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.
我们评估了11例接受单一批次cemacabtagene ansegedleucel(cema-cel)治疗的大B细胞淋巴瘤患者,cemacabtagene ansegedleucel是一种异体抗CD19 CAR T产品。
英文原题:CAR-T cell therapy for breast cancer: Current status and future perspective.
在乳腺癌(BC)治疗领域不断扩展的背景下,转移性乳腺癌(MBC)仍几乎无法治愈,且往往对常规治疗产生耐药,最终导致转移进展和死亡。
在不断扩展的乳腺癌(BC)治疗格局中,转移性乳腺癌(MBC)仍几乎无法治愈,且往往对传统治疗产生耐药,最终导致转移进展和死亡。细胞免疫治疗(CI),尤其是 CAR-T 细胞,已成为应对这一挑战的一种有前景的方法。继其在血液系统恶性肿瘤中取得显著疗效之后,CAR-T 细胞也已被用于临床需求最迫切之处——侵袭性 BC 患者。遗憾的是,目前的结果远未能复制这一成功,主要归因于肿瘤特异性抗原的稀缺以及 BC 内的免疫抑制微环境。在此,我们提供关于 CAR-T 细胞疗法在 BC 中应用的临床前和临床数据的最新概述。通过梳理现有文献,我们讨论该治疗方法的当前主要限制,并概述在乳腺恶性肿瘤背景下推进该疗法的可能策略。可能的方法包括利用合成生物学来优化抗原靶向并减轻脱靶毒性,利用逻辑门控 CAR 构建体增强特异性,以及利用装甲 CAR 重塑肿瘤微环境。使用可诱导基因开关和外部触发因素对 CAR-T 细胞进行时空调控,可进一步提高安全性和功能性。此外,通过趋化因子受体工程促进 T 细胞归巢,以及利用通用 CAR 平台改进生产工艺,可拓展治疗适用性。这些创新不仅解决了抗原逃逸和 T 细胞耗竭问题,还优化了 CAR-T 细胞疗法的疗效和安全性。因此,我们勾勒出一条发展轨迹:CAR-T 细胞可能从一种有前景的实验性方法演变为 BC 治疗的标准模式。
Within the expanding therapeutic landscape for breast cancer (BC), metastatic breast cancer (MBC) remains virtually incurable and tend to develop resistance to conventional treatments ultimately leading to metastatic progression and death. Cellular immunotherapy (CI), particularly chimeric antigen receptor-engineered T (CAR-T) cells, has emerged as a promising approach for addressing this challenge. In the wake of their striking efficacy against hematological cancers, CAR-T cells have also been used where the clinical need is greatest - in patients with aggressive BCs. Unfortunately, current outcomes fall considerably short of replicating that success, primarily owing to the scarcity of tumor-specific antigens and the immunosuppressive microenvironment within BC. Herein, we provide an up-to-date overview of both preclinical and clinical data concerning the application of CAR-T cell therapy in BC. By surveying the existing literature, we discuss the prevailing constrains of this therapeutic approach and overview possible strategies to advance it in the context of breast malignancies. Possible approaches include employing synthetic biology to refine antigen targeting and mitigate off-target toxicity, utilizing logic-gated CAR constructs to enhance specificity, and leveraging armored CARs to remodel the tumor micro-environment. Temporal and spatial regulation of CAR-T cells using inducible gene switches and external triggers further improves safety and functionality. In addition, promoting T cell homing through chemokine receptor engineering and enhancing manufacturing processes with universal CAR platforms expand therapeutic applicability. These innovations not only address antigen escape and T cell exhaustion but also optimize the efficacy and safety profile of CAR-T cell therapy. We, therefore, outline a trajectory wherein CAR-T cells may evolve from a promising experimental approach to a standard modality in BC therapy.
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