Laboratory of Metabolic Regulation and Genetics, The Rockefeller University, New York, NY, USA.
Laboratory of Lymphocyte Dynamics, The Rockefeller University, New York, NY, USA.
Nature. 2024 Sep;633(8029):451-458. doi: 10.1038/s41586-024-07787-1. Epub 2024 Aug 7.
Cancer cells frequently alter their lipids to grow and adapt to their environment. Despite the critical functions of lipid metabolism in membrane physiology, signalling and energy production, how specific lipids contribute to tumorigenesis remains incompletely understood. Here, using functional genomics and lipidomic approaches, we identified de novo sphingolipid synthesis as an essential pathway for cancer immune evasion. Synthesis of sphingolipids is surprisingly dispensable for cancer cell proliferation in culture or in immunodeficient mice but required for tumour growth in multiple syngeneic models. Blocking sphingolipid production in cancer cells enhances the anti-proliferative effects of natural killer and CD8 T cells partly via interferon-γ (IFNγ) signalling. Mechanistically, depletion of glycosphingolipids increases surface levels of IFNγ receptor subunit 1 (IFNGR1), which mediates IFNγ-induced growth arrest and pro-inflammatory signalling. Finally, pharmacological inhibition of glycosphingolipid synthesis synergizes with checkpoint blockade therapy to enhance anti-tumour immune response. Altogether, our work identifies glycosphingolipids as necessary and limiting metabolites for cancer immune evasion.
癌细胞经常改变其脂质以生长和适应其环境。尽管脂质代谢在膜生理学、信号转导和能量产生中具有关键功能,但特定脂质如何促进肿瘤发生仍不完全清楚。在这里,我们使用功能基因组学和脂质组学方法,确定从头合成鞘脂是癌症免疫逃逸的必需途径。出乎意料的是,鞘脂的合成对于培养中的癌细胞增殖或免疫缺陷小鼠中的肿瘤生长不是必需的,但对于多种同基因模型中的肿瘤生长是必需的。在癌细胞中阻断鞘脂的产生会增强自然杀伤细胞和 CD8 T 细胞的抗增殖作用,部分是通过干扰素-γ(IFNγ)信号。在机制上,糖脂的耗竭会增加 IFNγ 受体亚基 1(IFNGR1)的表面水平,IFNGR1 介导 IFNγ 诱导的生长停滞和促炎信号。最后,糖脂合成的药理学抑制与检查点阻断治疗协同作用,以增强抗肿瘤免疫反应。总之,我们的工作确定了糖脂是癌症免疫逃逸所必需的和有限的代谢物。
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