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:Affinity-matured CD72-targeting nanobody CAR T cells enhance elimination of antigen-low B-cell malignancies.
这些发现共同支持将亲和力成熟的 CD72 nanoCAR 作为 CD19 难治性 B 细胞肿瘤的潜在免疫治疗产品。
背景:嵌合抗原受体(CAR)T细胞疗法对多种血液系统恶性肿瘤疗效显著。然而,对多数CAR靶点而言,肿瘤表面抗原密度低会显著降低治疗效果。本研究聚焦CD72;既往研究发现它是难治性B细胞癌症的潜在靶点,但临床前模型中CD72低表达可导致治疗耐药。方法:经机构审查委员会批准方案获取原代样本。亲和力成熟并人源化的纳米抗体克隆此前已有报道。通过慢病毒转导制备CAR-T细胞;采用荧光素酶标记细胞系进行体外细胞毒性实验;体内研究则在NOD scid gamma小鼠中植入细胞系来源或患者来源异种移植物。结果:首先确认CD72在多种原代B细胞非霍奇金淋巴瘤中广泛表达。进一步发现,在B-ALL模型及原代肿瘤样本中,对CD19靶向治疗耐药后,细胞表面CD72表达大体保留,而CD22表达显著降低。将靶向CD72的纳米抗体进行亲和力成熟并用于CAR-T细胞后,可在体外更有效清除CD72低表达肿瘤的同基因模型。这些结果提示,纳米抗体CAR(nanoCAR)可能与此前仅在单链可变片段CAR中证实的情形类似,其疗效受结合剂亲和力和抗原表达量共同影响。但令人意外的是,体外疗效的显著提升仅转化为有限的体内生存获益。作为增强CAR-T功能的平行策略,小分子bryostatin也可显著提高B细胞恶性肿瘤模型的CD72表面抗原密度。结构建模和生化分析确定了可改善先导亲和力成熟纳米抗体识别CD72的关键残基。结论:研究支持将亲和力成熟CD72 nanoCAR作为CD19治疗耐药B细胞癌症的潜在免疫治疗产品;尤其对于B-ALL,CD72可能比CD22更适合作为二线免疫治疗靶点。
BACKGROUND: Chimeric antigen receptor (CAR) T-cell therapies are highly efficacious for several different hematologic cancers. However, for most CAR T targets it is observed that low surface antigen density on tumors can significantly reduce therapeutic efficacy. In this study, we explore this dynamic in the context of CD72, a surface antigen we recently found as a promising target for refractory B-cell cancers, but for which CD72 low antigen density can lead to therapeutic resistance in preclinical models. METHODS: Primary samples were accessed via institutional review board-approved protocols. Affinity-matured and humanized nanobody clones were previously described in Temple et al. (2023). CAR T cells were generated via lentiviral transduction. In vitro cytotoxicity assays were performed using luciferase-labeled cell lines. In vivo studies were performed using cell line-derived or patient-derived xenografts implanted in NOD scid gamma mice. RESULTS: We first confirmed ubiquitous CD72 expression across a range of primary B-cell non-Hodgkin lymphomas. We further found that after resistance to CD19-directed therapies, across both B-cell acute lymphoblastic leukemia (B-ALL) models and primary tumor samples, surface CD72 expression was largely preserved while CD22 expression was significantly diminished. Affinity maturation of a nanobody targeting CD72, when incorporated into CAR T cells, led to more effective elimination in vitro of isogenic models of CD72 low-expressing tumors. These results suggested that nanobody-based CAR T cells (nanoCARs) may exhibit a similar relationship between binder affinity, antigen expression, and efficacy as previously demonstrated only for single chain variable fragment-based CAR T cells. Surprisingly, however, this significantly improved in vitro efficacy only translated to modest in vivo survival benefit. As a parallel strategy to enhance CAR T function, we found that the small molecule bryostatin could also significantly increase CD72 surface antigen density on B-cell malignancy models. Structural modeling and biochemical analysis identified critical residues improving CD72 antigen recognition of our lead affinity-matured nanobody. CONCLUSIONS: Together, these findings support affinity-matured CD72 nanoCARs as a potential immunotherapy product for CD19-refractory B-cell cancers. Our results also suggest that for B-ALL in particular, CD72 may be a preferable second-line immunotherapy target over CD22.
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