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:MARC, a novel modular chimeric antigen receptor, improves T cell-based cancer immunotherapies by preventing early T cell exhaustion and enhancing persistence.
MARC, a novel modular chimeric antigen receptor, improves T cell-based cancer immunotherapies by preventing early T cell exhaustion and enhancing persistence.
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凭借其模块化结构,MARC 为优化提供了无可比拟的机会,并可广泛适用于不同细胞类型,为细胞治疗的变革性进展铺平道路。
CAR-T 细胞免疫疗法重塑了癌症治疗格局,尤其惠及白血病患者。然而,CAR行为缺陷和临床并发症限制了其在不同癌症类型中的广泛应用。主要问题之一是CAR高水平持续性信号,而天然活化免疫受体不存在此现象;持续信号会加速T细胞耗竭并削弱疗效。我们假设这些局限源于当前CAR结构未能模拟天然活化免疫受体的模块化设计;天然受体由不同受体和信号模块组成,这种模块化组装对于维持适当的受体调控和功能至关重要。
据此,我们开发一种模块化CAR,采用天然活化免疫受体的组装原理,恢复受体表达及信号传导的内在安全调控机制。
新型模块化激活受体复合物(MARC)的表面表达水平与天然免疫受体NK细胞受体KIR2DS3相近,同时消除了持续性信号。在具有临床相关性的鼠白血病模型中,与传统CAR-T 细胞相比,MARC-T细胞长期持续性显著增强,耗竭表型更弱。
MARC的模块化结构为优化及在不同细胞类型中的广泛应用提供了独特机会,有望推动细胞疗法的变革性进展,并成为临床上的新一代治疗工具。
Chimeric antigen receptor T cell (CAR-T)-based immunotherapies have reshaped the therapeutic landscape of cancer treatment, in particular for patients afflicted with leukemia. However, defects in CAR behaviors and clinical complications have hindered their widespread application across diverse cancer types. Chief among these defects is high tonic signaling, absent in native activating immune receptors, which accelerates T cell exhaustion and undermines treatment efficacy. We hypothesized that these limitations arise because current CAR architectures fail to replicate the modular design of native activating immune receptors, which integrate distinct receptor and signaling modules. This modular assembly is crucial for maintaining proper receptor regulation and function.
Therefore, we set forth to develop a modular chimeric antigen receptor leveraging the same assembly principles found in native activating immune receptors to reestablish the intrinsic safeguards in receptor expression and signaling.
The resulting Modular Actuation Receptor Complex (MARC) displayed surface expression levels akin to its native immune receptor counterpart, the NK cell receptor KIR2DS3, while eliminating tonic signaling. In a clinically relevant mouse leukemia model, MARC-T cells exhibited remarkable long-term persistence and a less exhausted phenotype compared with conventional CAR-T cells.
With its modular architecture, the MARC offers unparalleled opportunities for optimization and broad applicability across different cell types, paving the way for transformative advancements in cell-based therapies. This innovation holds immense promise as a next-generation therapeutic tool in clinical settings.
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