Ni Rui, Li Ziwei, Li Li, Peng Dan, Ming Yue, Li Lin, Liu Yao
Department of pharmacy, Daping Hospital, Army Medical University, Chongqing, China.
Department of pharmacy, Women and Children's Hospital of Chongqing Medical University, Chongqing Health Center for Women and Children, Chongqing, China.
Front Oncol. 2023 Mar 7;13:1143798. doi: 10.3389/fonc.2023.1143798. eCollection 2023.
Glutamine, the most abundant non-essential amino acid in human blood, is crucial for cancer cell growth and cancer progression. Glutamine mainly functions as a carbon and nitrogen source for biosynthesis, energy metabolism, and redox homeostasis maintenance in cancer cells. Dysregulated glutamine metabolism is a notable metabolic characteristic of cancer cells. Some carcinogen-driven cancers exhibit a marked dependence on glutamine, also known as glutamine addiction, which has rendered the glutamine metabolic pathway a breakpoint in cancer therapeutics. However, some cancer cells can adapt to the glutamine unavailability by reprogramming metabolism, thus limiting the success of this therapeutic approach. Given the complexity of metabolic networks and the limited impact of inhibiting glutamine metabolism alone, the combination of glutamine metabolism inhibition and other therapeutic methods may outperform corresponding monotherapies in the treatment of cancers. This review summarizes the uptake, transport, and metabolic characteristics of glutamine, as well as the regulation of glutamine dependence by some important oncogenes in various cancers to emphasize the therapeutic potential of targeting glutamine metabolism. Furthermore, we discuss a glutamine metabolic pathway, the glutaminase II pathway, that has been substantially overlooked. Finally, we discuss the applicability of polytherapeutic strategies targeting glutamine metabolism to provide a new perspective on cancer therapeutics.
谷氨酰胺是人体血液中最丰富的非必需氨基酸,对癌细胞的生长和癌症进展至关重要。谷氨酰胺主要作为癌细胞生物合成、能量代谢和氧化还原稳态维持的碳源和氮源发挥作用。谷氨酰胺代谢失调是癌细胞显著的代谢特征。一些致癌物驱动的癌症对谷氨酰胺表现出明显的依赖性,即所谓的谷氨酰胺成瘾,这使得谷氨酰胺代谢途径成为癌症治疗的一个突破口。然而,一些癌细胞可以通过重新编程代谢来适应谷氨酰胺的缺乏,从而限制了这种治疗方法的成效。鉴于代谢网络的复杂性以及单独抑制谷氨酰胺代谢的有限影响,在癌症治疗中,抑制谷氨酰胺代谢与其他治疗方法的联合应用可能比相应的单一疗法更有效。本综述总结了谷氨酰胺的摄取、转运和代谢特征,以及各种癌症中一些重要癌基因对谷氨酰胺依赖性的调控,以强调靶向谷氨酰胺代谢的治疗潜力。此外,我们讨论了一条基本上被忽视的谷氨酰胺代谢途径,即谷氨酰胺酶II途径。最后,我们讨论了靶向谷氨酰胺代谢的多疗法策略的适用性,为癌症治疗提供新的视角。