为肝细胞癌武装 GPC3 CAR-T 细胞:多少才足够,下一步是什么?
Armouring GPC3 CAR T cells for hepatocellular carcinoma: how much is enough and what comes next?
英文原题:An in situ generated CAR-M with IFN-γ and negative dominance Sirpα isoform augments hepatocellular carcinoma immunotherapy.
An in situ generated CAR-M with IFN-γ and negative dominance Sirpα isoform augments hepatocellular carcinoma immunotherapy.
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这项工作提出了一种可增强吞噬功能并维持抗肿瘤活性的新型 CAR 设计,为人类实体瘤免疫治疗提供了一种有前景的策略。
嵌合抗原受体(CAR)T细胞在血液系统恶性肿瘤中显示出较强疗效,但在实体瘤中的成功有限。巨噬细胞具有天然肿瘤浸润、调节免疫和吞噬癌细胞的能力,经CAR工程化后有望成为替代方案。尽管研究已证明CAR巨噬细胞(CAR-M)的可行性和抗肿瘤活性,提高其持久性和吞噬能力仍是关键挑战。 方法与结果:在第一代基于CD3ζ的CAR-M基础上,我们开发了一种新型靶向人GPC3的CAR,其中整合IFN-γ和SIRPα胞外结构域(SIRPα ECD),以提高CAR-M持久性并阻断CD47-SIRPα免疫检查点。通过脂质纳米颗粒包裹的mRNA(LNP-mRNA)递送后,细胞自分泌的IFN-γ通过磷酸化STAT1激活维持M1极化。同时,异位表达的SIRPα ECD与肿瘤细胞上的CD47竞争性结合,以显性负效应阻断内源性SIRPα-SHP2相互作用。与仅含CD3ζ的CAR-M相比,该设计增强了促炎活性和抗肿瘤效能。单细胞RNA测序和细胞分析显示,在小鼠肝细胞癌(HCC)模型中,原位编程的CAR-M可将肿瘤微环境重塑为炎症状态。此外,源自人外周血单个核细胞(PBMC)的CAR-M能有效吞噬人HCC类器官,同时保留健康组织,显示出临床应用潜力。
本研究提出一种新型CAR设计,可增强吞噬功能并维持抗肿瘤活性,为人类实体瘤免疫治疗提供有前景的策略。
BACKGROUND AND AIMS: Chimeric antigen receptor (CAR) T cells have shown strong efficacy in hematological cancers but limited success in solid tumors. Macrophages, with their natural ability to infiltrate tumors, modulate immunity, and phagocytose cancer cells, offer a promising alternative when engineered with CARs. While studies have demonstrated the feasibility and anti-tumor activity of CAR macrophages (CAR-M), enhancing their persistence and phagocytic capacity remains a key challenge. METHODS AND RESULTS: Building on first-generation CD3 -based CAR-M, we developed a novel CAR targeting human GPC3, incorporating IFN- and the extracellular domain of SIRP (SIRP ECD ) to improve CAR-M persistence and block the CD47-SIRP immune checkpoint. Following delivery via lipid nanoparticle-encapsulated mRNA (LNP-mRNA), the self-secreted IFN- sustained M1 polarization through phospho-STAT1 activation. Meanwhile, the ectopically expressed SIRP ECD competitively bound to CD47 on tumor cells, thereby blocking the endogenous SIRP -SHP2 interaction in a dominant-negative manner. This design enhanced pro-inflammatory activity and anti-tumor efficacy compared to CD3 -only CAR-M. Single-cell RNA sequencing and cellular analysis showed that in situ programmed CAR-M reprogrammed the tumor microenvironment toward inflammation in a murine hepatocellular carcinoma (HCC) model. Moreover, CAR-M derived from human peripheral blood mononuclear cells (PBMCs) effectively phagocytosed human HCC organoids while sparing healthy tissues, indicating clinical potential. CONCLUSIONS: Collectively, our work presents a novel CAR design that enhances phagocytic function and sustains anti-tumor activity, offering a promising strategy for human solid tumor immunotherapy.
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