Shen Yao-An, Wang Chia-Yu, Hsieh Yi-Tao, Chen Yann-Jang, Wei Yau-Huei
a Institute of Biochemistry and Molecular Biology ; Taipei , Taiwan.
Cell Cycle. 2015;14(1):86-98. doi: 10.4161/15384101.2014.974419.
Cancer stem cells (CSCs) represent a subpopulation of tumor cells endowed with self-renewal capacity and are considered as an underlying cause of tumor recurrence and metastasis. The metabolic signatures of CSCs and the mechanisms involved in the regulation of their stem cell-like properties still remain elusive. We utilized nasopharyngeal carcinoma (NPC) CSCs as a model to dissect their metabolic signatures and found that CSCs underwent metabolic shift and mitochondrial resetting distinguished from their differentiated counterparts. In metabolic shift, CSCs showed a greater reliance on glycolysis for energy supply compared with the parental cells. In mitochondrial resetting, the quantity and function of mitochondria of CSCs were modulated by the biogenesis of the organelles, and the round-shaped mitochondria were distributed in a peri-nuclear manner similar to those seen in the stem cells. In addition, we blocked the glycolytic pathway, increased the ROS levels, and depolarized mitochondrial membranes of CSCs, respectively, and examined the effects of these metabolic factors on CSC properties. Intriguingly, the properties of CSCs were curbed when we redirected the quintessential metabolic reprogramming, which indicates that the plasticity of energy metabolism regulated the balance between acquisition and loss of the stemness status. Taken together, we suggest that metabolic reprogramming is critical for CSCs to sustain self-renewal, deter from differentiation and enhance the antioxidant defense mechanism. Characterization of metabolic reprogramming governing CSC properties is paramount to the design of novel therapeutic strategies through metabolic intervention of CSCs.
癌症干细胞(CSCs)是具有自我更新能力的肿瘤细胞亚群,被认为是肿瘤复发和转移的潜在原因。CSCs的代谢特征及其干细胞样特性调控所涉及的机制仍不清楚。我们以鼻咽癌(NPC)CSCs为模型来剖析其代谢特征,发现CSCs发生了代谢转变和线粒体重置,这与它们分化后的对应细胞不同。在代谢转变方面,与亲代细胞相比,CSCs在能量供应上对糖酵解的依赖更大。在线粒体重置方面,CSCs线粒体的数量和功能通过细胞器的生物发生进行调节,圆形线粒体以类似于干细胞中的方式分布在核周。此外,我们分别阻断糖酵解途径、提高活性氧水平以及使CSCs的线粒体膜去极化,并研究这些代谢因素对CSC特性的影响。有趣的是,当我们改变典型的代谢重编程时,CSCs的特性受到抑制,这表明能量代谢的可塑性调节了干性状态的获得与丧失之间的平衡。综上所述,我们认为代谢重编程对于CSCs维持自我更新、阻止分化以及增强抗氧化防御机制至关重要。表征调控CSC特性的代谢重编程对于通过CSCs的代谢干预设计新的治疗策略至关重要。