工程化益生菌用于肿瘤靶向联合化学免疫治疗
Engineered probiotics for tumor-targeted combination chemoimmunotherapy.
CELL INTELLIGENCE · 肿瘤细胞治疗研究
肿瘤细胞治疗研究
英文原题:Combination of genetically engineered T cells and immune checkpoint blockade for the treatment of cancer.
Combination of genetically engineered T cells and immune checkpoint blockade for the treatment of cancer.
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使用单克隆抗体的免疫检查点(IC)阻断目前是治疗癌症最成功的免疫治疗干预措施之一。通过重新激活抗肿瘤耗竭T细胞,这种方法可以带来持久的临床反应。
然而,大多数患者要么对IC阻断无反应,要么表现出短暂的反应,部分原因是肿瘤微环境中肿瘤特异性T细胞的稀缺。过继转移经基因工程改造以表达嵌合抗原受体(CAR)或工程化T细胞受体(TCR)的T细胞,提供了靶向癌细胞所需的肿瘤特异性免疫细胞群。
然而,这种疗法对实体瘤的效果相当不理想,部分原因是肿瘤微环境中IC介导的免疫抑制效应。通过将基因工程T细胞的过继细胞转移与IC阻断相关联,这些局限性可能被克服。在这篇综合综述中,我们重点介绍了在过继T细胞转移抗肿瘤中破坏IC信号的临床前和临床尝试的策略和结果。这些策略包括基因工程T细胞与IC抑制剂的联合给药、具有内在修饰以破坏IC信号的工程化T细胞,以及针对IC分子的CAR设计。当前格局表明,基因编辑技术和合成生物学的快速改进与对IC信号理解的加深之间的协同作用,必将转化为一种新颖且更有效的免疫治疗方法,用于治疗癌症患者。
Immune checkpoint (IC) blockade using monoclonal antibodies is currently one of the most successful immunotherapeutic interventions to treat cancer. By reinvigorating antitumor exhausted T cells, this approach can lead to durable clinical responses.
However, the majority of patients either do not respond or present a short-lived response to IC blockade, in part due to a scarcity of tumor-specific T cells within the tumor microenvironment. Adoptive transfer of T cells genetically engineered to express chimeric antigen receptors (CARs) or engineered T-cell receptors (TCRs) provide the necessary tumor-specific immune cell population to target cancer cells.
However, this therapy has been considerably ineffective against solid tumors in part due to IC-mediated immunosuppressive effects within the tumor microenvironment. These limitations could be overcome by associating adoptive cell transfer of genetically engineered T cells and IC blockade. In this comprehensive review, we highlight the strategies and outcomes of preclinical and clinical attempts to disrupt IC signaling in adoptive T-cell transfer against cancer.
These strategies include combined administration of genetically engineered T cells and IC inhibitors, engineered T cells with intrinsic modifications to disrupt IC signaling, and the design of CARs against IC molecules. The current landscape indicates that the synergy of the fast-paced refinements of gene-editing technologies and synthetic biology and the increased comprehension of IC signaling will certainly translate into a novel and more effective immunotherapeutic approaches to treat patients with cancer.
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