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:Engineering CLL-1 CAR-NK cells via mRNA-LNP for potent antitumor activity and reversal of HLA-E-mediated resistance in acute myeloid leukemia.
瞬时、非整合的 mRNA LNP 转染的 CLL-1 CAR-NK 细胞为 MDR AML 提供了一种安全有效的策略。
**背景:**急性髓系白血病(AML)仍是高度致死性恶性肿瘤,复发主要由化疗或靶向治疗耐药所致。现有CAR-T(CAR-T)细胞策略受毒性和制造复杂性限制,因此需要开发瞬时、可控且安全的 CAR 工程化平台,以选择性靶向多药耐药(MDR)AML 细胞。**方法:**我们开发了基于脂质纳米颗粒(LNP)的 mRNA 递送平台,可规模化制备靶向 C 型凝集素样分子-1(CLL-1)的 CAR-NK 细胞。我们在离体条件下评估其 NK 表型、细胞毒性、细胞因子分泌及安全性,靶细胞包括 AML 细胞系和患者来源原始细胞;并在 NSG 小鼠异种移植模型中评估体内疗效。我们还通过转录组分析、调节 NKG2A/HLA-E 轴及功能性研究 JAK2-STAT1 信号通路,考察适应性耐药机制。**结果:**对不同 AML 队列的药物应答谱分析发现一个具有独特转录特征的多药耐药亚群,其中 CLL-1 是唯一表达上调且经验证的 CAR 靶点。mRNA-LNP 转染可高效制备原代 CLL-1 CAR-NK 细胞,且保留其表型,并对 AML 细胞表现出强效、抗原特异性细胞毒性,同时不损伤正常造血祖细胞。体内反复输注 CAR-NK 细胞显著抑制白血病进展并延长生存。CAR-NK 细胞作用后存活的肿瘤细胞出现炎症激活,并逐渐上调 HLA-E,进而损害 CAR-NK 功能。阻断 NKG2A 可恢复离体细胞毒性,并增强体内白血病清除和生存获益。从机制上看,持续 CAR-NK 细胞接触或 IFN-γ 刺激会激活 JAK2-STAT1 轴,驱动 HLA-E 持续表达。敲低 JAK2 可降低 HLA-E 表达并使 AML 细胞对 CAR-NK 杀伤更敏感;药理学抑制 JAK2 也可降低 HLA-E,但同时会损害 NK 细胞活化,因而限制总体治疗获益。**结论:**瞬时、非整合型 mRNA-LNP 转染的 CLL-1 CAR-NK 细胞为多药耐药 AML 提供了一种安全有效的策略。重复给药可产生稳健的抗肿瘤活性,而 NKG2A/HLA-E 轴介导的适应性耐药可通过检查点阻断缓解。JAK2-STAT1 通路可能是其上游调控因素,为优化 CAR-NK 治疗的合理联合方案提供了方向。
BACKGROUND: Acute myeloid leukemia (AML) remains a highly lethal malignancy, with relapse primarily driven by resistance to chemotherapy or targeted therapies. Existing chimeric antigen receptor T cell (CAR-T) strategies are limited by toxicity and complex manufacturing, underscoring the need for transient, controllable, and safe CAR-engineering platforms that can selectively target multidrug-resistant (MDR) AML cells. METHODS: We developed a lipid nanoparticle (LNP) based mRNA delivery platform for scalable generation of C-type lectin-like molecule-1 (CLL-1) CAR-NK cells. NK phenotype, cytotoxicity, cytokine secretion, and safety were evaluated ex vivo against AML cell lines and patient-derived blasts, with in vivo efficacy tested in xenograft NSG mouse models. Mechanisms of adaptive resistance were investigated through transcriptomic profiling, modulation of the NKG2A/HLA-E axis, and functional interrogation of the JAK2 STAT1 signaling pathway. RESULTS: Drug-response profiling across AML cohorts identified a multidrug-resistant subgroup marked by a distinct transcriptomic program in which CLL-1 was the only validated CAR target upregulated. mRNA LNP transfection enabled efficient generation of primary CLL-1 CAR-NK cells with preserved phenotype and potent, antigen-specific cytotoxicity against AML cells, while sparing normal hematopoietic progenitors. In vivo, repeated CAR-NK infusions markedly suppressed leukemia progression and prolonged survival. Transcriptomic analyses of tumor cells surviving CAR-NK exposure revealed inflammatory activation with progressive HLA-E upregulation, which impaired CAR-NK function. NKG2A blockade restored cytotoxicity ex vivo and enhanced leukemia clearance and survival in vivo. Mechanistically, prolonged CAR-NK engagement or IFN- stimulation activated a JAK2 STAT1 axis that drove sustained HLA-E induction. JAK2 knockdown reduced HLA-E expression and sensitized AML cells to CAR-NK mediated killing, whereas pharmacologic JAK2 inhibition also decreased HLA-E expression but concurrently impaired NK-cell activation, thereby limiting the overall therapeutic benefit. CONCLUSIONS: Transient, non-integrating mRNA LNP transfected CLL-1 CAR-NK cells provide a safe and effective strategy for MDR AML. Repeated dosing enables robust antitumor activity, while adaptive resistance via NKG2A/HLA-E axis can be mitigated through checkpoint blockade. The JAK2 STAT1 pathway represents a potential upstream modulator, providing opportunities for rational combinatorial approaches to optimize CAR-NK therapy.
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