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工程化噬菌体在肿瘤免疫治疗中的应用:新兴概念及与 CAR-T 细胞治疗整合的潜力

英文原题:Engineered Bacteriophages in Cancer Immunotherapy: Emerging Concepts and Potential Integration with CAR-T Cell Therapy.

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Engineered Bacteriophages in Cancer Immunotherapy: Emerging Concepts and Potential Integration with CAR-T Cell Therapy.

PubMed 2026/09/14(内容时间) Folia Biol (Praha) Q3 · IF 1.8(JCR 2025)

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中文摘要

由于抗原异质性、免疫细胞运输受限以及免疫抑制和营养受限的肿瘤微环境,实体瘤对现代免疫疗法仍具有耐药性。工程化噬菌体提供了一种模块化框架来克服这些障碍:可编程的病毒样颗粒,具有可扩展的生产能力。通过基因组工程、用哺乳动物细胞靶向配体装饰衣壳,或杂交 AAV/噬菌体系统,工程化噬菌体可以展示肿瘤相关抗原,增强受体介导的摄取,并递送治疗性载荷,如细胞因子、趋化因子和自杀基因,而不会自然感染哺乳动物细胞。这些特性支持其作为疫苗平台、免疫佐剂和靶向基因递送载体的应用。这些可能实现更精确、肿瘤局部化的治疗干预。噬菌体可以参与先天免疫通路,包括 TLR9、TLR3/7/8、cGAS-STING 和 AIM2,促进树突状细胞成熟和炎症介质产生,可能将免疫学“冷”肿瘤转化为炎症微环境。

其多价抗原展示增强 B 细胞和 T 细胞致敏,而 cDC1 介导的交叉呈递支持细胞毒性 CD8+ T 细胞反应和免疫记忆。在 CAR-T 疗法中,工程化噬菌体可能通过趋化因子调节改善肿瘤归巢,通过局部细胞因子递送支持持久性,通过呈递多个肿瘤表位减少抗原逃逸,并通过显性负性受体策略或局部检查点阻断限制 T 细胞耗竭。本综述总结了工程化方法、递送系统、制造、生物分布、给药和安全性问题,包括免疫原性、预存抗噬菌体抗体和水平基因转移。它还将治疗性工程噬菌体颗粒与用于分子发现的噬菌体展示技术区分开来。尽管将修饰噬菌体与CAR-T 细胞疗法整合取得了令人鼓舞的结果,但证据大多仍处于临床前阶段,这表明既有巨大的转化前景,也存在未来临床开发的关键障碍。

展开英文摘要原文

Due to antigen heterogeneity, restricted immune cell trafficking and an immunosuppressive, nutrient-restricted tumour microenvironment, solid tumours remain resistant to modern immunotherapies. Engineered bacteriophages offer a modular framework to overcome these obstacles: programmable virus-like particles with scalable production. Through genome engineering, capsid decoration with mammalian cell-targeting ligands, or hybrid AAV/phage systems, engineered bacteriophages can display tumour-associated antigens, enhance receptor-mediated uptake and deliver therapeutic payloads such as cytokines, chemokines and suicide genes without naturally infecting mammalian cells. These features support their use as vaccine platforms, immunological adjuvants and targeted gene-delivery vehicles. These may enable more precise, tumour-localized therapeutic intervention. Phages can engage innate immune pathways, including TLR9, TLR3/7/8, cGAS-STING and AIM2, promoting dendritic cell maturation and inflammatory mediators that may convert immunologically "cold" tumours into inflamed microenvironments.

Their multivalent antigen display enhances B- and T-cell priming, while cDC1-mediated cross-presentation supports cytotoxic CD8+ T-cell responses and immunological memory. In CAR-T therapy, engineered phages may improve tumour homing through chemokine modulation, support persistence through local cytokine delivery, reduce antigen escape by presenting multiple tumour epitopes, and limit T-cell exhaustion through dominant-negative receptor strategies or local checkpoint blockade.

This review summarizes engineering approaches, delivery systems, manufacturing, biodistribution, dosing, and safety issues, including immunogenicity, pre-existing anti-phage antibodies and horizontal gene transfer. It also distinguishes therapeutic engineered phage particles from phage display technologies used for molecular discovery.

Despite encouraging results integrating modified bacteriophages with CAR-T cell therapy, the evidence remains mostly preclinical, indicating both substantial translational prospects and crucial obstacles for future clinical development.

论文信息

作者
Alrahimi J
单位
Department of Biological Sciences, Faculty of Sciences, King Abdulaziz University, Jeddah 21589, Saudi Arabia. Jalrehimi@kau.edu.sa.Saudi Arabia
期刊
Folia biologica2026 Sep 14
原文标识
PubMed 42734043 · DOI 10.14712/fb2026.0018