决定异体 CAR T 细胞排斥与扩增的细胞和分子机制
Cellular and molecular mechanisms determining allogeneic CAR T cell rejection and expansion.
英文原题:Engineering oncolytic bacteria as precision cancer therapeutics: design principles, therapeutic strategies, and translational perspectives.
Engineering oncolytic bacteria as precision cancer therapeutics: design principles, therapeutic strategies, and translational perspectives.
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工程化溶瘤细菌正在成为精准癌症治疗的一种有前景平台,兼具天然肿瘤趋向性、免疫原性及可编程基因调控能力。合成生物学的进展使研究者能够设计诱导型和自主型调控回路,以感知外源输入(化学或物理信号)、细菌自身信号(群体感应、细菌侵袭开关或一氧化氮响应启动子)及肿瘤特异性病理生理特征(缺氧、低pH或乳酸)。这些设计可调节细菌定植、裂解及治疗载荷的时空局限性释放,载荷包括前药转化酶、细胞因子及抗体/纳米抗体片段,从而增强抗肿瘤疗效并限制脱靶毒性。除单药治疗外,溶瘤细菌还可与互补疗法结合,包括免疫检查点阻断、过继细胞疗法(CAR-T/NK)、放疗/化疗、纳米医学和溶瘤病毒,以增强免疫活化并实现多模式协同方案。
同时,生物传感器模块可将细菌底盘转变为可编程“微生物工厂”,在肿瘤微环境中将治疗与实时成像及适应性应答相结合。本综述综合了细菌基因调控的设计原则,概述近期临床前进展和新兴联合策略,并提出安全性、可制造性、剂量及患者选择等转化考量。
总体而言,这些进展使工程化溶瘤细菌成为有前景的细菌疗法路径,有望实现安全、有效并最终个体化的癌症治疗。
Engineered oncolytic bacteria are emerging as a promising platform for precision cancer therapy, combining inherent tumor tropism, immunogenicity, and programmable gene control. Advances in synthetic biology now enable inducible and autonomous circuits that sense exogenous inputs (chemical signals or physical signals), bacterial self-cues (quorum sensing, bacterial invasion switches, or nitric oxide-responsive promoters), and tumor-specific pathophysiology (hypoxia, low pH, or lactate). These designs regulate colonization, lysis, and the spatiotemporally confined release of therapeutic cargos-including prodrug-converting enzymes, cytokines, and antibody/nanobody fragments-thereby enhancing antitumor efficacy while limiting off-target toxicity.
Beyond monotherapy, oncolytic bacteria integrate with complementary modalities-including immune checkpoint blockade, adoptive cell therapies (CAR-T/NK), radiotherapy/chemotherapy, nanomedicine, and oncolytic viruses-to amplify immune activation and to enable multimodal, synergistic regimens.
Concurrently, biosensor modules transform bacterial chassis into programmable "microbial factories" that couple therapy with real-time imaging and adaptive responses within the tumor microenvironment. This review synthesizes design principles for bacterial gene regulation, surveys recent preclinical advances, and highlights emerging combination strategies, while outlining translational considerations for safety, manufacturability, dosing, and patient selection.
Together, these developments position engineered oncolytic bacteria as a promising route toward safe, effective, and ultimately personalized bacteria-based cancer therapeutics.
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