RNF43 p.G659fs 通过 PI3K/AKT/mTOR 信号通路和 HLA-E 上调导致 MSI-high 结直肠癌中 NK 细胞功能障碍
RNF43 p.G659fs leads to natural killer cell dysfunction in MSI-high colorectal cancer through PI3K/AKT/mTOR signaling and HLA-E up-regulation.
肿瘤细胞治疗研究
英文原题:Cytotoxic lymphocyte heterogeneity in glioblastoma: insights from single-cell and spatial multiomics toward precision immunotherapeutic reprogramming.
Cytotoxic lymphocyte heterogeneity in glioblastoma: insights from single-cell and spatial multiomics toward precision immunotherapeutic reprogramming.
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胶质母细胞瘤(GBM)是成人中最具侵袭性的原发性脑肿瘤,其特征是存在深度免疫抑制的肿瘤微环境(TME),系统性地使细胞毒性淋巴细胞功能失活,并使常规免疫治疗在很大程度上无效。尽管在其他癌症类型中,实体瘤内CD8+ T细胞和自然杀伤(NK)细胞的耗竭已被广泛研究,但塑造GBM中细胞毒性淋巴细胞异质性的CNS特异性结构、代谢和分子约束仍未得到充分表征。单细胞RNA测序(scRNA-seq)和空间多组学的最新进展已开始揭示GBM中细胞毒性淋巴细胞亚群的丰富图景。这些包括TCF-1+祖细胞耗竭T细胞(Tpex)、终末耗竭CD8+ T细胞(Tex)和功能失调的自然杀伤(NK)细胞亚群,每一种都分布在解剖学上不同的免疫生态位中。本综述综合了三个相互关联领域的当前知识:GBM浸润性细胞毒性淋巴细胞的单细胞图谱;其功能障碍在坏死周围、血管周围和浸润边缘生态位中的空间组织;以及构成GBM特异性细胞毒性失败基础的表观遗传和转录程序,包括TOX/TCF-1轴的失调和IDH突变驱动的NKG2D配体沉默。关键的是,我们比较了CD8+ T细胞和NK细胞的耗竭机制,强调其机制差异和治疗意义。
我们进一步讨论如何将这些多组学见解转化为神经外科相关策略,包括术中肿瘤分析、通过表观遗传启动扩增祖细胞T细胞、NKG2A/TIGIT双重阻断以及腔内递送工程化NK细胞。
总之,本综述提出了一个在空间和细胞层面解析的框架,用于理解GBM中细胞毒性免疫失败,并概述了针对CNS肿瘤微环境独特免疫生物学量身定制的精准免疫治疗方法。
Glioblastoma (GBM) represents the most aggressive primary brain tumor in adults, characterized by a profoundly immunosuppressive tumor microenvironment (TME) that systematically disables cytotoxic lymphocyte function and renders conventional immunotherapy largely ineffective. While exhaustion of CD8 + T cells and natural killer (NK) cells within solid tumors has been extensively studied in other cancer types, the CNS-specific architectural, metabolic, and molecular constraints that shape cytotoxic lymphocyte heterogeneity in GBM remain insufficiently characterized. Recent advances in single-cell RNA sequencing (scRNA-seq) and spatial multiomics have begun to reveal a rich landscape of cytotoxic lymphocyte subpopulations in GBM.
These include TCF-1 + progenitor-exhausted T cells (Tpex), terminally exhausted CD8 + T cells (Tex), and dysfunctional natural killer (NK) cell subsets, each distributed across anatomically distinct immune niches.
This review synthesizes current knowledge across three interconnected areas: the single-cell atlas of GBM-infiltrating cytotoxic lymphocytes; the spatial organization of their dysfunction within perinecrotic, perivascular, and infiltrative-edge niches; and the epigenetic and transcriptional programs that underlie GBM-specific cytotoxic failure, including dysregulation of the TOX/TCF-1 axis and IDH-mutation-driven silencing of NKG2D ligands.
Critically, we compare CD8 + T cell and NK cell exhaustion mechanisms, highlighting their mechanistic divergence and therapeutic implications.
We further discuss how these multiomics insights can be translated into neurosurgically relevant strategies, including intraoperative tumor profiling, progenitor T cell expansion via epigenetic priming, NKG2A/TIGIT dual blockade, and intracavitary delivery of engineered NK cells.
Together, this review proposes a spatially and cellularly resolved framework for understanding cytotoxic immune failure in GBM and outlines precision immunotherapy approaches tailored to the unique immunobiology of the CNS tumor microenvironment.
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