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:CRISPR Technology in Disease Management: An Updated Review of Clinical Translation and Therapeutic Potential.
CRISPR Technology in Disease Management: An Updated Review of Clinical Translation and Therapeutic Potential.
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CRISPR-Cas9 技术作为一种变革性的基因组编辑平台迅速发展,实现了精确的基因修饰,并拓展了多种疾病的治疗机会。本综述探讨了 CRISPR 在肿瘤学、遗传性和神经系统疾病、感染性疾病、免疫治疗、诊断及表观基因组编辑中的最新进展与临床转化。CRISPR 在肿瘤学领域进展显著,可用于鉴定新型癌症驱动因子、阐明耐药机制,并通过工程化 T 细胞(包括 PD-1 敲除的 CAR-T 细胞)改进免疫治疗。采用 CRISPR 编辑细胞的临床试验在血液系统恶性肿瘤和实体瘤中显示出令人鼓舞的结果。在血红蛋白病和肌营养不良等遗传性疾病中,CRISPR-Cas9 与碱基编辑器、引物编辑器等先进编辑工具在纠正致病突变方面显示出巨大潜力。这一潜力已得到证实——2023 年 FDA 首次批准了基于 CRISPR 的疗法 Casgevy 用于治疗镰状细胞病。包括阿尔茨海默病、ALS 和亨廷顿病在内的神经系统疾病,正越来越多地采用 CRISPR 方法进行疾病建模和潜在治疗干预。在感染性疾病方面,基于 CRISPR 的诊断技术如 SHERLOCK 和 DETECTR 可实现快速、灵敏的核酸检测,在 SARS-CoV-2 等病原体暴发中尤为重要。在治疗方面,CRISPR 系统可靶向病毒和细菌基因组,提供新型治疗方式。
此外,CRISPR 介导的表观基因组编辑能够精确调控基因表达,进一步拓展了治疗的可能性。尽管取得了这些进展,仍然存在重大挑战,包括脱靶效应、递送方法、免疫反应以及长期基因组安全性问题。未来在编辑器精度、创新递送平台和更强安全性评估方面的改进,对于将基于 CRISPR 的干预措施全面整合到标准临床实践中、显著推进个性化医疗至关重要。
CRISPR-Cas9 technology has rapidly advanced as a transformative genome-editing platform, facilitating precise genetic modifications and expanding therapeutic opportunities across various diseases. This review explores recent developments and clinical translations of CRISPR applications in oncology, genetic and neurological disorders, infectious diseases, immunotherapy, diagnostics, and epigenome editing. CRISPR has notably progressed in oncology, where it enables the identification of novel cancer drivers, elucidation of resistance mechanisms, and improvement of immunotherapies through engineered T cells, including PD-1 knockout CAR-T cells. Clinical trials employing CRISPR-edited cells are demonstrating promising results in hematologic malignancies and solid tumours.
In genetic disorders, such as hemoglobinopathies and muscular dystrophies, CRISPR-Cas9 alongside advanced editors like base and prime editors show significant potential for correcting pathogenic mutations. This potential was affirmed with the FDA's first approval of a CRISPR-based therapy, Casgevy, for sickle cell disease in 2023.
Neurological disorders, including Alzheimer's, ALS, and Huntington's disease, are increasingly targeted by CRISPR approaches for disease modelling and potential therapeutic intervention. In infectious diseases, CRISPR-based diagnostics such as SHERLOCK and DETECTR provide rapid, sensitive nucleic acid detection, particularly valuable in pathogen outbreaks like SARS-CoV-2. Therapeutically, CRISPR systems target viral and bacterial genomes, offering novel treatment modalities.
Additionally, CRISPR-mediated epigenome editing enables precise regulation of gene expression, expanding therapeutic possibilities. Despite these advances, significant challenges remain, including off-target effects, delivery methodologies, immune responses, and long-term genomic safety concerns. Future improvements in editor precision, innovative delivery platforms, and enhanced safety assessments will be essential to fully integrate CRISPR-based interventions into standard clinical practice, significantly advancing personalised medicine.
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