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前列腺腺癌中的肿瘤代谢及其独特特性。

Tumour metabolism and its unique properties in prostate adenocarcinoma.

机构信息

Department of Molecular and Cellular Biology, Baylor College of Medicine, Houston, TX, USA.

Medical Scientist Training Program, Baylor College of Medicine, Houston, TX, USA.

出版信息

Nat Rev Urol. 2020 Apr;17(4):214-231. doi: 10.1038/s41585-020-0288-x. Epub 2020 Feb 28.

Abstract

Anabolic metabolism mediated by aberrant growth factor signalling fuels tumour growth and progression. The first biochemical descriptions of the altered metabolic nature of solid tumours were reported by Otto Warburg almost a century ago. Now, the study of tumour metabolism is being redefined by the development of new molecular tools, tumour modelling systems and precise instrumentation together with important advances in genetics, cell biology and spectroscopy. In contrast to Warburg's original hypothesis, accumulating evidence demonstrates a critical role for mitochondrial metabolism and substantial variation in the way in which different tumours metabolize nutrients to generate biomass. Furthermore, computational and experimental approaches suggest a dominant influence of the tissue-of-origin in shaping the metabolic reprogramming that enables tumour growth. For example, the unique metabolic properties of prostate adenocarcinoma are likely to stem from the distinct metabolism of the prostatic epithelium from which it emerges. Normal prostatic epithelium employs comparatively glycolytic metabolism to sustain physiological citrate secretion, whereas prostate adenocarcinoma consumes citrate to power oxidative phosphorylation and fuel lipogenesis, enabling tumour progression through metabolic reprogramming. Current data suggest that the distinct metabolic aberrations in prostate adenocarcinoma are driven by the androgen receptor, providing opportunities for functional metabolic imaging and novel therapeutic interventions that will be complementary to existing diagnostic and treatment options.

摘要

异常生长因子信号介导的合成代谢为肿瘤的生长和进展提供燃料。近一个世纪前,奥托·瓦伯格(Otto Warburg)首次对实体瘤代谢性质的改变进行了生化描述。现在,随着新的分子工具、肿瘤建模系统和精密仪器的发展,以及遗传学、细胞生物学和光谱学的重要进展,肿瘤代谢的研究正在重新定义。与瓦伯格最初的假设相反,越来越多的证据表明线粒体代谢起着关键作用,而且不同肿瘤利用营养物质生成生物量的方式存在着实质性的差异。此外,计算和实验方法表明,组织起源在塑造代谢重编程以促进肿瘤生长方面起着主导作用。例如,前列腺腺癌的独特代谢特性可能源于其起源的前列腺上皮的独特代谢。正常的前列腺上皮采用相对糖酵解代谢来维持生理柠檬酸分泌,而前列腺腺癌则消耗柠檬酸来进行氧化磷酸化并为脂肪生成提供动力,从而通过代谢重编程促进肿瘤进展。目前的数据表明,前列腺腺癌中的独特代谢异常是由雄激素受体驱动的,这为功能性代谢成像和新的治疗干预提供了机会,这些机会将与现有的诊断和治疗选择互补。

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