工程化益生菌用于肿瘤靶向联合化学免疫治疗
Engineered probiotics for tumor-targeted combination chemoimmunotherapy.
我们的方法将酶/前药治疗和免疫治疗整合到一个单一的细菌递送系统中,通过提供合理设计的空间控制化学免疫治疗框架,克服了传统疗法的关键局限性。
英文原题:Fluorinated lipid nanoparticles enable in vivo CAR-macrophage therapy in solid tumor and enhance anti PD-L1 immunotherapy.
值得注意的是,当与抗PD-L1阻断联合使用时,该策略在MC38-hPSMA荷瘤小鼠中实现了100%的完全且持久的消退。
体内 CAR-M 疗法利用巨噬细胞的肿瘤趋向性归巢、吞噬能力以及重塑免疫抑制性肿瘤微环境的能力,具有较低的细胞因子释放综合征风险,并具备作为现货型疗法的潜力。然而,临床转化目前受限于缺乏高效的非病毒平台用于原位巨噬细胞工程化。为应对这一挑战,理性设计了氟化可电离脂质——利用氟的高电负性、低极化率和疏脂性——以增强脂质纳米颗粒递送。筛选包含 80 种氟化脂质的文库后,鉴定出 A1F5C5 作为先导候选物,在体外和体内均展现出对巨噬细胞的优越 mRNA 递送。对机制的探究揭示,虽然氟化普遍增强了细胞摄取和随后的内体解离,但含有五个氟原子的特定构型独特地赋予了优越的膜融合能力,这被证明对于实现高效内体逃逸至关重要。利用该平台配制了封装编码靶向 hPSMA 的 CAR 的 mRNA 的 F5-LNP。静脉注射 F5-CAR 重编程了肿瘤微环境,减少了 M2 样巨噬细胞,并增强了 CD8 + T 细胞中颗粒酶 B 和穿孔素的表达。值得注意的是,当与抗 PD-L1 阻断联合使用时,该策略在 MC38-hPSMA 荷瘤小鼠中实现了 100% 完全且持久的消退。这项工作确立了氟化 LNP 作为针对实体瘤的体内 CAR-M 工程化的可扩展平台。
In vivo CAR-macrophage (CAR-M) therapy exploits macrophages' tumor-tropic homing, phagocytic capacity, and ability to remodel the immunosuppressive tumor microenvironment, with low risk of cytokine release syndrome and potential as an off-the-shelf therapy. However, clinical translation is currently constrained by the lack of efficient non-viral platforms for in situ macrophage engineering. To address this challenge, fluorinated ionizable lipids were rationally designed-capitalizing on fluorine's high electronegativity, low polarizability, and lipophobicity-to enhance lipid nanoparticle (LNP) delivery. Screening a library of 80 fluorinated lipids identified A1F5C5 as the lead candidate, demonstrating superior mRNA delivery to macrophages both in vitro and in vivo. Our investigation into the mechanism revealed that, while fluorination universally enhanced both cellular uptake and subsequent endosomal dissociation, the specific configuration with five fluorine atoms uniquely conferred a superior membrane fusion capability, which proved critical for achieving efficient endosomal escape. F5-LNPs encapsulating mRNA encoding an hPSMA-targeted CAR (F5-CAR) were formulated using this platform. Intravenous F5-CAR administration reprogrammed the tumor microenvironment, reducing M2-like macrophages and boosting granzyme B and perforin expression in CD8 + T cells. Notably, when combined with anti-PD-L1 blockade, this strategy achieved 100% complete and durable regression in MC38-hPSMA tumor-bearing mice. This work establishes fluorinated LNPs as a scalable platform for in vivo CAR-M engineering against solid tumors.
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