Valle-Mendiola Arturo, Soto-Cruz Isabel
Molecular Oncology Laboratory, Cell Differentiation and Cancer Research Unit, FES Zaragoza, National University of Mexico, Batalla 5 de mayo s/n Colonia Ejército de Oriente CP, Mexico City 09230, Mexico.
Cancers (Basel). 2020 Jan 3;12(1):124. doi: 10.3390/cancers12010124.
A central characteristic of many types of cancer is altered energy metabolism processes such as enhanced glucose uptake and glycolysis and decreased oxidative metabolism. The regulation of energy metabolism is an elaborate process involving regulatory proteins such as HIF (pro-metastatic protein), which reduces oxidative metabolism, and some other proteins such as tumour suppressors that promote oxidative phosphorylation. In recent years, it has been demonstrated that signal transducer and activator of transcription (STAT) proteins play a pivotal role in metabolism regulation. STAT3 and STAT5 are essential regulators of cytokine- or growth factor-induced cell survival and proliferation, as well as the crosstalk between STAT signalling and oxidative metabolism. Several reports suggest that the constitutive activation of STAT proteins promotes glycolysis through the transcriptional activation of hypoxia-inducible factors and therefore, the alteration of mitochondrial activity. It seems that STAT proteins function as an integrative centre for different growth and survival signals for energy and respiratory metabolism. This review summarises the functions of STAT3 and STAT5 in the regulation of some metabolism-related genes and the importance of oxygen in the tumour microenvironment to regulate cell metabolism, particularly in the metabolic pathways that are involved in energy production in cancer cells.
多种癌症的一个核心特征是能量代谢过程发生改变,例如葡萄糖摄取和糖酵解增强,而氧化代谢减弱。能量代谢的调节是一个复杂的过程,涉及诸如HIF(促转移蛋白)等调节蛋白,HIF会降低氧化代谢,还有其他一些蛋白,如促进氧化磷酸化的肿瘤抑制因子。近年来,已证明信号转导子和转录激活子(STAT)蛋白在代谢调节中起关键作用。STAT3和STAT5是细胞因子或生长因子诱导的细胞存活和增殖以及STAT信号与氧化代谢之间相互作用的重要调节因子。一些报告表明,STAT蛋白的组成型激活通过缺氧诱导因子的转录激活促进糖酵解,进而改变线粒体活性。STAT蛋白似乎作为能量和呼吸代谢的不同生长和存活信号的整合中心发挥作用。本综述总结了STAT3和STAT5在调节一些代谢相关基因中的功能,以及肿瘤微环境中的氧气在调节细胞代谢,特别是在癌细胞能量产生所涉及的代谢途径中的重要性。