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:CAR T-cell Design-dependent Remodeling of the Brain Tumor Immune Microenvironment Modulates Tumor-associated Macrophages and Anti-glioma Activity.
CAR T-cell Design-dependent Remodeling of the Brain Tumor Immune Microenvironment Modulates Tumor-associated Macrophages and Anti-glioma Activity.
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理解过继转移免疫细胞与脑肿瘤免疫微环境(TIME)之间复杂的动态关系,对开发有效的T细胞免疫疗法至关重要。本研究考察TIME及嵌合抗原受体(CAR)设计对B7-H3特异性CAR-T 细胞抗胶质瘤活性的影响。研究采用免疫功能完整的胶质瘤模型,评估7种全鼠源B7-H3 CAR,其跨膜、共刺激和活化结构域各不相同。随后使用高维流式细胞术和单细胞RNA测序,分析CAR-T 治疗后TIME的变化。结果显示,6种含单一共刺激结构域的B7-H3 CAR中有5种在体外表现出强劲功能,但其体内抗肿瘤活性差异显著。为提高治疗效力和持久性,研究通过在基于CD28的CAR-T 细胞中转基因表达4-1BBL,同时引入4-1BB和CD28共刺激。该CAR设计显著提高了体外抗胶质瘤疗效,但体内未见相应改善。TIME分析显示,CAR-T 治疗会改变TIME组成;特定巨噬细胞亚群和内源性T细胞亚群的募集与活化,对成功抗肿瘤应答至关重要。事实上,使用CSF1R抑制剂完全清除脑内巨噬细胞,会消除CAR-T 的抗肿瘤活性。总之,本研究凸显CAR设计及其对TIME的调节,在介导过继免疫治疗高级别胶质瘤疗效方面具有关键作用。意义:CAR-T 免疫疗法有望用于治疗脑肿瘤,但脑肿瘤复杂的免疫环境会削弱其疗效。本研究显示CAR设计会影响脑肿瘤免疫环境组成,强调需要靶向特定免疫组分以提高CAR-T 表现,并凸显采用免疫系统功能完整模型优化疗法的重要性。
UNLABELLED: Understanding the intricate dynamics between adoptively transferred immune cells and the brain tumor immune microenvironment (TIME) is crucial for the development of effective T cell-based immunotherapies. In this study, we investigated the influence of the TIME and chimeric antigen receptor (CAR) design on the anti-glioma activity of B7-H3-specific CAR T-cells. Using an immunocompetent glioma model, we evaluated a panel of seven fully murine B7-H3 CARs with variations in transmembrane, costimulatory, and activation domains.
We then investigated changes in the TIME following CAR T-cell therapy using high-dimensional flow cytometry and single-cell RNA sequencing.
Our results show that five out of six B7-H3 CARs with single costimulatory domains demonstrated robust functionality in vitro.
However, these CARs had significantly varied levels of antitumor activity in vivo. To enhance therapeutic effectiveness and persistence, we incorporated 41BB and CD28 costimulation through transgenic expression of 41BBL on CD28-based CAR T-cells. This CAR design was associated with significantly improved anti-glioma efficacy in vitro but did not result in similar improvements in vivo. Analysis of the TIME revealed that CAR T-cell therapy influenced the composition of the TIME, with the recruitment and activation of distinct macrophage and endogenous T-cell subsets crucial for successful antitumor responses. Indeed, complete brain macrophage depletion using a CSF1R inhibitor abrogated CAR T-cell antitumor activity.
In sum, our study highlights the critical role of CAR design and its modulation of the TIME in mediating the efficacy of adoptive immunotherapy for high-grade glioma. SIGNIFICANCE: CAR T-cell immunotherapies hold great potential for treating brain cancers; however, they are hindered by a challenging immune environment that dampens their effectiveness.
In this study, we show that the CAR design influences the makeup of the immune environment in brain tumors, underscoring the need to target specific immune components to improve CAR T-cell performance, and highlighting the significance of using models with functional immune systems to optimize this therapy.
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