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:Targeting of acute myeloid leukemia by five-gene engineered T cells expressing transgenic T-cell receptor specific to WT1, chimeric antigenic receptor specific to GM-CSF receptor, bispecific T-cell engager specific to CD33, and tEGFR suicide gene system.
所提出的策略利用单个piggyBac转座子载体,通过插入TCR、CAR、BiTE构建体以及tEGFR基因自杀系统,实现了T细胞特异性针对急性髓系白血病的复杂重定向。
利用转基因T细胞受体工程化T细胞(TCR-T)的癌症免疫疗法能够靶向细胞内的肿瘤特异性抗原;相比之下,嵌合抗原受体修饰的T细胞(CAR-T)通过识别表面抗原来介导肿瘤细胞杀伤。就急性髓系白血病而言,缺乏白血病特异性表面抗原限制了CAR-T细胞的疗效;因此,TCR-T细胞可能代表一种更具针对性的免疫治疗方法。然而,肿瘤免疫抑制环境会消除功能最佳、高亲和力的TCR-T细胞,从而产生了对新型、增强型TCR-T细胞的需求。
用于T细胞基因修饰的piggyBac转座子载体表达针对WT1肿瘤抗原的特异性T细胞受体、由NFAT启动子调控的针对GM-CSF受体的CAR、CD3xCD33双特异性T细胞衔接器以及截短型EGFR自杀基因系统。通过使用单一表达载体进行电穿孔生成转基因T细胞,并利用AML细胞系和原代AML细胞的模型评估这些工程化TCR-T细胞的效率。
NFAT驱动的GM-CSF CAR显著增强了WT1特异性TCR-T细胞的抗白血病活性,重要的是这些细胞保持了对其HLA/肽抗原复合物的特异性。接下来,通过将CD3xCD33双特异性T细胞衔接器插入转座子载体,TCR-T细胞和招募的未转染旁观者T细胞均能有效靶向CD33抗原,从而提供更强效的抗白血病作用。
BACKGROUND: Cancer immunotherapy with transgenic T-cell receptor-engineered T cells (TCR-T) enables the targeting of intracellular tumor-specific antigens; in contrast, chimeric antigen receptor-modified T cells (CAR-T) mediate tumor cell killing via the recognition of surface antigens. In the case of acute myeloid leukemia, the lack of leukemia-specific surface antigens limits the efficacy of CAR-T cells; therefore, TCR-T cells may represent a more targeted immunotherapy approach. However, the tumor immunosuppressive environment eliminates the best-functioning, high-avidity TCR-T cells, thus creating a need for novel, enhanced TCR-T cells. METHODS: The piggyBac transposon vector used for gene modification of T cells expresses a T-cell receptor specific to the WT1 tumour antigen, an NFAT promoter-regulated CAR specific to GM-CSF receptor, a CD3xCD33 bispecific T-cell engager, and a truncated EGFR suicide gene system. The transgenic T cells were generated by electroporation using a single expression vector, and the efficiency of these engineered TCR-T cells was evaluated using models that utilized AML cell lines and primary AML cells. RESULTS: The NFAT-driven GM-CSF CAR significantly enhances the antileukemic activity of WT1-specific TCR-T cells, which importantly maintain specificity for their HLA/peptide antigenic complex. Next, by inserting the CD3xCD33 bispecific T-cell engager into the transposon vector, both TCR-T cells and recruited non-transfected bystander T cells can efficiently target the CD33 antigen, providing more robust antileukemic effects. CONCLUSION: The presented strategy, utilizing a single piggyBac transposon vector, enables the complex redirection of T-cell specificity against acute myeloid leukemia by inserting TCR, CAR, BiTE constructs, along with a tEGFR gene suicide system.
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