Palmer Clovis S, Ostrowski Matias, Balderson Brad, Christian Nicole, Crowe Suzanne M
Centre for Biomedical Research, Burnet Institute , Melbourne, VIC , Australia.
Instituto de Investigaciones Biomédicas en Retrovirus y SIDA, Facultad de Medicina, Universidad de Buenos Aires , Buenos Aires , Argentina.
Front Immunol. 2015 Jan 22;6:1. doi: 10.3389/fimmu.2015.00001. eCollection 2015.
The adaptive immune system is equipped to eliminate both tumors and pathogenic microorganisms. It requires a series of complex and coordinated signals to drive the activation, proliferation, and differentiation of appropriate T cell subsets. It is now established that changes in cellular activation are coupled to profound changes in cellular metabolism. In addition, emerging evidence now suggest that specific metabolic alterations associated with distinct T cell subsets may be ancillary to their differentiation and influential in their immune functions. The "Warburg effect" originally used to describe a phenomenon in which most cancer cells relied on aerobic glycolysis for their growth is a key process that sustain T cell activation and differentiation. Here, we review how different aspects of metabolism in T cells influence their functions, focusing on the emerging role of key regulators of glucose metabolism such as HIF-1α. A thorough understanding of the role of metabolism in T cell function could provide insights into mechanisms involved in inflammatory-mediated conditions, with the potential for developing novel therapeutic approaches to treat these diseases.
适应性免疫系统具备消除肿瘤和致病微生物的能力。它需要一系列复杂且协调的信号来驱动合适的T细胞亚群的激活、增殖和分化。目前已经明确,细胞激活的变化与细胞代谢的深刻变化相关联。此外,新出现的证据表明,与不同T细胞亚群相关的特定代谢改变可能辅助其分化并影响其免疫功能。最初用于描述大多数癌细胞依靠有氧糖酵解进行生长这一现象的“瓦伯格效应”是维持T细胞激活和分化的关键过程。在此,我们综述T细胞代谢的不同方面如何影响其功能,重点关注葡萄糖代谢关键调节因子如低氧诱导因子-1α的新作用。深入了解代谢在T细胞功能中的作用可为炎症介导疾病所涉及的机制提供见解,有望开发出治疗这些疾病的新疗法。