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一种“奇特”的线粒体脂肪酸氧化:癌症代谢的“秘密”。

A "Weird" Mitochondrial Fatty Acid Oxidation as a Metabolic "Secret" of Cancer.

机构信息

Department of Molecular Imaging and Theranostics, National Institutes for Quantum Science and Technology (QST), Chiba 263-8555, Japan.

Faculty of Medicine, Trakia University, Stara Zagora 6000, Bulgaria.

出版信息

Oxid Med Cell Longev. 2022 Feb 8;2022:2339584. doi: 10.1155/2022/2339584. eCollection 2022.

Abstract

Cancer metabolism is an extensively studied field since the discovery of the Warburg effect about 100 years ago and continues to be increasingly intriguing and enigmatic so far. It has become clear that glycolysis is not the only abnormally activated metabolic pathway in the cancer cells, but the same is true for the fatty acid synthesis (FAS) and mevalonate pathway. In the last decade, a lot of data have been accumulated on the pronounced mitochondrial fatty acid oxidation (mFAO) in many types of cancer cells. In this article, we discuss how mFAO can escape normal regulation under certain conditions and be overactivated. Such abnormal activation of mitochondrial -oxidation can also be combined with mutations in certain enzymes of the Krebs cycle that are common in cancer. If overactivated -oxidation is combined with other common cancer conditions, such as dysfunctions in the electron transport complexes, and/or hypoxia, this may alter the redox state of the mitochondrial matrix. We propose the idea that the altered mitochondrial redox state and/or inhibited Krebs cycle at certain segments may link mitochondrial -oxidation to the citrate-malate shuttle instead to the Krebs cycle. We call this abnormal metabolic condition "-oxidation shuttle". It is unconventional mFAO, a separate metabolic pathway, unexplored so far as a source of energy, as well as a source of cataplerosis, leading to biomass accumulation, accelerated oxygen consumption, and ultimately a source of proliferation. It is inefficient as an energy source and must consume significantly more oxygen per mole of ATP produced when combined with acetyl-CoA consuming pathways, such as the FAS and mevalonate pathway.

摘要

癌症代谢是一个经过广泛研究的领域,自大约 100 年前发现沃伯格效应以来,它一直是一个令人着迷和神秘的领域。目前已经清楚的是,糖酵解并不是癌细胞中唯一异常激活的代谢途径,脂肪酸合成(FAS)和甲羟戊酸途径也是如此。在过去的十年中,大量的数据积累表明,许多类型的癌细胞中存在明显的线粒体脂肪酸氧化(mFAO)。在本文中,我们讨论了 mFAO 如何在某些条件下逃脱正常调节并过度激活。这种异常的线粒体氧化激活也可以与癌症中常见的某些克雷布斯循环酶的突变结合。如果过度激活的氧化与其他常见的癌症情况(如电子传递复合物的功能障碍和/或缺氧)相结合,这可能会改变线粒体基质的氧化还原状态。我们提出了这样一种观点,即改变的线粒体氧化还原状态和/或克雷布斯循环在某些片段的抑制可能会将线粒体氧化与柠檬酸-苹果酸穿梭系统而不是克雷布斯循环联系起来。我们将这种异常的代谢状态称为“氧化穿梭”。这是一种非常规的 mFAO,一种独立的代谢途径,迄今为止尚未作为能量来源进行探索,也未作为脱羧作用的来源进行探索,导致生物量积累、耗氧量增加,最终成为增殖的来源。作为能量来源效率低下,当与乙酰辅酶 A 消耗途径(如 FAS 和甲羟戊酸途径)结合时,它每产生一摩尔 ATP 必须消耗更多的氧气。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/7816/8847026/0f739cf6ddd3/OMCL2022-2339584.001.jpg

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