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.
CELL INTELLIGENCE · 肿瘤细胞治疗研究
肿瘤细胞治疗研究
英文原题:Natural Killer Cell Immunotherapy in Solid Tumors: Microenvironmental Obstacles and Translational 3D Models.
Natural Killer Cell Immunotherapy in Solid Tumors: Microenvironmental Obstacles and Translational 3D Models.
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自然杀伤(NK)细胞是癌症免疫治疗中一种有前景的工具;然而,其针对实体瘤的疗效受到敌意肿瘤微环境(TME)的严重限制。本综述全面概述了驱动NK细胞功能障碍和免疫逃逸的物理、分子和代谢屏障,重点强调了细胞外基质(ECM)密度所带来的物理挑战,该挑战限制了浸润。除结构屏障外,我们还探讨了免疫抑制性细胞因子(如TGF-β)和免疫检查点上调的作用,二者均直接抑制NK细胞活化。
此外,NK细胞信号传导和细胞毒性受到缺氧和酸中毒等代谢应激源的深刻影响,这些因素与免疫抑制性代谢物(包括腺苷)的积累协同作用。这些因素通过多种机制损害抗肿瘤活性,尤其是活化性配体的脱落。为研究这些复杂的相互作用,我们评估了不同三维(3D)临床前平台的优缺点,包括肿瘤球体和器官芯片技术,并强调其各自不同的特征。
我们并非提倡单一技术,而是强调每种模型在研究TME特定物理、化学和细胞组分方面均具有独特优势。最终,利用这些先进3D平台的能力对于解析微环境屏障并释放NK细胞对抗实体瘤的全部治疗潜力至关重要。
Natural killer (NK) cells represent a promising tool for cancer immunotherapy; however, their efficacy against solid tumors is severely limited by the hostile tumor microenvironment (TME).
This review provides a comprehensive overview of the physical, molecular, and metabolic barriers that drive NK cell dysfunction and immune evasion, emphasizing the physical challenge posed by extracellular matrix (ECM) density, which restricts infiltration. Beyond structural barriers, we examine the role of immunosuppressive cytokines (e. g. , TGF-β) and immune checkpoint upregulation, both of which directly inhibit NK cell activation.
Furthermore, NK cell signaling and cytotoxicity are profoundly affected by metabolic stressors such as hypoxia and acidosis, which act synergistically with the accumulation of immunosuppressive metabolites, including adenosine. These factors impair antitumor activity through multiple mechanisms, particularly the shedding of activating ligands. To investigate these complex interactions, we evaluate the advantages and disadvantages of different three-dimensional (3D) preclinical platforms, including tumor spheroids and Organ-on-Chip technologies, highlighting their distinct characteristics.
Rather than advocating for a single technology, we emphasize that each model offers unique advantages for studying specific physical, chemical, and cellular components of the TME. Ultimately, leveraging the capabilities of these advanced 3D platforms is essential for deciphering microenvironmental barriers and unlocking the full therapeutic potential of NK cells against solid tumors.
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