CELL INTELLIGENCE · 肿瘤细胞治疗研究
肿瘤细胞治疗研究
英文原题:Breaking hypoxic barrier: Oxygen-supplied nanomaterials for enhanced T cell-mediated tumor immunotherapy.
Breaking hypoxic barrier: Oxygen-supplied nanomaterials for enhanced T cell-mediated tumor immunotherapy.
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肿瘤微环境(TME)中的缺氧是有效癌症免疫治疗的关键障碍,因为它抑制T细胞浸润和应答,同时促进免疫逃逸。供氧纳米材料(OSNs)近年来作为缓解缺氧、调节TME和增强免疫治疗疗效的有前景的工具而出现。本综述探讨了OSNs与T淋巴细胞在克服缺氧驱动的免疫抑制中的协同相互作用。我们讨论了缺氧限制T细胞功能、浸润和细胞毒性的机制,并强调纳米材料如何恢复氧合、增强免疫激活和改善趋化因子介导的T细胞募集。评估了纳米技术的关键进展,包括全氟化碳基系统和催化纳米颗粒,在改善抗肿瘤免疫和与免疫检查点抑制剂及CAR-T 细胞疗法协同作用方面的能力。最后,我们讨论了纳米材料递送、安全性和临床转化的挑战,强调了个性化策略的机会。OSNs提供了增强T细胞介导的抗肿瘤应答的变革性潜力,推进了免疫治疗的前沿。
Hypoxia in the tumor microenvironment (TME) is a critical barrier to effective cancer immunotherapy, as it suppresses T cell infiltration and response while fostering immune evasion. Oxygen-supplied nanomaterials (OSNs) have recently emerged as promising tools to alleviate hypoxia, modulate the TME, and enhance the efficacy of immunotherapies. This review explores the synergistic interplay between OSNs and T lymphocytes in overcoming hypoxia-driven immune suppression.
We discuss the mechanisms by which hypoxia limits T cell functionality, infiltration, and cytotoxicity, and highlight how nanomaterials restore oxygenation, boost immune activation, and improve chemokine-mediated T cell recruitment. Key advances in nanotechnology, including perfluorocarbon-based systems and catalytic nanoparticles, are evaluated for their ability to improve anti-tumor immunity and synergize with immune checkpoint inhibitors and chimeric antigen receptor-T cell therapies.
Finally, we address the challenges of nanomaterial delivery, safety, and clinical translation, emphasizing opportunities for personalized strategies. OSNs offer transformative potential to enhance T cell-mediated anti-tumor responses, advancing immunotherapy's frontier.
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