PO.IM02.02 · 免疫学

Quaking调控巨噬细胞MHC II介导的抗原呈递及胶质母细胞瘤中的免疫功能

Quaking regulates macrophage MHC II-mediated antigen presentation and immune function in glioblastoma

海报缩略图:Quaking调控巨噬细胞MHC II介导的抗原呈递及胶质母细胞瘤中的免疫功能
编号 1602 展板 23 时间 4/20 09:00–12:00 区域 Section 9 主讲 Spring Hwang, BS
分会场 Innate Immunity in Cancer
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作者与单位 Authors & Affiliations

Spring Yewon Hwang

Cancer Biology, MD Anderson, Houston, TX

摘要 Abstract

中文摘要
胶质母细胞瘤(GBM)仍是最致命的脑肿瘤之一,部分原因在于肿瘤相关巨噬细胞(TAMs)驱动的深度免疫抑制。GBM微环境中的一个核心缺陷是巨噬细胞无法执行有效的MHC II类(MHC II)介导的抗原呈递,而该过程对于启动抗肿瘤CD4⁺T细胞应答至关重要。我们发现RNA结合蛋白Quaking(Qki)——在GBM中常发生缺失或突变——是巨噬细胞抗原加工与呈递的关键调控因子。 在多个人类GBM数据集和QPP(Qki-/-;Trp53-/-;Pten-/-)胶质瘤模型中,Qki表达与MHC II及其主调控因子CIITA呈正相关。使用骨髓来源巨噬细胞,我们发现Qki缺陷并不损害IFNgamma驱动的MHC II转录本诱导。然而,在OT-II共培养实验中,Qki敲除(KO)巨噬细胞无法有效激活CD4⁺T细胞,提示存在转录下游的缺陷。在功能上,吞噬和DQ-OVA实验显示,Qki KO巨噬细胞表现出吞噬和蛋白水解活性降低,提示Qki介导抗原加工与呈递的多个步骤。 为界定Qki依赖性程序,我们对野生型和Qki-KO巨噬细胞进行了RNA测序。Qki缺失导致涉及细胞外基质相互作用、黏着斑信号传导和蛋白摄取的通路协同下调。通过qPCR,我们证实包括Cav1和Thbs1在内的关键调控因子表达降低,表明Qki编排了实现细胞骨架动力学、囊泡运输以及MHC II功能所需抗原加工的转录后程序。 为探索治疗潜力,我们测试了Qki共激活因子激动剂KD3010,其在体外增强了MHC II表达和CD4⁺T细胞激活,并改善了QPP小鼠的生存。蛋白质组学分析将骨桥蛋白(OPN)——一种在GBM中升高的蛋白——鉴定为抑制Qki的肿瘤来源因子。在体外,OPN处理降低了巨噬细胞中的Qki表达,提示其作为一种免疫抑制机制发挥作用。 综上,我们的发现将Qki鉴定为巨噬细胞抗原加工和MHC II功能的核心调控因子,并揭示了一条破坏该轴的GBM驱动通路。恢复Qki代表了在胶质母细胞瘤中重新唤醒巨噬细胞免疫的一种有前景的策略。
查看英文原文 English abstract
Glioblastoma (GBM) remains one of the most lethal brain tumors, in part due to profound immunosuppression driven by tumor-associated macrophages (TAMs). A central deficit within the GBM microenvironment is the failure of macrophages to execute effective MHC class II (MHC II)-mediated antigen presentation, a process essential for priming anti-tumor CD4⁺ T cell responses. We identified the RNA-binding protein Quaking (Qki), frequently lost or mutated in GBM, as a critical regulator of macrophage antigen processing and presentation. Across human GBM datasets and the QPP (Qki-/-; Trp53-/-; Pten-/-) glioma model, Qki expression positively correlates with MHC II and its master regulator CIITA. Using bone marrow-derived macrophages, we found that Qki deficiency does not impair IFNgamma-driven induction of MHC II transcripts. However, Qki knockout (KO) macrophages were unable to effectively activate CD4⁺ T cells in OT-II co-culture assays, indicating a defect downstream of transcription. Functionally, phagocytosis and DQ-OVA assays revealed that Qki KO macrophages display reduced phagocytosis and proteolytic activity, suggesting that Qki mediates multiple steps of antigen processing and presentation. To define Qki-dependent programs, we performed RNA sequencing in wild-type and Qki-KO macrophages. Qki loss led to coordinated downregulation of pathways involved in extracellular matrix interactions, focal adhesion signaling, and protein uptake. Using qPCR, we confirmed decreased expression of key regulators, including Cav1 and Thbs1, demonstrating that Qki orchestrates post-transcriptional programs that enable cytoskeletal dynamics, vesicle trafficking, and antigen processing required for MHC II function. To explore therapeutic potential, we tested the Qki co-activator agonist KD3010, which enhanced MHC II expression and CD4⁺ T cell activation in vitro, and improved survival in QPP mice. Proteomic analysis identified osteopontin (OPN), a protein elevated in GBM, as a tumor-derived factor suppressing Qki. In vitro, OPN treatment reduced Qki expression in macrophages, suggesting that it acts as a mechanism of immune suppression. In conclusion, our findings identify Qki as a central regulator of macrophage antigen processing and MHC II functionality and uncover a GBM-driven pathway that disrupts this axis. Restoring Qki represents a promising strategy to reawaken macrophage immunity in glioblastoma.
利益披露 Disclosure
S. Y. Hwang, None.

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