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阿霉素敏感和耐药艾氏腹水瘤细胞的能量代谢

Energy metabolism of adriamycin-sensitive and -resistant Ehrlich ascites tumor cells.

作者信息

Miccadei S, Fanciulli M, Bruno T, Paggi M G, Floridi A

机构信息

Laboratory for Cell Metabolism and Pharmacokinetics, Regina Elena Institute for Cancer Research, Rome, Italy.

出版信息

Oncol Res. 1996;8(1):27-35.

PMID:8704284
Abstract

Respiration, glycolysis, utilization of carbon from 14C-labeled glucose and the activities of some regulatory enzymes of the Krebs cycle and glycolysis in adriamycin-sensitive (EH-WT) and -resistant (EH-ADR) Ehrlich ascites tumor cells have been investigated. The following summarizes the results: 1. Compared with wild-type cells, EH-ADR cells exhibited an enhanced rate of oxygen consumption as well as of ATP production (2-fold). 2. When the cells were supplied with glucose as the only added energy source, the aerobic lactate production was 30% higher in EH-ADR cells. However, in spite of the enhanced glycolysis, 50% of total cell ATP was still supplied by oxidative phosphorylation, whereas in EH-WT cells 65% of ATP was derived from glycolysis. 3. The activities of the regulatory enzymes were remarkably more elevated in EH-ADR cells. 4. The amount of glucose carbon atoms metabolized through the Krebs cycle and pentose phosphate pathway in EH-ADR cells was significantly higher than in EH-WT cells. 5. These differences confirmed a modified energy metabolism in resistant cells and reflected metabolic adaptations associated with the development of multidrug resistance.

摘要

对阿霉素敏感(EH-WT)和耐药(EH-ADR)的艾氏腹水瘤细胞的呼吸作用、糖酵解、14C标记葡萄糖的碳利用以及三羧酸循环和糖酵解的一些调节酶的活性进行了研究。以下是研究结果总结:1. 与野生型细胞相比,EH-ADR细胞的耗氧率和ATP生成率均有所提高(提高了2倍)。2. 当细胞以葡萄糖作为唯一添加的能量来源时,EH-ADR细胞的有氧乳酸生成量高出30%。然而,尽管糖酵解增强,但细胞总ATP的50%仍由氧化磷酸化提供,而在EH-WT细胞中,65%的ATP来自糖酵解。3. EH-ADR细胞中调节酶的活性显著更高。4. EH-ADR细胞中通过三羧酸循环和磷酸戊糖途径代谢的葡萄糖碳原子数量明显高于EH-WT细胞。5. 这些差异证实了耐药细胞中能量代谢的改变,并反映了与多药耐药性发展相关的代谢适应。

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