免疫检查点阻断通过扩增效应 CD8⁺ T 细胞克隆增强淋巴细胞清除性化疗诱导的抗肿瘤免疫
Immune Checkpoint Blockade Augments Lymphodepleting Chemotherapy-Induced Antitumor Immunity by Expanding Effector CD8+ T-cell Clones.
CELL INTELLIGENCE · 肿瘤细胞治疗研究
肿瘤细胞治疗研究
英文原题:OXPHOS promotes apoptotic resistance and cellular persistence in T(H)17 cells in the periphery and tumor microenvironment.
OXPHOS promotes apoptotic resistance and cellular persistence in T(H)17 cells in the periphery and tumor microenvironment.
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T细胞增殖和细胞因子产生在生物能量和生物合成方面代价高昂。无法满足这些代谢需求会导致分化改变,并伴随效应功能受损和免疫反应衰减。产生白细胞介素-17的CD4 T细胞(T H 17s)在过继性T细胞治疗背景下是宿主防御、自身免疫和抗肿瘤免疫的介质。T H 17s是长寿细胞,在体内效应功能需要线粒体氧化磷酸化(OXPHOS)。考虑到在标准化培养条件下极化的T H 17s主要依赖糖酵解,关于OXPHOS如何调控T H 17过程(例如其持续存在从而促成长期免疫反应的能力)知之甚少。
在此,我们修改了标准化培养基,并确定了一种能够可靠诱导T H 17s依赖OXPHOS的培养体系。我们发现,在OXPHOS条件下培养的T H 17s在代谢上与其体内对应细胞相似,而糖酵解培养的则不同。OXPHOS T H 17s表现出线粒体适应性增强、谷氨酰胺回补增加,以及以高BCL-XL和低BIM为标志的抗凋亡表型。由线粒体融合调节因子OPA-1介导的有限线粒体自噬对OXPHOS T H 17s的抗凋亡性至关重要。相比之下,糖酵解T H 17s表现出更多线粒体自噬以及BCL-XL与BIM的失衡,从而使其易于凋亡。
此外,通过过继转移实验,我们在小鼠黑色素瘤模型中证明,OXPHOS保护T H 17s免于凋亡,同时增强其在外周和肿瘤微环境中的持续存在。
总之,我们的工作证明了代谢如何调控T H 17细胞命运,并突出了在T H 17驱动疾病中靶向OXPHOS的治疗潜力。
T cell proliferation and cytokine production are bioenergetically and biosynthetically costly. The inability to meet these metabolic demands results in altered differentiation, accompanied by impaired effector function, and attrition of the immune response. Interleukin-17-producing CD4 T cells (T H 17s) are mediators of host defense, autoimmunity, and antitumor immunity in the setting of adoptive T cell therapy.
T H 17s are long-lived cells that require mitochondrial oxidative phosphorylation (OXPHOS) for effector function in vivo. Considering that T H 17s polarized under standardized culture conditions are predominately glycolytic, little is known about how OXPHOS regulates T H 17 processes, such as their ability to persist and thus contribute to protracted immune responses.
Here, we modified standardized culture medium and identified a culture system that reliably induces OXPHOS dependence in T H 17s.
We found that T H 17s cultured under OXPHOS conditions metabolically resembled their in vivo counterparts, whereas glycolytic cultures were dissimilar. OXPHOS T H 17s exhibited increased mitochondrial fitness, glutamine anaplerosis, and an antiapoptotic phenotype marked by high BCL-XL and low BIM. Limited mitophagy, mediated by mitochondrial fusion regulator OPA-1, was critical to apoptotic resistance in OXPHOS T H 17s. By contrast, glycolytic T H 17s exhibited more mitophagy and an imbalance in BCL-XL to BIM, thereby priming them for apoptosis.
In addition, through adoptive transfer experiments, we demonstrated that OXPHOS protected T H 17s from apoptosis while enhancing their persistence in the periphery and tumor microenvironment in a murine model of melanoma.
Together, our work demonstrates how metabolism regulates T H 17 cell fate and highlights the potential for therapies that target OXPHOS in T H 17-driven diseases.
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