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CRISPR/Cas9 基因组编辑在肿瘤学中的应用:机制、治疗平台及转化挑战

英文原题:CRISPR/Cas9 Genome Editing in Oncology: Mechanisms, Therapeutic Platforms and Translational Challenges.

查看英文原题

CRISPR/Cas9 Genome Editing in Oncology: Mechanisms, Therapeutic Platforms and Translational Challenges.

PubMed 2025/12/02(内容时间) Mol Biotechnol Q3 · IF 3.2(JCR 2025)

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中文摘要

CRISPR/Cas9基因组编辑技术对癌症研究和治疗开发产生了重大影响,为操控癌症相关基因提供了前所未有的精确性。尽管本综述聚焦于Cas9,但我们将其置于更广泛的CRISPR领域中来审视,该领域包括DNA靶向效应器(Cas9/Cas12)、RNA靶向系统如Cas13,以及具有DNA和RNA双重活性的III型系统,这些模式拓展了实验和治疗的可能性。这篇综合性综述考察了CRISPR/Cas9在肿瘤学中的当前应用,包括其机制及临床转化所面临的挑战。敲除、干扰和激活CRISPR筛选平台通过系统性地探究基因功能、识别治疗脆弱性以及阐明多种癌症表型中的耐药机制,已彻底改变了功能基因组学。该技术也重塑了癌症建模,使得从工程化细胞系到患者来源异种移植模型能够精确再现疾病相关突变,从而捕捉肿瘤异质性和微环境相互作用。

值得注意的是,CRISPR/Cas9与CAR-T 治疗的整合使得多重编辑成为可能,以消除同种异体反应性、克服检查点介导的耗竭,并工程化通用CAR-T 细胞。新兴的体内策略通过靶向病毒和非病毒递送直接在患者体内生成或重编程CAR-T 细胞,凸显了加速的转化势头。

然而,重大挑战,包括脱靶突变、递送障碍、p53介导的有利于潜在致癌群体的选择压力,以及Cas9免疫原性,继续阻碍着临床转化。这些局限性要求高保真核酸酶、优化的引导设计和改进的递送系统。CRISPR/Cas9 在癌症治疗中的未来将取决于技术创新、全面的安全框架以及严格的临床评估,随着下一代编辑模式向变革性精准肿瘤学迈进。

展开英文摘要原文

The CRISPR/Cas9 genome editing technology has had a significant impact on cancer research and therapeutic development, providing unprecedented precision in manipulating cancer-associated genes. Although this review focuses on Cas9, we situate it within the broader CRISPR landscape that includes DNA-targeting effectors (Cas9/Cas12), RNA-targeting systems such as Cas13, and type III systems with dual DNA and RNA activity, modalities that expand both experimental and therapeutic possibilities. This comprehensive review examines the current applications of CRISPR/Cas9 in oncology, including its mechanisms and the challenges associated with its clinical translation.

Knockout, interference, and activation CRISPR screening platforms have transformed functional genomics by systematically interrogating gene function, identifying therapeutic vulnerabilities, and clarifying resistance mechanisms across diverse cancer phenotypes. This technology has also reshaped cancer modeling, enabling precise recapitulation of disease-relevant mutations from engineered cell lines to patient-derived xenografts that capture tumor heterogeneity and microenvironmental interactions.

Notably, the integration of CRISPR/Cas9 with CAR-T therapy has enabled multiplex editing to eliminate alloreactivity, overcome checkpoint-mediated exhaustion, and engineer universal CAR-T cells. Emerging in vivo strategies that directly generate or reprogram CAR-T cells in patients via targeted viral and nonviral delivery underscore accelerating translational momentum.

However, significant challenges, including off-target mutagenesis, delivery barriers, p53-mediated selective pressure favoring potentially oncogenic populations, and Cas9 immunogenicity, continue to hinder clinical translation. These limitations necessitate high-fidelity nucleases, optimized guide designs, and improved delivery systems.

The future of CRISPR/Cas9 in cancer therapy will depend on technological innovation, comprehensive safety frameworks, and rigorous clinical evaluation as next-generation editing modalities advance toward transformative precision oncology.

论文信息

作者
Nguyen AH、Quang MT
第一作者单位
Department of Microbiology - Parasitology, School of Pharmacy, University of Medicine and Pharmacy at Ho Chi Minh City, Ho Chi Minh City, Vietnam.
通讯作者单位
Department of Microbiology - Parasitology, School of Pharmacy, University of Medicine and Pharmacy at Ho Chi Minh City, Ho Chi Minh City, Vietnam. qtminh@ump.edu.vn.
文献类型
综述
期刊
Molecular biotechnology2026 May
原文标识
PubMed 41329461 · DOI 10.1007/s12033-025-01533-2