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果糖与前列腺癌:癌症细胞代谢的综合观点

Fructose and prostate cancer: toward an integrated view of cancer cell metabolism.

机构信息

Department of Physiology, Pontificia Universidad Católica de Chile, Santiago, Chile.

Department of Nuclear Medicine, Clínica Las Condes, Santiago, Chile.

出版信息

Prostate Cancer Prostatic Dis. 2019 Mar;22(1):49-58. doi: 10.1038/s41391-018-0072-7. Epub 2018 Aug 13.

Abstract

Activation of glucose transporter-1 (Glut-1) gene expression is a molecular feature of cancer cells that increases glucose uptake and metabolism. Increased glucose uptake is the basis for the clinical localization of primary tumors using positron emission tomography (PET) and 2-deoxy-2-[18F]-fluoro-D-glucose (FDG) as a radiotracer. However, previous studies have demonstrated that a considerable number of cancers, which include prostate cancer (CaP), express low to undetectable levels of Glut-1 and that FDG-PET has limited clinical applicability in CaP. This observation could be explained by a low metabolic activity of CaP cells that may be overcome using different hexoses, such as fructose, as the preferred energy source. However, these hypotheses have not been examined critically in CaP. This review article summarizes what is currently known about transport and metabolism of hexoses, and more specifically fructose, in CaP and provides experimental evidences indicating that CaP cells may have increased capacity to transport and metabolize fructose in vitro and in vivo. Moreover, this review highlights recent findings that allow better understanding of how metabolism of fructose may regulate cancer cell proliferation and how fructose uptake and metabolism, through the de novo lipogenesis pathway, may provide new opportunities for CaP early diagnosis, staging, and treatment.

摘要

葡萄糖转运蛋白-1(Glut-1)基因表达的激活是癌细胞的一个分子特征,它增加了葡萄糖的摄取和代谢。增加葡萄糖摄取是使用正电子发射断层扫描(PET)和 2-脱氧-2-[18F]-氟-D-葡萄糖(FDG)作为示踪剂对原发性肿瘤进行临床定位的基础。然而,先前的研究表明,相当数量的癌症,包括前列腺癌(CaP),表达低水平或无法检测到的 Glut-1,并且 FDG-PET 在 CaP 中的临床应用有限。这一观察结果可以用 CaP 细胞的低代谢活性来解释,这种活性可以通过使用不同的己糖(如果糖)作为首选能源来克服。然而,这些假设在 CaP 中并没有得到严格的检验。本文综述了目前已知的 CaP 中己糖,特别是果糖的转运和代谢情况,并提供了实验证据表明,CaP 细胞在体外和体内可能具有增强的果糖转运和代谢能力。此外,本文还强调了最近的发现,这些发现使人们更好地理解了果糖代谢如何调节癌细胞的增殖,以及果糖摄取和代谢如何通过从头合成途径为 CaP 的早期诊断、分期和治疗提供新的机会。

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