Zhou Zhengqiu, Ibekwe Elochukwu, Chornenkyy Yevgen
College of Medicine, University of Kentucky, 800 Rose St., Lexington, KY 40506, USA.
Department of Molecular and Cellular Biochemistry, University of Kentucky, Lexington, KY 40536, USA.
Antioxidants (Basel). 2018 Jan 17;7(1):16. doi: 10.3390/antiox7010016.
The mitochondrion is an important organelle and provides energy for a plethora of intracellular reactions. Metabolic dysregulation has dire consequences for the cell, and alteration in metabolism has been identified in multiple disease states-cancer being one. Otto Warburg demonstrated that cancer cells, in the presence of oxygen, undergo glycolysis by reprogramming their metabolism-termed "aerobic glycolysis". Alterations in metabolism enable cancer cells to gain a growth advantage by obtaining precursors for macromolecule biosynthesis, such as nucleic acids and lipids. To date, several molecules, termed "oncometabolites", have been identified to be elevated in cancer cells and arise from mutations in nuclear encoded mitochondrial enzymes. Furthermore, there is evidence that oncometabolites can affect mitochondrial dynamics. It is believed that oncometabolites can assist in reprogramming enzymatic pathways and providing cancer cells with selective advantages. In this review, we will touch upon the effects of normal and aberrant mitochondrial metabolism in normal and cancer cells, the advantages of metabolic reprogramming, effects of oncometabolites on metabolism and mitochondrial dynamics and therapies aimed at targeting oncometabolites and metabolic aberrations.
线粒体是一种重要的细胞器,为大量细胞内反应提供能量。代谢失调对细胞有严重后果,并且在多种疾病状态中都已发现代谢改变,癌症就是其中之一。奥托·瓦尔堡证明,癌细胞在有氧情况下,通过重新编程其代谢进行糖酵解,即所谓的“有氧糖酵解”。代谢改变使癌细胞能够通过获取大分子生物合成的前体物质(如核酸和脂质)来获得生长优势。迄今为止,已鉴定出几种被称为“致癌代谢物”的分子在癌细胞中升高,并且这些分子源于核编码线粒体酶的突变。此外,有证据表明致癌代谢物可影响线粒体动力学。人们认为致癌代谢物可协助重新编程酶促途径并为癌细胞提供选择性优势。在本综述中,我们将探讨正常和异常线粒体代谢在正常细胞和癌细胞中的作用、代谢重编程的优势、致癌代谢物对代谢和线粒体动力学的影响以及针对致癌代谢物和代谢异常的治疗方法。