4.7 Article

Regulation of AMPK-related glycolipid metabolism imbalances redox homeostasis and inhibits anchorage independent growth in human breast cancer cells

期刊

REDOX BIOLOGY
卷 17, 期 -, 页码 180-191

出版社

ELSEVIER
DOI: 10.1016/j.redox.2018.04.016

关键词

Redox homeostasis; Pentose phosphate pathway; Fatty acid oxidation; Anti-metastasis; GL-V9

资金

  1. National Natural Science Foundation of China [81503097, 81673461]
  2. National Science and Technology Major Project [2017ZX09301014, 2017ZX09101003-003-007]
  3. Program for Changjiang Scholars and Innovative Research Team in University [IRT1193]
  4. State Key Laboratory Cultivation Base for TCM Quality and Efficacy, Nanjing University of Chinese Medicine [TCMQE201704]
  5. Natural Science Foundation of Jiangsu Province [BK20151443]
  6. Outstanding Young teacher - Qing Lan Project in Jiangsu Province

向作者/读者索取更多资源

Breast cancer is one of the most lethal tumors in the world, among which 15% are triple-negative breast cancers (TNBCs) with higher metastasis and lower survival rate. Anoikis resistance is a key process during tumor metastasis, which is usually accompanied with metabolism reprogram. In this study, we established an anchorage independent growth model for MDA-MB-231 cells and investigated the changes in metabolism and redox homeostasis. Results showed that during detached-growth, MDA-MB-231 cells tend to generate ATP through fatty acid oxidation (FAO), instead of glycolysis. Amount of glucose was used for pentose phosphate pathway (PPP) to keep redox balance. Moreover, we discovered that a synthesized flavonoid derivative GL-V9, exhibited a potent inhibitory effect on the anchorage independent growth of TNBCs in vitro and anti-metastasis effect in vivo. In terms of the mechanism, GL-V9 could promote the expression and activity of AMPK, leading to the decrease of G6PD and the increase of p-ACC. Thus, the level of PPP was suppressed, whereas FAO was highly enhanced. The reprogram of glycolipid metabolism destroyed the redox balance ultimately and induced cell death. This paper indicated a novel regulating mechanism of redox homeostasis involving with glycolipid metabolism, and provided a potential candidate for the anti-metastatic therapy of TNBCs.

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