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:Molecular heterogeneity of Glioblastoma-associated microglia and macrophages and myeloid-derived suppressor cells: Insights from single-cell omics and therapeutic implications.
Molecular heterogeneity of Glioblastoma-associated microglia and macrophages and myeloid-derived suppressor cells: Insights from single-cell omics and therapeutic implications.
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胶质母细胞瘤(GBM)的特点是高度免疫抑制的微环境,其中富含髓系细胞。受基因组技术局限影响,过去通常将这些髓系细胞,特别是GBM相关小胶质细胞/巨噬细胞(GAM)和髓源性抑制细胞(MDSC),视为促肿瘤细胞。
然而,单细胞和空间组学的进步革新了对GBM免疫图谱的认识,揭示髓系细胞区室内部存在广泛异质性。利用小鼠模型和患者来源样本的研究表明,GAM和MDSC处于多种活化状态构成的连续谱中,既可能促进肿瘤,也可能抑制肿瘤。这些发现挑战了传统观点,凸显髓系细胞功能具有动态性并依赖具体情境。本综述总结了基于人GBM患者样本开展的单细胞和空间组学研究重要发现,包括新髓系细胞亚群、免疫调节程序及肿瘤生态位特异髓系亚群的发现;这些发现已重塑对GBM免疫图谱的理解。文章讨论特定亚群如何与TME其他细胞成分相互作用,从而支持肿瘤侵袭、驱动免疫抑制并促成治疗耐药。
最后介绍基于这些认识的治疗策略,包括靶向特定亚群进行髓系细胞重编程、刺激先天免疫信号和吞噬作用,以及将髓系靶向药物与嵌合抗原受体(CAR)T细胞及其他免疫疗法合理联合,以改善GBM临床结局。
Glioblastoma (GBM) is characterized by a highly immunosuppressive microenvironment that is enriched with myeloid cell populations. Historically, these myeloid cells, particularly GBM-associated microglia/macrophages (GAMs) and myeloid-derived suppressor cells (MDSCs), were considered as pro-tumorigenic due to limitations in genomic technologies.
However, advances in single-cell and spatial omics have revolutionized our understanding of the GBM immune landscape, uncovering extensive heterogeneity within the myeloid compartment. Studies utilizing murine models and patient-derived samples have demonstrated that GAMs and MDSCs exist along a spectrum of activation states, with both tumor-promoting and tumor-suppressive roles.
These findings challenge the conventional view of myeloid cells in GBM and highlight their dynamic and context-dependent functions. This review summarizes key findings from single-cell and spatial-omics studies utilizing human GBM patient samples and highlighting the discovery of novel myeloid cell subsets, immunomodulatory programs, and tumor-niche specific myeloid subpopulations that have reshaped our understanding of the GBM immune landscape.
We discuss how specific subpopulations interact with other cellular components of the tumor microenvironment to support tumor invasion, drive immunosuppression, and contribute to therapeutic resistance.
Finally, we discuss therapeutic strategies informed by these insights, including subset-directed myeloid reprogramming, stimulating innate immune signaling and phagocytosis, and rational combinations of myeloid-targeted agents with chimeric antigen receptor (CAR) T-cell and other immune therapies to improve clinical outcomes in GBM.
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