetha, Zheng Mu, Tiriveedhi Venkataswarup

机构信息

Department of Medicine, Mercy Hospital, St Louis, MO, USA.

Department of Chemistry, Tennessee State University, Nashville, TN, USA.

出版信息

Cell Biochem Biophys. 2016 Sep;74(3):427-34. doi: 10.1007/s12013-016-0736-7. Epub 2016 May 28.

DOI:10.1007/s12013-016-0736-7
PMID:27236294
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC5010524/
Abstract

Cancer cells have a proliferative advantage by utilizing intermediates of aerobic glycolysis (Warburg effect) for their macromolecule synthesis. Although the exact causes of this Warburg effect are unclear, high osmotic stress in solid tumor microenvironment is considered one of the important factors. Oleanolic acid (OA) is known to exert anti-inflammatory and anti-cancer effect. In our current studies, using breast cancer cell lines, we determined the protective role of OA in high salt-mediated osmotic stress-induced cancer growth. Hypertonic (0.16 M NaCl) culture conditions enhanced the cancer cell growth (26 %, p < 0.05) and aerobic glycolysis as marked by increased glucose consumption (34 %, p < 0.05) and lactate production (25 %, p < 0.05) over untreated cells. This effect was associated with increased expression and activity of key rate-limiting enzymes of aerobic glycolysis, namely hexokinase, pyruvate kinase type M2, and lactate dehydrogenase A. Interestingly, this high salt-mediated enhanced expression of aerobic glycolytic enzymes was efficiently reversed by OA along with the decreased cancer cell proliferation. In cancer cells, enhanced aerobic glycolysis is associated with the decreased mitochondrial activity and mitochondrial-associated caspase activity. As expected, high salt further inhibited the mitochondrial related cytochrome oxidase and caspase-3 activity. However, OA efficiently reversed the high salt-mediated inhibition of cytochrome oxidase, caspase activity, and pro-apoptotic Bax expression, thus suggesting that OA induced mitochondrial activity and enhanced apoptosis. Taken together, our data indicate that OA efficiently reverses the enhanced Warburg-like metabolism induced by high salt-mediated osmotic stress along with potential application of OA in anti-cancer therapy.

摘要

癌细胞通过利用有氧糖酵解的中间产物(瓦伯格效应)进行大分子合成,从而具有增殖优势。尽管这种瓦伯格效应的确切原因尚不清楚,但实体瘤微环境中的高渗透压应激被认为是重要因素之一。齐墩果酸(OA)已知具有抗炎和抗癌作用。在我们目前的研究中,我们使用乳腺癌细胞系,确定了OA在高盐介导的渗透压应激诱导的癌症生长中的保护作用。高渗(0.16 M NaCl)培养条件增强了癌细胞的生长(26%,p<0.05)以及有氧糖酵解,表现为与未处理细胞相比,葡萄糖消耗增加(34%,p<0.05)和乳酸生成增加(25%,p<0.05)。这种效应与有氧糖酵解关键限速酶,即己糖激酶、丙酮酸激酶M2型和乳酸脱氢酶A的表达和活性增加有关。有趣的是,OA有效逆转了这种高盐介导增强的有氧糖酵解酶表达,同时癌细胞增殖减少。在癌细胞中,增强的有氧糖酵解与线粒体活性降低和线粒体相关的半胱天冬酶活性降低有关。正如预期的那样,高盐进一步抑制了线粒体相关的细胞色素氧化酶和半胱天冬酶-3活性。然而,OA有效逆转了高盐介导的细胞色素氧化酶抑制、半胱天冬酶活性和促凋亡蛋白Bax表达,从而表明OA诱导线粒体活性并增强细胞凋亡。综上所述,我们的数据表明,OA有效逆转了高盐介导的渗透压应激诱导的类似瓦伯格样代谢增强,同时表明OA在抗癌治疗中的潜在应用。