决定异体 CAR T 细胞排斥与扩增的细胞和分子机制
Cellular and molecular mechanisms determining allogeneic CAR T cell rejection and expansion.
英文原题:A yeast surface display platform for characterizing CAR T cell responses to cancer antigens.
A yeast surface display platform for characterizing CAR T cell responses to cancer antigens.
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嵌合抗原受体(CAR)T细胞已成为一种成熟的免疫疗法,在治疗血液系统恶性肿瘤方面展现出令人鼓舞的结果。然而,癌细胞表面靶抗原水平的调节会影响CAR-T 细胞疗法的质量和安全性。
在此,我们提出了一种基于工程化酵母的抗原系统,用于模拟癌细胞并精确调控表面抗原密度,为CAR-T 细胞的可控激活和抗原密度效应的系统性评估提供了工具。这种合成细胞高级信号适配器(SCASA)系统利用G蛋白偶联受体信号传导来控制酵母表面的癌症抗原密度,并提供了一个可定制的平台,允许选择信号输入和模块化通路工程以实现精确的输出微调。在CD19+癌症方面,我们展示了展示CD19的酵母与人CAR-T 细胞之间的合成细胞通讯,以及在不同CAR设计的高通量表征中的应用。
我们表明,酵母是传统技术(如微珠)的替代方案,并且相对于癌细胞,能够在体外对临床来源的CAR-T 细胞提供更高的激活控制。
总之,我们提出了一个可定制的基于酵母的平台,用于CAR-T 细胞功能的高通量表征,并展示了其在临床环境中治疗性T细胞中的潜在应用。
Chimeric antigen receptor (CAR) T cells have become an established immunotherapy with promising results for the treatment of hematological malignancies.
However, modulation of the targeted antigen's surface level in cancer cells affects the quality and safety of CAR-T cell therapy.
Here we present an engineered yeast-based antigen system for simulation of cancer cells with precise regulation of surface-antigen densities, providing a tool for controlled activation of CAR T cells and systematic assessment of antigen density effects.
This Synthetic Cellular Advanced Signal Adapter (SCASA) system uses G protein-coupled receptor signaling to control cancer antigen densities on the yeast surface and provides a customizable platform allowing selectable signal inputs and modular pathway engineering for precise output fine-tuning. In relation to CD19+ cancers, we demonstrate synthetic cellular communication between CD19-displaying yeast and human CAR T cells as well as applications in high-throughput characterization of different CAR designs.
We show that yeast is an alternative to conventional technologies (e. g. microbeads) and can provide higher activation control of clinically derived CAR T cells in vitro, relative to cancer cells. In summary, we present a customizable yeast-based platform for high-throughput characterization of CAR-T cell functionality and show potential applications within therapeutic T cells in clinical settings.
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