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Regulation of cancer cell metabolism by hypoxia-inducible factor 1.缺氧诱导因子1对癌细胞代谢的调控
Semin Cancer Biol. 2009 Feb;19(1):12-6. doi: 10.1016/j.semcancer.2008.11.009. Epub 2008 Dec 9.
2
The warburg effect in leukemia-stroma cocultures is mediated by mitochondrial uncoupling associated with uncoupling protein 2 activation.白血病-基质共培养中的瓦伯格效应由与解偶联蛋白2激活相关的线粒体解偶联介导。
Cancer Res. 2008 Jul 1;68(13):5198-205. doi: 10.1158/0008-5472.CAN-08-0555.
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Tumor cell metabolism: cancer's Achilles' heel.肿瘤细胞代谢:癌症的致命弱点。
Cancer Cell. 2008 Jun;13(6):472-82. doi: 10.1016/j.ccr.2008.05.005.
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ROS-generating mitochondrial DNA mutations can regulate tumor cell metastasis.产生活性氧的线粒体DNA突变可调节肿瘤细胞转移。
Science. 2008 May 2;320(5876):661-4. doi: 10.1126/science.1156906. Epub 2008 Apr 3.
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The biology of cancer: metabolic reprogramming fuels cell growth and proliferation.癌症生物学:代谢重编程推动细胞生长和增殖。
Cell Metab. 2008 Jan;7(1):11-20. doi: 10.1016/j.cmet.2007.10.002.
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Loss of the mitochondrial bioenergetic capacity underlies the glucose avidity of carcinomas.线粒体生物能量能力的丧失是癌症葡萄糖嗜性的基础。
Cancer Res. 2007 Oct 1;67(19):9013-7. doi: 10.1158/0008-5472.CAN-07-1678.
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p53 regulates mitochondrial respiration.p53调节线粒体呼吸。
Science. 2006 Jun 16;312(5780):1650-3. doi: 10.1126/science.1126863. Epub 2006 May 25.
8
AMPK and cell proliferation--AMPK as a therapeutic target for atherosclerosis and cancer.AMPK与细胞增殖——作为动脉粥样硬化和癌症治疗靶点的AMPK
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A mitochondrial paradigm of metabolic and degenerative diseases, aging, and cancer: a dawn for evolutionary medicine.代谢性疾病、退行性疾病、衰老及癌症的线粒体范式:进化医学的曙光。
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AMP-activated protein kinase: ancient energy gauge provides clues to modern understanding of metabolism.AMP激活的蛋白激酶:古老的能量计量器为现代新陈代谢理解提供线索
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寡霉素诱导具有异质性生物能量组织的癌细胞中的生物能量适应。

Oligomycin-induced bioenergetic adaptation in cancer cells with heterogeneous bioenergetic organization.

机构信息

Department of Oncology, Wyeth Research, Pearl River, New York 10965, USA.

出版信息

J Biol Chem. 2010 Apr 23;285(17):12647-54. doi: 10.1074/jbc.M109.084194. Epub 2010 Jan 28.

DOI:10.1074/jbc.M109.084194
PMID:20110356
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC2857128/
Abstract

Cancer cells constantly adapt to oxidative phosphorylation (OXPHOS) suppression resulting from hypoxia or mitochondria defects. Under the OXPHOS suppression, AMP-activated protein kinase (AMPK) regulates global metabolism adjustments, but its activation has been found to be transient. Whether cells can maintain cellular ATP homeostasis and survive beyond the transient AMPK activation is not known. Here, we study the bioenergetic adaptation to the OXPHOS inhibitor oligomycin in a group of cancer cells. We found that oligomycin at 100 ng/ml completely inhibits OXPHOS activity in 1 h and induces various levels of glycolysis gains by 6 h, from which we calculate the bioenergetic organizations of cancer cells. In glycolysis-dominant cells, oligomycin does not induce much energy stress as measured by glycolysis acceleration, ATP imbalance, AMPK activation, AMPK substrate acetyl-CoA carboxylase phosphorylation at Ser(79), and cell growth inhibition. In OXPHOS-dependent LKB1 wild type cells, oligomycin induces 5-8% ATP drops and transient AMPK activation during the initial 1-2 h. After AMPK activation is completed, oligomycin-induced increase of acetyl-CoA carboxylase phosphorylation at Ser(79) is still detected, and cellular ATP is back at preoligomycin treatment levels by sustained elevation of glycolysis. Cell growth, however, is inhibited without an increase in cell death and alteration in cell cycle distribution. In OXPHOS-dependent LKB1-null cells, no AMPK activation by oligomycin is detected, yet cells still show a similar adaptation. We also demonstrate that the adaptation to oligomycin does not invoke activation of hypoxia-induced factor. Our data suggest that cancer cells may grow and survive persistent OXPHOS suppression through an as yet unidentified regulatory mechanism.

摘要

癌细胞不断适应由于缺氧或线粒体缺陷导致的氧化磷酸化(OXPHOS)抑制。在 OXPHOS 抑制下,AMP 激活的蛋白激酶(AMPK)调节全局代谢的调整,但已发现其激活是短暂的。在短暂的 AMPK 激活之外,细胞是否能够维持细胞内 ATP 稳态并存活尚不清楚。在这里,我们研究了一组癌细胞对 OXPHOS 抑制剂寡霉素的生物能适应。我们发现,100ng/ml 的寡霉素在 1 小时内完全抑制 OXPHOS 活性,并在 6 小时内诱导不同程度的糖酵解增益,从中我们计算出癌细胞的生物能组织。在糖酵解主导的细胞中,寡霉素不会像通过糖酵解加速、ATP 失衡、AMPK 激活、AMPK 底物乙酰辅酶 A 羧化酶磷酸化 Ser(79)和细胞生长抑制所测量的那样,引起太多的能量应激。在 OXPHOS 依赖的 LKB1 野生型细胞中,寡霉素在最初的 1-2 小时内诱导 5-8%的 ATP 下降和短暂的 AMPK 激活。在 AMPK 激活完成后,仍检测到寡霉素诱导的乙酰辅酶 A 羧化酶磷酸化 Ser(79)增加,并且通过持续升高的糖酵解使细胞内 ATP 恢复到寡霉素处理前的水平。然而,细胞生长受到抑制,而没有细胞死亡增加和细胞周期分布改变。在 OXPHOS 依赖的 LKB1 缺失细胞中,没有检测到寡霉素引起的 AMPK 激活,但细胞仍然表现出类似的适应。我们还证明,对寡霉素的适应不调用缺氧诱导因子的激活。我们的数据表明,癌细胞可能通过一种尚未确定的调节机制在持续的 OXPHOS 抑制下生长和存活。