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通过 mRNA-LNP 工程化 CLL-1 CAR-NK 细胞以获得强效抗肿瘤活性并逆转急性髓系白血病中 HLA-E 介导的耐药

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.

PubMed 2026/03/17(内容时间) J Exp Clin Cancer Res Q1 · IF 14.3(JCR 2025)

研究概要

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。

中文摘要

**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。

展开英文摘要原文

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.

论文信息

作者
Shen J、Jin P、Liang Y、Zhu J、Xiang R、Li Z、Zhu H、Li X
第一作者单位
Shanghai Institute of Hematology, State Key Laboratory of Medical Genomics, National Research Center for Translational Medicine at Shanghai, Ruijin Hospital Affiliated to Shanghai Jiao Tong University School of Medicine, Shanghai, China.China
通讯作者单位
Shanghai Institute of Hematology, State Key Laboratory of Medical Genomics, National Research Center for Translational Medicine at Shanghai, Ruijin Hospital Affiliated to Shanghai Jiao Tong University School of Medicine, Shanghai, China. drlijunmin@126.com.China
期刊
Journal of experimental & clinical cancer research : CR2026 Mar 17
原文标识
PubMed 41845478 · DOI 10.1186/s13046-026-03689-4