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:Taking Lessons from CAR-T Cells and Going Beyond: Tailoring Design and Signaling for CAR-NK Cells in Cancer Therapy.
肿瘤免疫治疗利用免疫系统的能力来高效靶向恶性细胞。
癌症免疫疗法利用免疫系统的能力高效靶向恶性细胞。近年来,表达嵌合抗原受体(CAR)的T细胞治疗B细胞淋巴瘤显示出良好结果。自体CAR-T细胞需要为每位患者单独生产,因此需要大量生产设施,导致治疗价格高昂;此外还可能出现严重副作用,这是CAR-T疗法的主要缺点。自然杀伤(NK)细胞可作为另一类表达CAR的免疫细胞。由于NK细胞可安全地从健康供者转移至癌症患者,因此适合作为异基因“现货型”免疫疗法平台。然而,迄今在癌症治疗中给予活化NK细胞的抗癌应答较弱,尤其是实体瘤。CAR等基因改造有望增强其对肿瘤细胞的识别,从而增加抗肿瘤作用并改善临床疗效。尽管T细胞和NK细胞在许多方面的细胞生物学特性不同,CAR-NK细胞开发却常沿袭CAR-T细胞的路径,即直接将T细胞技术应用于NK细胞。本文强调NK细胞的独特特性及其在CAR治疗中的潜力。首先,总结NK细胞生物学特征,重点介绍激活受体和抑制受体之间精细调控的信号相互作用。随后讨论为何针对NK细胞定制CAR设计有望优于为T细胞开发的设计。我们总结CAR-NK领域现有发现和进展,包括优化信号传导、靶向更广泛抗原群或提高体内持续性的不同CAR形式和改造方法。最后,讨论NK细胞工程化之外仍需解决的挑战,包括扩增和生产,以推动CAR-NK疗法从实验室走向临床。
Cancer immunotherapies utilize the capabilities of the immune system to efficiently target malignant cells. In recent years, chimeric antigen receptor (CAR) equipped T cells showed promising results against B cell lymphomas. Autologous CAR-T cells require patient-specific manufacturing and thus extensive production facilities, resulting in high priced therapies. Along with potentially severe side effects, these are the major drawbacks of CAR-T cells therapies. Natural Killer (NK) cells pose an alternative for CAR equipped immune cells. Since NK cells can be safely transferred from healthy donors to cancer patients, they present a suitable platform for an allogeneic "off-the-shelf" immunotherapy. However, administration of activated NK cells in cancer therapy has until now shown poor anti-cancer responses, especially in solid tumors. Genetic modifications such as CARs promise to enhance recognition of tumor cells, thereby increasing anti-tumor effects and improving clinical efficacy. Although the cell biology of T and NK cells deviates in many aspects, the development of CAR-NK cells frequently follows within the footsteps of CAR-T cells, meaning that T cell technologies are simply adopted to NK cells. In this review, we underline the unique properties of NK cells and their potential in CAR therapies. First, we summarize the characteristics of NK cell biology with a focus on signaling, a fine-tuned interaction of activating and inhibitory receptors. We then discuss why tailored NK cell-specific CAR designs promise superior efficacy compared to designs developed for T cells. We summarize current findings and developments in the CAR-NK landscape: different CAR formats and modifications to optimize signaling, to target a broader pool of antigens or to increase in vivo persistence. Finally, we address challenges beyond NK cell engineering, including expansion and manufacturing, that need to be addressed to pave the way for CAR-NK therapies from the bench to the clinics.
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