CAR-T(CAR-T)细胞疗法在非肿瘤性疾病中的应用
Chimeric antigen receptor T (CAR-T) cell therapy in non-oncological diseases.
CAR-T(CAR-T)细胞在血液系统恶性肿瘤中的应用推动了这种免疫治疗形式的显著进展。
CELL INTELLIGENCE · 肿瘤细胞治疗研究
肿瘤细胞治疗研究
英文原题:Revolutionising cancer intervention: the repercussions of CAR-T cell therapy on modern oncology practices.
Revolutionising cancer intervention: the repercussions of CAR-T cell therapy on modern oncology practices.
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CAR-T 细胞疗法是肿瘤学领域的一项突破性进展,可利用患者自身免疫细胞精准靶向恶性肿瘤。通过为T细胞装配合成受体,CAR-T 疗法可产生显著的抗肿瘤作用,并为持久控制癌症带来希望。
然而,该疗法仍存在若干局限,包括抗原稀少、免疫抑制性肿瘤微环境及T细胞耗竭。CRISPR-Cas9基因编辑通过敲除免疫检查点(PD-1、CTLA-4)并改善细胞持久性,增强了CAR-T 效能;RNA干扰(RNAi)则可沉默免疫逃逸基因(如SOCS1)。纳米酶递送系统可实现精准CRISPR-Cas9递送(编辑效率超过70%)和肿瘤靶向,从而克服不稳定性及脱靶效应。SUPRA CAR、装甲型CAR-T 细胞(如分泌IL-12/IL-21的TRUCK)及双重检查点抑制等创新策略协同重塑肿瘤微环境,并在试验中使复发率降低40%。尽管已有进展,高昂费用、生产障碍和伦理问题(如生殖系编辑风险)仍是关键障碍。新兴解决方案包括通用现货型CAR-T、混合纳米-CRISPR系统及人工智能驱动的设计,为可规模化的个体化免疫治疗铺平道路。本综述重点介绍CRISPR、RNAi和纳米技术方面的突破,阐述CAR-T 疗法的变革潜力,同时讨论其广泛临床应用面临的转化挑战。
Chimeric Antigen Receptor T-cell (CAR-T) therapy represents a groundbreaking advance in oncology, leveraging patient-specific immune cells to target malignant tumours precisely. By equipping T cells with synthetic receptors, CAR-T therapy achieves remarkable antitumor effects and offers hope for durable cancer control.
However, several limitations persist, including antigen scarcity, immunosuppressive tumour microenvironments, and T-cell exhaustion. CRISPR-Cas9 gene editing has enhanced CAR-T potency by knocking out immune checkpoints (PD-1, CTLA-4) and improving persistence, while RNA interference (RNAi) silences immune-evasion genes (e. g. SOCS1). Nanozyme-based delivery systems enable precise CRISPR-Cas9 delivery (> 70% editing efficiency) and tumour targeting, overcoming instability and off-target effects. Innovations like SUPRA CARs, armoured CAR-T cells (e. g.
IL-12/IL-21-secreting TRUCKs), and dual checkpoint inhibition synergize to reprogram the tumour microenvironment, reducing relapse by 40% in trials. Despite progress, high costs, manufacturing hurdles, and ethical concerns (e. g. germline editing risks) remain critical barriers.
Emerging solutions include universal off-the-shelf CAR-Ts, hybrid nano-CRISPR systems, and AI-driven design, paving the way for scalable, personalised immunotherapy. This review highlights breakthroughs in CRISPR, RNAi, and nanotechnology, underscoring CAR-T therapy's transformative potential while addressing translational challenges for broader clinical adoption.
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