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:T Cells Expressing a Modified FcγRI Exert Antibody-Dependent Cytotoxicity and Overcome the Limitations of CAR T-cell Therapy against Solid Tumors.
T Cells Expressing a Modified FcγRI Exert Antibody-Dependent Cytotoxicity and Overcome the Limitations of CAR T-cell Therapy against Solid Tumors.
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嵌合抗原受体(CAR)T 细胞疗法的开创性设计展示了重编程免疫系统的潜力。然而,T 细胞耗竭、毒性和抑制性微环境限制了其治疗实体瘤的疗效。
我们此前鉴定出一类表达 Fc RI 受体的肿瘤浸润 CD4⁺ T 细胞。本研究详细介绍了一种基于 Fc RI 结构设计的受体工程,使 T 细胞能够借助抗体中介靶向肿瘤细胞。只有加入适当抗体时,这些 T 细胞才表现出有效且特异的细胞毒性。只有与靶点结合的抗体才能活化这些细胞;游离抗体则被内化但不引起活化。其细胞毒活性与靶蛋白密度相关,因此可靶向高抗原密度肿瘤细胞,同时保留低表达或不表达抗原的正常细胞。该活化机制可防止过早耗竭。
此外,在抗体依赖性细胞毒过程中,这些细胞分泌的细胞因子水平低于 CAR-T 细胞,因而安全性更佳。这些细胞可清除已形成的黑色素瘤、浸润肿瘤微环境,并在免疫功能健全小鼠中促进宿主免疫细胞募集;在 NOD/SCID γ 小鼠中,这些细胞也能浸润、持续存在并清除肿瘤。与针对不同癌症类型需更换受体的 CAR-T 细胞疗法不同,本研究工程化 T 细胞可用于不同肿瘤类型,只需更换注射的抗体。
总体而言,我们开发了一种高度灵活的 T 细胞疗法,可高亲和力结合多种肿瘤细胞,同时仅对高密度表达肿瘤相关抗原的细胞发挥细胞毒特异性,并采用单一生产流程。
The pioneering design of chimeric antigen receptor (CAR) T-cell therapy demonstrated the potential of reprogramming the immune system. Nonetheless, T-cell exhaustion, toxicity, and suppressive microenvironments limit their efficacy in solid tumors.
We previously characterized a subset of tumor-infiltrating CD4+ T cells expressing the Fc RI receptor.
Herein, we detail engineering of a receptor, based on the Fc RI structure, allowing T cells to target tumor cells using antibody intermediates. These T cells showed effective and specific cytotoxicity only when an appropriate antibody was added.
Only target-bound antibodies activated these cells, while free antibodies were internalized without activation. Their cytotoxic activity was correlated to target protein density, therefore targeting tumor cells with high antigen density while sparing normal cells with low or no expression. This activation mechanism prevented premature exhaustion.
Furthermore, during antibody-dependent cytotoxicity these cells secreted attenuated cytokine levels compared with CAR T cells, thereby enhancing their safety profile. These cells eradicated established melanomas, infiltrated the tumor microenvironment, and facilitated host immune cell recruitment in immunocompetent mice.
In NOD/SCID gamma mice the cells infiltrate, persist, and eradicate tumors. As opposed to CAR T-cell therapies, which require changing the receptor across different types of cancer, our engineered T cells remain the same across tumor types, while only the injected antibody changes.
Overall, we generated a highly flexible T-cell therapy capable of binding a wide range of tumor cells with high affinity, while preserving the cytotoxic specificity only to cells expressing high density of tumor-associated antigens and using a single manufacturing process.
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