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当前抗骨髓瘤 CAR-T 细胞:新型靶点与方法

英文原题:Current Anti-Myeloma Chimeric Antigen Receptor-T Cells: Novel Targets and Methods.

PubMed 2025/07/01(内容时间) Balkan Med J Q1 · IF 4.5(JCR 2025)

研究概要

研究正在探索在更早期阶段使用CAR-T,包括在诊断时使用,以期替代ASCT。

中文摘要

多发性骨髓瘤(MM)的治疗一旦出现三类或五类难治,便成为重大挑战。新兴的免疫疗法,包括双特异性抗体或嵌合抗原受体(CAR)-T细胞疗法,对此类患者是有前景的选择。然而,在严格的制造条件下对专业知识和人员的需求导致高成本和受限的生产。本文探讨了CAR-T细胞在MM中的制造和临床应用,重点介绍其潜力、局限性以及增强疗效的策略。CAR-T可由制药公司或获授权生产和销售基因编辑细胞产品的认证学术中心制造。该过程包括依次步骤:从患者采集T细胞、细胞选择、激活、基因转移、所产生细胞的扩增、冷冻保存以及将细胞回输到淋巴细胞清除后的患者体内。虽然临床研究中通常采用CD3+ T细胞进行CAR-T生产,但研究已证明特定T细胞亚群,如初始、中央记忆和记忆干细胞,在增强疗效方面的潜在优势。T细胞采集后,下一阶段涉及基因修饰。CAR-T细胞通常通过应用病毒载体如逆转录病毒或慢病毒来生产。尽管病毒载体常用,但非病毒方法——包括CRISPR/Cas9和由转座子产生的整合型mRNA转染方法——也被采用。已开发出五种不同的CAR-T细胞世代。骨髓瘤特异性靶点 B 细胞成熟抗原(BCMA)、信号淋巴细胞激活分子家族 7 和 G 蛋白偶联受体 C 类第 5 组成员 D 是临床试验中研究最广泛的靶点。正在研究中的新兴 CAR-T 细胞靶点包括 CD138、CD19、kappa 轻链、CD56、NY-ESO-1、CD70、TACI 和自然杀伤 G2D。2021 年,idecabtagene vicleucel 作为一种靶向 BCMA 的制剂,成为首个获批用于复发/难治性 MM 的 CAR-T 疗法,标志着 MM 治疗的一个重要里程碑。随后,ciltacabtagene autoleucel 也已获批。然而,CAR-T 耐药正成为一个新出现的问题。耐药机制包括 T 细胞耗竭、抗原逃逸(BCMA 丢失)以及肿瘤微环境相关抑制因素。为应对这些挑战,已开发出 BCMA 非靶向或双靶向 CAR-T、记忆 T 细胞、人源化 CAR-T 以及快速制备的 PHE885 细胞等策略。为提高特异性,正在进行的研究包括双顺反子 CAR/共刺激受体、记忆表型 T 细胞的形成、与免疫调节剂或检查点抑制剂联合、装甲 CAR-T 细胞、癌相关成纤维细胞抑制剂,以及抑制耗竭信号的 CAR 方法。总之,研究正在探索在更早期阶段使用 CAR-T,包括在诊断时使用,以期替代 ASCT。CAR-T 为 MM 治疗引入了新的维度;然而,在高危 MM 中疗效有限以及 CAR-T 耐药的出现仍是需要解决的关键挑战。

展开英文摘要原文

Multiple myeloma (MM) treatment becomes a major challenge once triple-class or penta-refractoriness develops. Emerging immunotherapies, including bispecific antibodies or chimeric antigen receptor (CAR)-T cell therapy, are promising options for such patients. However, the requirement for specialized expertise and staff under stringent manufacturing conditions results in high costs and restricted production. This article explores the manufacturing and clinical application of CAR T-cells in MM, highlighting their potential, limitations, and strategies to enhance efficacy. CAR-T can be manufactured by pharmaceutical companies or accredited academic centers authorized to produce and market gene-edited cellular products. This process includes sequential steps: T cell apheresis from the patient, selection of the cells, activation, gene transfer, expansion of the produced cells, cryopreservation, and reinfusion of the cells into a lymphodepleted patient. While CD3+ T cells are typically employed for CAR-T production in clinical studies, studies have demonstrated the potential advantages of specific T cell subgroups, such as naive, central memory, and memory stem cells, in enhancing efficacy. Following T cell harvesting, the subsequent phase involves genetic modification. CAR-T cells are frequently produced by applying viral vectors such as -retrovirus or lentivirus. Although viral vectors are commonly used, non-viral methods-including CRISPR/Cas9 and integrative mRNA transfection methods produced by transposons-are also employed. Five different CAR-T cell generations have been developed. The myeloma-specific targets B-cell maturation antigen (BCMA), signaling lymphocyte activation molecular family 7, and G protein-coupled receptor class C group 5 member D are the most extensively studied in clinical trials. Emerging CAR-T cell targets under investigation include CD138, CD19, kappa light chain, CD56, NY-ESO-1, CD70, TACI, and natural killer G2D. In 2021, idecabtagene vicleucel, a BCMA-targeting agent, became the first CAR-T therapy approved for relapsed/refractory MM, marking a significant milestone in MM treatment. Subsequently, ciltacabtagene autoleucel has also been approved. However, CAR-T resistance is an emerging issue. Resistance mechanisms include T cell exhaustion, antigen escape (loss of BCMA), and tumor microenvironment-related inhibitors. To address these challenges, strategies such as BCMA non-targeted or dual-targeted CAR-T, memory T cells, humanized CAR-T, and rapidly manufactured PHE885 cells have been developed. To enhance specificity, ongoing investigations include bicistronic CAR/co-stimulator receptors, formation of memory-phenotype T cells, combination with immunomodulators or checkpoint inhibitors, armored CAR-T cells, cancer-associated fibroblast inhibitors, and CAR approaches that inhibit exhaustion signals. In conclusion, studies are exploring the use of CAR-T at an earlier stage, including at diagnosis, with an aim to replace ASCT. CAR-T has introduced a new dimension to MM treatment; however, limited efficacy in high-risk MM and the emergence of resistance to CAR-T remain key challenges to be addressed.

论文信息

作者
Vural E、Beksaç M
单位
Clinic of Hematology, Ankara Liv Hospital, Ankara, Türkiye.Turkey
文献类型
综述
期刊
Balkan medical journal2025 Jul 1
原文标识
PubMed 40619794 · DOI 10.4274/balkanmedj.galenos.2025.2025-4-25