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纳米仿生细菌武装的过继巨噬细胞疗法对抗膀胱癌

英文原题:Nano-bionic bacteria armed adoptive macrophage therapy against bladder cancer.

PubMed 2026/04/22(内容时间) Mater Today Bio Q1 · IF 11(JCR 2025)

研究概要

膀胱癌是一种高度恶性的肿瘤,治疗方案有限。

中文摘要

膀胱癌是一种高度恶性的肿瘤,治疗选择有限。尽管过继性细胞疗法在肿瘤学中显示出前景,但其疗效往往受到内在抗肿瘤活性不足和高度免疫抑制性肿瘤微环境的限制。为应对这些挑战,本研究开发了一种新型的活性过继性巨噬细胞疗法,以纳米仿生细菌武装用于膀胱癌治疗。具体而言,合成了中空二氧化锰(MnO₂)纳米颗粒,负载腺苷抑制剂,并包覆大肠杆菌膜。在温和条件下,这些纳米细菌颗粒被巨噬细胞内化,将其转化为活性细胞药物工厂。在膀胱内积聚后,这些工程化巨噬细胞主动浸润肿瘤组织。来自细菌膜的脂多糖(LPS)以及Mn²⁺离子激活了巨噬细胞中的STING通路,促进并维持M1样抗肿瘤表型。活化的巨噬细胞释放促炎细胞因子,从而刺激肿瘤内的驻留免疫细胞并启动强大的抗肿瘤免疫。此外,巨噬细胞释放腺苷抑制剂,同时MnO₂产生氧气,协同对抗腺苷介导的免疫抑制。在皮下肿瘤模型中,这种纳米仿生细菌武装的巨噬细胞疗法显著增强了针对膀胱癌的治疗效果。Mac@ABMn触发了肿瘤微环境的重编程,导致抗肿瘤免疫增强,其特征是活化的CD4⁺和CD8⁺T细胞浸润增加,而不扩增调节性T细胞(Tregs),从而将微环境转向强效免疫刺激状态。免疫刺激效应在分子水平上由cGAS/STING/TBK1/IFN-β信号轴所定义,且Mac@ABMn与BCG或抗PD-L1检查点阻断等标准免疫疗法联合时表现出显著的协同疗效,从而实现更优的肿瘤控制。总体而言,本研究开发了一种新型治疗方案,其特点是用细菌膜包被纳米颗粒工程化改造的巨噬细胞通过STING通路被激活,以维持抗肿瘤M1表型,同时缓解缺氧并清除免疫抑制性腺苷。

展开英文摘要原文

Bladder cancer is a highly malignant tumor with limited treatment options. Although adoptive cell therapy has shown promise in oncology, its efficacy is often constrained by poor intrinsic antitumor activity and a highly immunosuppressive tumor microenvironment. To address these challenges, this study develops a novel living adoptive macrophage therapy armed with nano-bionic bacteria for bladder cancer treatment. Specifically, hollow manganese dioxide (MnO 2 ) nanoparticles were synthesized, loaded with an adenosine inhibitor, and coated with E. coli membranes. Under mild conditions, these nano-bacterial particles were internalized by macrophages, transforming them into living cell drug factories. Upon accumulation into the bladder, these engineered macrophages actively infiltrated tumor tissues. Lipopolysaccharide (LPS) from the bacterial membrane, along with Mn 2+ ions, activated the STING pathway in macrophages, promoting and sustaining an M1-like antitumor phenotype. The activated macrophages released pro-inflammatory cytokines, thereby stimulating resident immune cells within the tumor and initiating robust antitumor immunity. Additionally, the macrophages released the adenosine inhibitor while MnO 2 generated oxygen, synergistically counteracting adenosine-mediated immunosuppression. In a subcutaneous tumor model, this nano-bionic bacteria-armed macrophage therapy significantly enhanced the therapeutic outcome against bladder cancer. Mac@ABMn triggered reprogramming of the tumor microenvironment, resulting in enhanced anti-tumor immunity, characterized by increased infiltration of activated CD4 + and CD8 + T cells without expanding regulatory T cells (Tregs), thereby shifting the milieu toward a potent immunostimulatory state. The immunostimulatory effect is molecularly defined by the cGAS/STING/TBK1/IFN-β signaling axis, and Mac@ABMn demonstrates significant synergistic efficacy when combined with standard immunotherapies like BCG or anti-PD-L1 checkpoint blockade, leading to superior tumor control. Collectively, this study developed a novel therapy regiment, featuring macrophages engineered with bacterial membrane-coated nanoparticles are activated via the STING pathway to sustain an anti-tumor M1 phenotype while simultaneously alleviating hypoxia and scavenging immunosuppressive adenosine.

论文信息

作者
Wang P、Ye F、Wang H、Liu J、Li B
单位
Department of Urology, Shengjing Hospital of China Medical University, Shenyang, Liaoning, China.China
期刊
Materials today. Bio2026 Jun
原文标识
PubMed 42099990 · DOI 10.1016/j.mtbio.2026.103130