CAR-T(CAR-T)细胞疗法在非肿瘤性疾病中的应用
Chimeric antigen receptor T (CAR-T) cell therapy in non-oncological diseases.
CAR-T(CAR-T)细胞在血液系统恶性肿瘤中的应用推动了这种免疫治疗形式的显著进展。
CELL INTELLIGENCE · 肿瘤细胞治疗研究
肿瘤细胞治疗研究
英文原题:Ex Vivo Zinc Nanoparticle Conditioning Primes T Cells for Potent Antitumor Activity in Ovarian Cancer Patient-Derived Xenografts.
Ex Vivo Zinc Nanoparticle Conditioning Primes T Cells for Potent Antitumor Activity in Ovarian Cancer Patient-Derived Xenografts.
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肿瘤微环境导致的T细胞功能障碍会限制细胞免疫疗法的持久性,因此需要在回输前采取干预措施以增强效应程序。本文介绍一种离体预处理方法,使用锌纳米颗粒(Zn NP)作为短暂的细胞内Zn²⁺调节剂,在不改变受体工程化设计的情况下对T细胞进行预处理。短时Zn NP预处理可使T细胞在不同效靶比下均持续增强对肿瘤细胞的杀伤,并增加IL-2、IFN-γ和TNF-α分泌,同时避免细胞内活性氧升高。在小鼠黑色素瘤模型中,过继转移经预处理的T细胞可延缓肿瘤生长并延长生存,且未见毒性;与半乳糖凝集素-9(Galectin-9)阻断联合使用后,肿瘤控制进一步增强。在卵巢癌患者来源异种移植模型中也获得了转化相关性证据:经预处理的CAR-T 细胞取得更好的肿瘤控制,肿瘤内CAR-T 浸润增加,并同样从Galectin-9抑制中获益。预处理T细胞的转录组分析显示金属离子应答发生协同重塑,提示其信号传导和应激耐受能力得到增强。
本研究确立了Zn NP预处理作为一种实用、可直接纳入T细胞制备流程的步骤,可增强效应功能,并与半乳糖凝集素通路抑制协同作用,以克服微环境抑制、提高治疗效力。
T-cell dysfunction imposed by the tumor microenvironment limits the durability of cellular immunotherapies, motivating interventions that strengthen effector programs before infusion.
Here we describe an ex vivo pretreatment that uses zinc nanoparticles (Zn NPs) as a transient intracellular Zn 2+ modulator to condition T cells without altering receptor engineering. Brief priming with Zn NPs yielded T cells with consistently improved tumor-cell killing across effector-to-target ratios and increased IL-2, IFN- , and TNF- secretion while avoiding rises in intracellular ROS. In murine melanoma models, adoptive transfer of primed T cells delayed tumor growth and prolonged survival without toxicity; combination with Galectin-9 blockade further enhanced control.
Translational relevance was supported in an ovarian cancer patient-derived xenograft model, where primed CAR T cells achieved superior tumor control, showed greater intratumoral CAR T infiltration, and again benefited from Galectin-9 inhibition. Transcriptome profiling of primed T cells revealed coordinated remodeling of metal-ion response, consistent with reinforced signaling and stress resilience.
This study establishes Zn NP-enabled priming as a practical, drop-in step for T-cell manufacturing that enhances effector function and cooperates with galectin-axis inhibition to overcome microenvironmental suppression and improve therapeutic potency.
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