Department of Immunology, St. Jude Children's Research Hospital, Memphis, TN 38105, USA.
Integrated Biomedical Sciences Program, University of Tennessee Health Science Center, Memphis, TN 38163, USA.
Sci Immunol. 2018 Jul 6;3(25). doi: 10.1126/sciimmunol.aas9818.
The interaction between extrinsic factors and intrinsic signal strength governs thymocyte development, but the mechanisms linking them remain elusive. We report that mechanistic target of rapamycin complex 1 (mTORC1) couples microenvironmental cues with metabolic programs to orchestrate the reciprocal development of two fundamentally distinct T cell lineages, the αβ and γδ T cells. Developing thymocytes dynamically engage metabolic programs including glycolysis and oxidative phosphorylation, as well as mTORC1 signaling. Loss of RAPTOR-mediated mTORC1 activity impairs the development of αβ T cells but promotes γδ T cell generation, associated with disrupted metabolic remodeling of oxidative and glycolytic metabolism. Mechanistically, we identify mTORC1-dependent control of reactive oxygen species production as a key metabolic signal in mediating αβ and γδ T cell development, and perturbation of redox homeostasis impinges upon thymocyte fate decisions and mTORC1-associated phenotypes. Furthermore, single-cell RNA sequencing and genetic dissection reveal that mTORC1 links developmental signals from T cell receptors and NOTCH to coordinate metabolic activity and signal strength. Our results establish mTORC1-driven metabolic signaling as a decisive factor for reciprocal αβ and γδ T cell development and provide insight into metabolic control of cell signaling and fate decisions.
外在因素和内在信号强度的相互作用控制着胸腺细胞的发育,但它们之间的联系机制仍不清楚。我们报告说,雷帕霉素复合物 1(mTORC1)将微环境线索与代谢程序联系起来,协调两种截然不同的 T 细胞谱系(αβ 和 γδ T 细胞)的相互发育。发育中的胸腺细胞动态地参与包括糖酵解和氧化磷酸化在内的代谢程序,以及 mTORC1 信号。RAPTOR 介导的 mTORC1 活性的丧失会损害 αβ T 细胞的发育,但会促进 γδ T 细胞的产生,这与氧化和糖酵解代谢的代谢重塑中断有关。从机制上讲,我们确定了 mTORC1 依赖的活性氧产生控制作为介导 αβ 和 γδ T 细胞发育的关键代谢信号,并且氧化还原平衡的破坏会影响胸腺细胞命运决定和 mTORC1 相关表型。此外,单细胞 RNA 测序和遗传剖析揭示 mTORC1 将来自 T 细胞受体和 NOTCH 的发育信号联系起来,以协调代谢活性和信号强度。我们的研究结果确立了 mTORC1 驱动的代谢信号作为相互的 αβ 和 γδ T 细胞发育的决定性因素,并深入了解了代谢对细胞信号和命运决定的控制。