CD81 通过阻断 CD274/PD-L1 的选择性自噬降解驱动放射抵抗性胶质母细胞瘤的免疫逃逸
CD81 drives immune evasion in radioresistant glioblastoma by blocking selective autophagic degradation of CD274/PD-L1.
CELL INTELLIGENCE · 肿瘤细胞治疗研究
肿瘤细胞治疗研究
英文原题:Immunotherapy reverses glioma-driven dysfunction of immune system homeostasis.
Immunotherapy reverses glioma-driven dysfunction of immune system homeostasis.
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胶质瘤诱导的造血系统免疫失调已在有限数量的研究中被描述。在本研究中,我们团队进一步证明胶质瘤干扰了骨髓中造血干细胞和祖细胞(HSPCs)的细胞分化编程和结局。来自荷胶质瘤小鼠的HSPCs被重编程并驱动向次级淋巴器官中髓系谱系前体和髓源性抑制细胞(MDSCs)的扩增。然而,我们发现这种扩增可被免疫治疗逆转。过继性细胞治疗(ACT)在多种中枢神经系统(CNS)恶性肿瘤的临床前模型中已证明有效,在此我们描述了胶质瘤诱导的功能障碍如何被这一免疫治疗平台逆转。
采用lineage-细胞的单细胞RNAseq(scRNAseq)以无偏倚方式评估原位KR158B-luc胶质瘤对HSPCs的影响,并通过流式细胞术进行表型分析。还使用流式细胞术评估成熟髓系细胞的频率和功能。最后,使用包含全身照射、肿瘤RNA脉冲树突状细胞、肿瘤反应性T细胞以及从荷胶质瘤或非荷瘤小鼠中分离的HSPCs的ACT,来评估细胞命运分化和存活。
使用scRNAseq,我们观察到在荷胶质瘤小鼠与无肿瘤小鼠中HSPC格局发生了改变。此外,相对于无肿瘤对照小鼠,在荷胶质瘤小鼠中观察到髓系谱系亚群扩增,包括粒细胞巨噬细胞前体(GMPs)和MDSCs。此外,与来自无肿瘤宿主的MDSCs相比,来自荷胶质瘤小鼠的MDSCs对肿瘤特异性T细胞表现出增强的抑制能力。有趣的是,ACT治疗克服了这些抑制特性。当在ACT背景下转移来自荷胶质瘤小鼠的HSPCs时,与使用无胶质瘤HSPCs进行ACT治疗的小鼠相比,我们在原位胶质瘤模型中观察到显著的生存获益和长期治愈。
Glioma-induced immune dysregulation of the hematopoietic system has been described in a limited number of studies. In this study, our group further demonstrates that gliomas interrupt the cellular differentiation programming and outcomes of hematopoietic stem and progenitor cells (HSPCs) in the bone marrow. HSPCs from glioma-bearing mice are reprogrammed and driven towards expansion of myeloid lineage precursors and myeloid-derived suppressor cells (MDSCs) in secondary lymphoid organs. However, we found this expansion is reversed by immunotherapy. Adoptive cellular therapy (ACT) has been demonstrably efficacious in multiple preclinical models of central nervous system (CNS) malignancies, and here we describe how glioma-induced dysfunction is reversed by this immunotherapeutic platform.
The impact of orthotopic KR158B-luc glioma on HSPCs was evaluated in an unbiased fashion using single cell RNAseq (scRNAseq) of lineage - cells and phenotypically using flow cytometry. Mature myeloid cell frequencies and function were also evaluated using flow cytometry. Finally, ACT containing total body irradiation, tumor RNA-pulsed dendritic cells, tumor-reactive T cells and HSPCs isolated from glioma-bearing or non-tumor-bearing mice were used to evaluate cell fate differentiation and survival.
Using scRNAseq, we observed an altered HSPC landscape in glioma-bearing versus non-tumor-bearing mice . In addition, an expansion of myeloid lineage subsets, including granulocyte macrophage precursors (GMPs) and MDSCs, were observed in glioma-bearing mice relative to non-tumor-bearing controls. Furthermore, MDSCs from glioma-bearing mice demonstrated increased suppressive capacity toward tumor-specific T cells as compared with MDSCs from non-tumor-bearing hosts. Interestingly, treatment with ACT overcame these suppressive properties. When HSPCs from glioma-bearing mice were transferred in the context of ACT, we observed significant survival benefit and long-term cures in orthotopic glioma models compared with mice treated with ACT using non-glioma-bearing HSPCs.
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