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仿生氧化 mRNA 脂质纳米颗粒用于体外工程化靶向实体瘤的嵌合抗原受体巨噬细胞

英文原题:Bioinspired oxidized mRNA lipid nanoparticles for ex vivo engineering of chimeric antigen receptor macrophages targeting solid tumors.

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Bioinspired oxidized mRNA lipid nanoparticles for ex vivo engineering of chimeric antigen receptor macrophages targeting solid tumors.

PubMed 2026/03/30(内容时间) Bioeng Transl Med Q1 · IF 6.2(JCR 2025)

研究概要

实体瘤仍然难以通过传统和新型治疗策略进行治疗。

中文摘要

实体瘤仍难以通过传统及新型治疗策略有效控制。CAR-T(CAR-T)细胞等免疫疗法治疗血液系统肿瘤疗效显著,但用于实体瘤时疗效受限。近期,CAR巨噬细胞(CAR-M)作为实体瘤免疫治疗的有前景选择受到关注,主要因其具有天然的肿瘤浸润能力和效应功能。然而,CAR-M通常通过病毒转导进行工程化,该方法可能引起异常免疫原性和毒性。为克服这些问题,我们开发了一种仿生氧化脂质纳米颗粒(LNP)平台,用于基于mRNA的人CAR-M工程化。研究合成了24种可电离脂质,制备成LNP并筛选其向人巨噬细胞的递送能力。随后对表现最佳的LNP采用正交试验设计进行优化,并通过优化微流控混合参数调节粒径和mRNA包封等理化性质;所得LNP制剂的表现显著优于金标准C12-200 LNP。通过使用小分子和抗体抑制剂,我们证明优化LNP被巨噬细胞摄取是由不依赖载脂蛋白E的大胞饮作用驱动;这一结果也与其静脉注射小鼠后表现出的强脾脏嗜性(肝外组织靶向性)相符。最后,我们展示了该LNP平台的转化潜力:在离体条件下利用它将原代人源HER2-CAR-M工程化为具有功能的细胞,并在与卵巢癌细胞离体共培养中验证其强效、抗原特异性肿瘤杀伤能力。这一仿生氧化LNP平台有望用于工程化多种人源CAR-M免疫疗法,以治疗不同类型实体瘤。

展开英文摘要原文

Solid tumors remain difficult to treat via conventional and novel therapeutic strategies. Immunotherapies such as chimeric antigen receptor T (CAR-T) cell therapy have been remarkably effective in treating hematological cancers, but their efficacy is limited in solid tumors. Recently, CAR macrophages (CAR-Ms) have emerged as a promising solid tumor immunotherapy, primarily for their intrinsic tumor infiltration and effector functions. However, CAR-Ms are engineered using viral transduction, which is associated with aberrant immunogenicity and toxicity. To overcome these challenges, we developed a bioinspired oxidized lipid nanoparticle (LNP) platform for mRNA-based engineering of human CAR-Ms. A library of 24 ionizable lipids was synthesized, formulated into LNPs, and screened for delivery to human macrophages. The top LNP was subsequently optimized using an orthogonal design of experiments and the physicochemical properties, such as size and mRNA encapsulation, were tuned via optimization of microfluidic mixing parameters, yielding an LNP formulation that significantly outperformed a gold standard C12-200 LNP. Utilizing small molecule and antibody inhibitors, we demonstrate that uptake of optimized LNPs into macrophages is driven by apolipoprotein E independent macropinocytosis, which is further supported by potent extrahepatic spleen tropism upon intravenous administration to mice. Lastly, we demonstrate the translatability of this LNP platform and utilize it to engineer functional primary human HER2-CAR-Ms ex vivo with potent antigen-specific tumor cell killing, validated in an ex vivo co-culture with ovarian cancer cells. This bioinspired oxidized LNP platform demonstrates potential for engineering a range of human CAR-M immunotherapies to treat various types of solid tumors.

论文信息

作者
Mukalel AJ、Tylek T、Geisler HC、O'Brien E、Frazee C、Li J、Thatte AS、Safford HC
单位
Department of Bioengineering University of Pennsylvania Philadelphia Pennsylvania USA.United States
期刊
Bioengineering & translational medicine2026 May
原文标识
PubMed 42272981 · DOI 10.1002/btm2.70138