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:Optimized L1CAM-CAR T cells enhance activity against moderate-antigen-density rhabdomyosarcoma models.
这些发现支持将 L1CAM 作为 L1CAM 阳性 RMS 病例的合理靶点,并表明 CAR 优化可增强针对中等密度抗原的活性。
横纹肌肉瘤(RMS)是最常见的儿童软组织肉瘤,复发、转移或难治性疾病仍难以治疗。嵌合抗原受体(CAR)T细胞疗法治疗血液系统疾病已显示良好效果,但用于包括RMS在内的实体瘤,受到抗原异质性、靶向肿瘤同时损伤正常组织毒性及对中等抗原密度靶标活性不足等因素限制。我们通过分析细胞系、患者来源异种移植瘤及健康组织中的表达,研究L1细胞黏附分子(L1CAM)作为RMS候选CAR-T靶点的价值。采用源自CE7的单链可变片段,构建并比较不同铰链和共刺激结构域的L1CAM-CAR,包括已在临床测试的4-1BB型CE7-CAR构型。利用融合阳性和阴性RMS体外及原位小鼠模型评估功能,并以B7-H3 CAR-T细胞作为参照。L1CAM在RMS模型中表达水平不一但具有特异性,在融合阳性RMS中表达更突出,在健康组织中表达有限。在不同构建体中,CD28型L1CAM.III-CAR细胞毒性和IFN-γ释放最强,包括在L1CAM低表达模型中的部分活性。体内实验中,与临床参照L1CAM.CT构建体相比,L1CAM.III-CAR T细胞扩增更好、延缓肿瘤进展并延长生存,尽管应答并不完全,且弱于B7-H3 CAR-T细胞。结果支持将L1CAM作为L1CAM阳性RMS病例的合理靶点,并表明优化CAR可增强其对中等密度抗原的活性。L1CAM.III-CAR T细胞具有强效抗肿瘤活性和良好选择性,支持进一步开发用于儿童肉瘤免疫治疗。
Rhabdomyosarcoma (RMS), the most common pediatric soft tissue sarcoma, remains difficult to treat in relapsed, metastatic, or refractory disease. Chimeric antigen receptor (CAR) T cell therapy has demonstrated promising results in hematological diseases, but its application to solid tumors including RMS is limited by antigen heterogeneity, on-target/off-tumor toxicity, and insufficient activity against moderate antigen density. We investigated L1 cell adhesion molecule (L1CAM) as a candidate CAR T cell target in RMS by profiling expression in cell lines, patient-derived xenografts, and healthy tissues. Using the CE7-derived single-chain variable fragment, we engineered and compared L1CAM-CAR constructs differing in hinge and costimulatory domains, including the clinically tested 4-1BB-based CE7-CAR configuration. Functional activity was assessed across fusion-positive and fusion-negative RMS models in vitro and in orthotopic mouse models, with B7-H3-CAR T cells included as a benchmark. L1CAM was expressed at variable but specific levels across RMS models, with more prominent expression in fusion-positive RMS and limited expression in healthy tissues. Among constructs, the CD28-based L1CAM.III-CAR showed the strongest cytotoxicity and IFN- release, including partial activity in a low-L1CAM model. In vivo, L1CAM.III-CAR T cells improved expansion, delayed tumor progression, and prolonged survival compared with the clinical-reference L1CAM.CT construct, although responses were incomplete and less pronounced than those achieved with B7-H3-CAR T cells. These findings support L1CAM as a rational target for L1CAM-positive RMS cases and demonstrate that CAR optimization can enhance activity against moderate-density antigens. The potent antitumor activity and favorable selectivity profile of L1CAM.III-CAR T cells support their development for pediatric sarcoma immunotherapy.
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