中文摘要
树突状细胞(DCs)在协调免疫反应中发挥着关键作用,并已成为癌症免疫治疗的潜在靶点。然而,现有的基于DC的免疫疗法面临若干临床挑战,包括操作策略欠佳、交叉呈递能力差以及迁移受损。此外,复杂的肿瘤微环境驱动DCs向耐受性状态转变,导致免疫逃逸和癌症进展。因此,在深入理解驱动DCs进入免疫受损状态相关因素的遗传和分子层面的基础上,涌现出的创新工程策略将有益于癌症免疫治疗。利用CRISPR/Cas9和病毒载体等基因编辑方法的多重编辑潜力,可确保在单次操作步骤中实现DCs的多个基因组修饰,从而产生更高的迁移能力、交叉呈递能力和免疫激活细胞因子的产生。这种高精度的精确DC修饰需要具有高表面功能化和靶向潜力的纳米载体配方的参与。在这方面,本综述全面总结了肿瘤诱导的DCs关键功能障碍以及有前景的基因组工程策略,重点介绍了基于纳米载体应对这些挑战的方法。
展开英文摘要原文
Dendritic cells (DCs) play a crucial role in the coordination of immune responses and have emerged as a potential target for cancer immunotherapy.
However, existing DC-based immunotherapies face several clinical challenges, including suboptimal manipulation strategies, poor cross-presentation, and impaired migration. Besides, the complex tumor milieu drives DCs towards a tolerogenic state, leading to immune evasion and cancer progression. Hence, innovative engineering strategies emerging from a thorough understanding of the genetic and molecular aspects of the factors driving DCs to an immune-compromised status will benefit cancer immunotherapy.
Taking advantage of the multiplexing potential of gene editing methods such as CRISPR/Cas9 and viral vectors will ensure multiple genome modifications in DCs that can result in higher migration, cross-presentation, and immune-activating cytokine production in a single manipulation step.
Such precise DC modifications with high accuracy require the involvement of nanocarrier formulations with high surface functionalization and targeting potential. In this regard, our review provides a comprehensive summary of critical tumor-induced dysfunctions in DCs and promising genome engineering strategies, highlighting nanocarrier-based approaches to mitigate these challenges.
论文信息
- 作者
- Prakash M、Cortez CD、Jayaraman A、Hsu SY、Huang YC、Yeh CY、Lee YL
- 第一作者单位
- Institute of Biomedical Sciences, Academia Sinica, Taipei, Taiwan.Taiwan
- 通讯作者单位
- Institute of Biomedical Sciences, Academia Sinica, Taipei, Taiwan. leolee@ibms.sinica.edu.tw.Taiwan
- 文献类型
- 综述
- 期刊
- Journal of biomedical science2025 Nov 1