Bio-MAX/N-Bio, Seoul National University, Seoul 08826, Republic of Korea.
Department of Cancer Biology, Lerner Research Institute, Cleveland Clinic, Cleveland, OH 44195, USA.
Int J Mol Sci. 2023 Jan 30;24(3):2606. doi: 10.3390/ijms24032606.
Cancer cells undergo metabolic reprogramming and switch to a 'glycolysis-dominant' metabolic profile to promote their survival and meet their requirements for energy and macromolecules. This phenomenon, also known as the 'Warburg effect,' provides a survival advantage to the cancer cells and make the tumor environment more pro-cancerous. Additionally, the increased glycolytic dependence also promotes chemo/radio resistance. A similar switch to a glycolytic metabolic profile is also shown by the immune cells in the tumor microenvironment, inducing a competition between the cancer cells and the tumor-infiltrating cells over nutrients. Several recent studies have shown that targeting the enhanced glycolysis in cancer cells is a promising strategy to make them more susceptible to treatment with other conventional treatment modalities, including chemotherapy, radiotherapy, hormonal therapy, immunotherapy, and photodynamic therapy. Although several targeting strategies have been developed and several of them are in different stages of pre-clinical and clinical evaluation, there is still a lack of effective strategies to specifically target cancer cell glycolysis to improve treatment efficacy. Herein, we have reviewed our current understanding of the role of metabolic reprogramming in cancer cells and how targeting this phenomenon could be a potential strategy to improve the efficacy of conventional cancer therapy.
癌细胞经历代谢重编程,并切换到“糖酵解主导”的代谢特征,以促进其存活并满足其对能量和生物大分子的需求。这种现象也被称为“瓦堡效应”,为癌细胞提供了生存优势,并使肿瘤环境更有利于癌症。此外,增加的糖酵解依赖性也促进了化疗/放疗耐药性。肿瘤微环境中的免疫细胞也表现出类似的糖酵解代谢特征的转变,导致癌细胞与肿瘤浸润细胞之间对营养物质的竞争。最近的几项研究表明,针对癌细胞中增强的糖酵解是一种很有前途的策略,可以使它们更容易受到其他常规治疗方式的治疗,包括化疗、放疗、激素治疗、免疫治疗和光动力治疗。尽管已经开发出几种靶向策略,其中一些处于临床前和临床评估的不同阶段,但仍然缺乏针对癌细胞糖酵解的有效策略来提高治疗效果。在此,我们综述了我们目前对代谢重编程在癌细胞中的作用的理解,以及靶向这种现象如何成为提高常规癌症治疗效果的潜在策略。