CELL INTELLIGENCE · 肿瘤细胞治疗研究
肿瘤细胞治疗研究
英文原题:A Genetically Engineered Macrophage-Derived Vesicular Nanodecoy Targeting the CD47/SIRPα Axis for Reinforced Tumor Radioimmunotherapy.
A Genetically Engineered Macrophage-Derived Vesicular Nanodecoy Targeting the CD47/SIRPα Axis for Reinforced Tumor Radioimmunotherapy.
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放疗虽在肿瘤治疗中有效,但常诱导恶性细胞上CD47检查点表达上调,激活CD47-SIRPα“别吃我”信号轴,抑制巨噬细胞介导的吞噬作用,从而促进免疫逃逸并最终削弱治疗效果。
在此,通过利用基因工程化巨噬细胞来源囊泡,构建了一种负载放疗增敏剂的仿生纳米诱饵(p@MVs-Sirpα),以增强肿瘤放射免疫治疗。p@MVs-Sirpα表面高表达信号调节蛋白α(SIRPα),使其能够选择性结合CD47——一种在放疗后肿瘤细胞上过表达的“别吃我”信号,从而竞争性阻断CD47/SIRPα免疫检查点并促进巨噬细胞介导的吞噬作用。
此外,该纳米诱饵负载了放疗增敏剂多金属氧酸盐(POMs),通过调节肿瘤免疫微环境进一步增强放疗疗效。这种双功能策略不仅促进肿瘤细胞的免疫清除,还增强了放疗诱导的抗肿瘤反应。p@MVs-Sirpα在多种小鼠模型中有效抑制已建立肿瘤的进展。
此外,在肿瘤再攻击实验中,观察到强大而持久的免疫记忆,表明对肿瘤复发的长期保护。总之,本研究为利用基因工程化囊泡基纳米诱饵破坏放疗诱导的免疫逃逸并增强放射免疫治疗疗效提供了一个有前景的概念验证。
Radiotherapy, while effective in tumor treatment, often induces upregulation of CD47 checkpoint expression on malignant cells, activating the CD47-SIRPα "don't eat me" signaling axis to inhibit macrophage-mediated phagocytosis, thereby promoting immune evasion and ultimately compromising therapeutic efficacy.
Herein, a radiosensitizer-loaded biomimetic nanodecoy (p@MVs-Sirpα) is constructed by harnessing genetically engineered macrophage-derived vesicles to enhance tumor radioimmunotherapy. p@MVs-Sirpα displays the high surface expression of signal regulatory protein α (SIRPα), enabling it to selectively bind to CD47, a "don't eat me" signal overexpressed on tumor cells post radiotherapy, thereby competitively blocking the CD47/SIRPα immune checkpoint and promoting macrophage-mediated phagocytosis.
Additionally, the nanodecoy is loaded with the radiosensitizing agent polyoxometalates (POMs), which further enhance the efficacy of radiotherapy by modulating the tumor immune microenvironment. This dual-function strategy not only facilitates the immune clearance of tumor cells but also potentiates radiotherapy-induced antitumor responses. p@MVs-Sirpα effectively inhibits the progression of established tumors in multiple murine models.
Moreover, in tumor rechallenge experiments, robust and durable immune memory was observed, indicating long-term protection against tumor relapse. Collectively, this study provides a promising proof-of-concept for employing genetically engineered vesicle-based nanodecoy to disrupt radiation-induced immune escape and augment the therapeutic outcomes of radioimmunotherapy.
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