研究概要
工程化细菌通过先天免疫原性和局部治疗递送,有望重塑免疫抑制性肿瘤微环境。
中文摘要
工程菌通过固有免疫原性和局部治疗递送,展现出重塑免疫抑制性肿瘤微环境的潜力。尽管细菌来源代谢物日益被认为是关键介质,但其在跨界串扰中的具体作用仍未被充分探索。在此,我们开发了一种可编程益生菌平台,利用加氏乳杆菌(LG)与肿瘤的代谢互作来增强膀胱癌治疗。所选LG菌株表现出优异的肿瘤定植能力和内在的H2O2/乳酸生物合成,为血红蛋白修饰的MnOx纳米颗粒创造最佳肿瘤微环境以增强化学动力学治疗疗效。机制上,微生物代谢物包括L-亮氨酸,通过抑制促血管生成的dcTRAIL-R1+中性粒细胞并激活抗原呈递CD74+中性粒细胞群,协调中性粒细胞表型重编程。该工程系统通过多种机制引发协同免疫调节:(1)促进树突状细胞成熟,(2)增加CD74+中性粒细胞群,(3)诱导巨噬细胞从M2向M1表型极化,(4)增强CD8+ T细胞和NK 细胞的肿瘤浸润。本研究揭示细菌-肿瘤代谢串扰上调有益代谢物,尤其是亮氨酸,其促进中性粒细胞向抗原呈递CD74+亚群的表型重编程,从而桥接固有代谢调节与适应性抗肿瘤免疫。这一发现超越了以往益生菌-纳米材料系统以材料为中心的逻辑,建立了以代谢为中心的细菌介导癌症免疫治疗框架。
展开英文摘要原文
Engineered bacteria hold promise for remodeling immunosuppressive tumor microenvironments through innate immunogenicity and localized therapeutic delivery. While bacterial-derived metabolites are increasingly recognized as key mediators, their specific roles in interkingdom crosstalk remain underexplored. Here, we develop a programmable probiotic platform leveraging Lactobacillus gasseri (LG)-tumor metabolic interplay to potentiate bladder cancer therapy. The selected LG strain demonstrates superior tumor-colonizing ability and intrinsic H 2 O 2 /lactate biosynthesis, creating an optimal tumor microenvironment for hemoglobin-modified MnOx nanoparticles to enhance chemodynamic therapy efficacy. Mechanistically, microbial metabolites, including L-leucine, orchestrate neutrophil phenotypic reprogramming by suppressing pro-angiogenic dcTRAIL-R1 + neutrophils while activating antigen-presenting CD74 + neutrophil populations. The engineered system elicites coordinated immunomodulation through multiple mechanisms: (1) promoting dendritic cell maturation, (2) increasing CD74 + neutrophil populations, (3) inducing macrophage polarization from M2 to M1 phenotypes, and (4) enhancing tumor infiltration of CD8 + T cells and natural killer cells. This study reveals that bacteria-tumor metabolic crosstalk upregulates beneficial metabolites, notably leucine, which promotes phenotypic reprogramming of neutrophils toward the antigen‑presenting CD74 + subset, thereby bridging innate metabolic regulation with adaptive antitumor immunity. This finding goes beyond the material-centric logic of previous probiotic-nanomaterial systems and establishes a metabolism-centric framework for bacteria‑mediated cancer immunotherapy.
论文信息
- 作者
- Zhang K、Li H、Ma Z、Yu Y、Bahlol HS、Foda MF、Liang H、Han H
- 单位
- School of Chemistry, Chemical Engineering and Biotechnology, Nanyang Technological University, Singapore, Singapore.Singapore
- 期刊
- Advanced materials (Deerfield Beach, Fla.)2026 Jul 31