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:Efficacy and safety of universal (TCRKO) ARI-0001 CAR-T cells for the treatment of B-cell lymphoma.
我们在此表明,尽管基因组编辑仍存在一些基因毒性风险,但破坏 TCR 是生成功能性异体 ARI-0001 CAR-T 细胞的可行策略。
表达嵌合抗原受体(CAR)的自体T细胞已被批准作为针对多种血液恶性肿瘤的先进治疗药品(ATMP)。然而,制备患者特异性CAR-T产品会延迟治疗并阻碍标准化。异体即用型CAR-T细胞是简化这一复杂且耗时过程的替代方案。在此,我们研究了在ARI-0001 CAR-T细胞中敲除TCR分子的安全性和有效性。ARI-0001是一种第二代CD19 CAR,已由西班牙药品和医疗器械管理局(AEMPS)根据医院豁免批准,用于治疗25岁以上复发/难治性急性B淋巴细胞白血病(B-ALL)患者。我们首先分析了使用CRISPR/Cas9破坏TCR基因过程中出现的有效性和安全性问题。我们已经表明,使用CRISPR作为核糖核蛋白在T细胞中编辑TRAC位点可实现高效的TCR破坏(超过80%),且不会对T细胞表型产生显著改变,并伴有高能线粒体百分比的增加。然而,我们也发现高效的TCRKO可导致靶向的大片段和中片段缺失,表明该操作存在需要监测的潜在安全风险。重要的是,ARI-0001的TCR编辑有效阻止了异体反应,且未可检测地改变其表型,同时与未编辑的ARI-0001 CAR-T细胞相比,在体外和体内维持了相似的抗肿瘤活性。总之,我们在此表明,尽管由于基因组编辑仍存在一些基因毒性风险,但破坏TCR是生成功能性异体ARI-0001 CAR-T细胞的可行策略。我们提议进一步验证该方案,用于治疗不符合标准自体CAR-T细胞给药要求的患者。
Autologous T cells expressing the Chimeric Antigen Receptor (CAR) have been approved as advanced therapy medicinal products (ATMPs) against several hematological malignancies. However, the generation of patient-specific CAR-T products delays treatment and precludes standardization. Allogeneic off-the-shelf CAR-T cells are an alternative to simplify this complex and time-consuming process. Here we investigated safety and efficacy of knocking out the TCR molecule in ARI-0001 CAR-T cells, a second generation CD19 CAR approved by the Spanish Agency of Medicines and Medical Devices (AEMPS) under the Hospital Exemption for treatment of patients older than 25 years with Relapsed/Refractory acute B cell lymphoblastic leukemia (B-ALL). We first analyzed the efficacy and safety issues that arise during disruption of the TCR gene using CRISPR/Cas9. We have shown that edition of TRAC locus in T cells using CRISPR as ribonuleorproteins allows a highly efficient TCR disruption (over 80%) without significant alterations on T cells phenotype and with an increased percentage of energetic mitochondria. However, we also found that efficient TCRKO can lead to on-target large and medium size deletions, indicating a potential safety risk of this procedure that needs monitoring. Importantly, TCR edition of ARI-0001 efficiently prevented allogeneic responses and did not detectably alter their phenotype, while maintaining a similar anti-tumor activity ex vivo and in vivo compared to unedited ARI-0001 CAR-T cells. In summary, we showed here that, although there are still some risks of genotoxicity due to genome editing, disruption of the TCR is a feasible strategy for the generation of functional allogeneic ARI-0001 CAR-T cells. We propose to further validate this protocol for the treatment of patients that do not fit the requirements for standard autologous CAR-T cells administration.
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