单细胞追踪揭示黑色素瘤 TIL 治疗过程中肿瘤反应性 T 细胞的可塑性
Single-cell tracking reveals tumor-reactive T cell plasticity during melanoma TIL therapy.
CELL INTELLIGENCE · 肿瘤细胞治疗研究
肿瘤细胞治疗研究
英文原题:Real-time multimodal phenotyping reveals distinct tumour cell dynamics and immune escape mechanisms in T cell therapies.
Real-time multimodal phenotyping reveals distinct tumour cell dynamics and immune escape mechanisms in T cell therapies.
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过继性T细胞转移治疗仍受限于无法在治疗过程中监测活肿瘤细胞动态。在此,我们介绍一种实时、无标记的表型分析系统,该系统整合了电阻抗谱、拉曼光谱和显微镜技术,用于分析正在接受治疗的活肿瘤细胞。该系统能够在单细胞分辨率下同时追踪代谢活性、膜完整性和细胞质特性。首先,对糖酵解的分析揭示,TIL(肿瘤浸润淋巴细胞)在早期抑制乳酸产生,降低肿瘤侵袭性,而CAR-T 细胞则在早期触发肿瘤沉默逃逸,并将代谢抑制延迟至后期阶段,最终导致细胞死亡。其次,膜谱分析显示,在TIL(肿瘤浸润淋巴细胞)治疗下,早期出现磷脂和胆固醇耗竭,并伴有部分恢复,而CAR-T 细胞则引起进行性且不可逆的膜损伤。第三,细胞质分析发现,在TIL(肿瘤浸润淋巴细胞)治疗下,早期出现蛋白质结构破坏和离子失衡,而CAR-T 细胞则触发延迟的代谢崩溃和细胞质收缩。这些发现揭示了不同的免疫杀伤机制和逃逸阶段,为肿瘤-免疫相互作用提供了机制性见解,并为个性化治疗策略的设计提供了信息。
Adoptive T cell transfer therapy remains limited by the inability to monitor live tumour cell dynamics during treatment.
Here we introduce a real-time, label-free phenotyping system that integrates electrical impedance spectroscopy, Raman spectroscopy and microscopy to analyse live tumour cells undergoing therapy. This system enables simultaneous tracking of metabolic activity, membrane integrity and cytoplasmic properties at single-cell resolution. First, analysis of glycolysis reveals that tumour-infiltrating lymphocytes suppress lactate production early, reducing tumour aggressiveness, while chimaeric antigen receptor T cells trigger tumour silent escape early and delay metabolic inhibition until later stages, culminating in cell death.
Second, membrane profiling shows early phospholipid and cholesterol depletion under tumour-infiltrating lymphocyte treatment, with partial recovery, whereas chimaeric antigen receptor T cells cause progressive and irreversible membrane damage. Third, cytoplasmic analysis identifies early protein structural disruption and ionic imbalance under tumour-infiltrating lymphocyte therapy, while chimaeric antigen receptor T cells trigger delayed metabolic collapse and cytoplasmic contraction.
These findings uncover distinct immune killing mechanisms and escape phases, offering mechanistic insights into tumour-immune interactions and informing the design of personalized therapeutic strategies.
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