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.
CELL INTELLIGENCE · 肿瘤细胞治疗研究
肿瘤细胞治疗研究
英文原题:Insight into the Progress in CAR-T Cell Therapy and Combination with Other Therapies for Glioblastoma.
Insight into the Progress in CAR-T Cell Therapy and Combination with Other Therapies for Glioblastoma.
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胶质母细胞瘤(GBM)是成人最常见的原发性恶性脑肿瘤,对现有治疗(包括手术切除、术后放疗和化疗)通常具有抵抗性,因此预后极差、复发率高,亟需新的根治性疗法。CAR-T 细胞疗法显著延长了血液系统恶性肿瘤患者的生存期,也促使研究者探索其在实体瘤中的应用。近期研究指出,由于GBM的解剖特点(血脑屏障和免疫抑制性肿瘤微环境)及肿瘤异质性,实体瘤尤其是GBM难以从CAR-T 治疗中获得临床获益。CAR-T 细胞难以穿越血脑屏障;免疫抑制性肿瘤微环境会诱导CAR-T 细胞耗竭,削弱治疗应答。
此外,CAR-T 治疗压力下的肿瘤异质性和可塑性会推动肿瘤演进及治疗耐药,例如抗原逃逸。研究者正探索克服这些障碍的策略,包括新型CAR-T 设计和局部递送。比如,多抗原靶向CAR-T 可促进其在肿瘤微环境中聚集并清除更多肿瘤细胞,从而应对抗原异质性;在CAR结构中加入免疫调节因子和一个或多个刺激性结构域,以及优化CAR-T 设计和制备流程,也可提升疗效和持久性。单独CAR-T 治疗的临床生存获益有限,而联合治疗拓展了治疗模式。通过调节肿瘤微环境、优化CAR结构、促进CAR-T 靶向肿瘤细胞以及逆转肿瘤免疫逃逸机制,联合治疗可增强CAR-T 疗效。多项令人鼓舞的临床前和临床研究结果表明,CAR-T 联合有效疗法有望成为治疗GBM的途径。本文总结CAR-T 治疗的局限,并介绍增强其功能的新策略及联合治疗的潜力。
Glioblastoma (GBM) is the most common malignant primary brain cancer in adults. It is always resistant to existing treatments, including surgical resection, postoperative radiotherapy, and chemotherapy, which leads to a dismal prognosis and a high relapse rate.
Therefore, novel curative therapies are urgently needed for GBM. Chimeric antigen receptor T (CAR-T) cell therapy has significantly improved life expectancy for hematological malignancies patients, and thus it increases the interest in applying CAR-T cell therapy for solid tumors.
In the recently published research, it is indicated that there are numerous obstacles to achieve clinical benefits for solid tumors, especially for GBM, because of GBM anatomical characteristics (the blood-brain barrier and suppressive tumor microenvironment) and the tumor heterogeneity. CAR-T cells are difficult to penetrate blood-brain barrier, and immunosuppressive tumor microenvironment (TME), which induces CAR-T cell exhaustion, impairs CAR-T cell therapy response.
Moreover, under the pressure of CAR-T cell therapy, the tumor heterogeneity and tumor plasticity drive tumor evolution and therapy resistance, such as antigen escape. Nonetheless, scientists strive for strategies to overcome these hurdles, including novel CAR-T cell designs and regional delivery. For instance, the structure of multi-antigen-targeted CAR-T cells can enrich CAR-T accumulation in tumor TME and eliminate abundant tumor cells to avoid tumor antigen heterogeneity.
Additionally, paired with an immune modifier and one or more stimulating domains, different generation of innovations in the structure and manufacturing of CAR-T cells have improved efficacy and persistence. While single CAR-T cell therapy receives limited clinical survival benefit. Compared with single CAR-T cell therapy, the combination therapies have supplemented the treatment paradigm.
Combinatorial treatment methods consolidate the CAR-T cells efficacy by regulating the tumor microenvironment, optimizing the CAR structure, targeting the CAR-T cells to the tumor cells, reversing the tumor-immune escape mechanisms, and represent a promising avenue against GBM, based on multiple impressive research.
Moreover, exciting results are also reported to be realized through combining effective therapies with CAR-T cells in preclinical and clinical trials samples, have aroused inspiration to explore the antitumor function of combination therapies. In summary, this study aims to summarize the limitation of CAR-T cell therapies and introduces novel strategies to enhance CAR-T cell function as well as prospect the potential of the therapeutic combination.
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