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重编程胶质母细胞瘤中的免疫抑制微环境:小胶质细胞-MDSC-Treg 轴及转化治疗策略

英文原题:Reprogramming the immunosuppressive microenvironment in glioblastoma: the microglia-MDSC-Treg axis and translational therapeutic strategies.

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Reprogramming the immunosuppressive microenvironment in glioblastoma: the microglia-MDSC-Treg axis and translational therapeutic strategies.

PubMed 2026/08/10(内容时间) Front Oncol Q2 · IF 3.4(JCR 2025)

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中文摘要

胶质母细胞瘤(GBM)尽管接受了最大程度的手术切除、放疗和替莫唑胺治疗,仍是最致命的原发性脑肿瘤之一。免疫检查点抑制剂在三项大型III期试验(CheckMate 143、498和548)中未能显示出持久获益,凸显了深刻且多层次的免疫抵抗。本叙述性综述综合了GBM免疫抑制性微环境,将小胶质细胞-髓源性抑制细胞(MDSC)-调节性T细胞(Treg)轴置于更广泛的免疫景观中,包括树突状细胞、NK 细胞、耗竭的CD8+ T细胞、中性粒细胞和B细胞。

我们区分了发育起源不同的驻留小胶质细胞与骨髓来源巨噬细胞,区分了单核细胞型(M-MDSC)与多形核型(PMN-MDSC)亚群,并探讨了放疗如何重塑免疫。

我们将免疫代谢讨论从吲哚胺2,3-双加氧酶(IDO)扩展至腺苷(CD39/CD73/A2A)、精氨酸、缺氧、乳酸和谷氨酰胺通路,并批判性分析了检查点阻断为何失败。

我们总结了新兴策略,包括靶向CSF1R、CCR2、CXCR2、CD47-SIRPα、STING、CD40、TGF-β和IL-1β,以及候选生物标志物如循环MDSC、CSF1、IL-1β、多重免疫荧光、空间转录组学和单细胞RNA测序,用于合理的患者选择。

我们将这些机制构建为一个单一的、自我强化的回路,整合了髓系驱动的免疫调节、代谢重编程和治疗诱导的免疫重塑。我们认为,未来的进展取决于以生物标志物为驱动的联合方案,这些方案重编程髓系细胞区室、解除代谢抑制并主动使肿瘤发炎,同时与放疗整合,并根据分子背景(IDH 和 MGMT 状态)进行定制。

展开英文摘要原文

Glioblastoma (GBM) remains one of the most lethal primary brain tumors despite maximal surgical resection, radiotherapy, and temozolomide. Immune checkpoint inhibitors have failed to demonstrate durable benefit in three large phase III trials (CheckMate 143, 498, and 548), underscoring profound, multilayered immune resistance.

This narrative review synthesizes the immunosuppressive GBM microenvironment, situating the microglia-myeloid-derived suppressor cell (MDSC)-regulatory T cell (Treg) axis within the broader immune landscape, including dendritic cells, natural killer cells, exhausted CD8 + T cells, neutrophils, and B cells.

We distinguish ontogenetically distinct resident microglia from bone marrow-derived macrophages, separate monocytic (M-MDSC) from polymorphonuclear (PMN-MDSC) subsets, and examine how radiotherapy reshapes immunity.

We extend the immunometabolic discussion beyond indoleamine 2,3-dioxygenase (IDO) to the adenosine (CD39/CD73/A2A), arginine, hypoxia, lactate, and glutamine pathways, and critically analyze why checkpoint blockade has failed.

We summarize emerging strategies, including CSF1R, CCR2, CXCR2, CD47-SIRPα, STING, CD40, TGF-β, and IL-1β targeting, together with candidate biomarkers such as circulating MDSCs, CSF1, IL-1β, multiplex immunofluorescence, spatial transcriptomics, and single-cell RNA sequencing, for rational patient selection.

We frame these mechanisms as a single, self-reinforcing circuit integrating myeloid-driven immune regulation, metabolic reprogramming, and treatment-induced immune remodeling.

We argue that future progress depends on biomarker-driven combinations that reprogram the myeloid compartment, relieve metabolic suppression, and actively inflame the tumor, integrated with radiotherapy and tailored to molecular context (IDH and MGMT status).

论文信息

作者
Aydın HA、Keskin E、Kalaycı M
单位
Department of Neurosurgery, Faculty of Medicine, Zonguldak Bülent Ecevit University, Zonguldak, Türkiye.Turkey
文献类型
综述
期刊
Frontiers in oncology2026
原文标识
PubMed 42639384 · DOI 10.3389/fonc.2026.1782775