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.
CELL INTELLIGENCE · 肿瘤细胞治疗研究
肿瘤细胞治疗研究
英文原题:Emerging Gene-editing nano-therapeutics for Cancer.
Emerging Gene-editing nano-therapeutics for Cancer.
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2012年Jennifer Doudna和Emmanuelle Charpentier发现CRISPR/Cas9后,基因组工程领域取得了显著进展。与其他基因编辑工具相比,CRISPR/Cas9因简便、特异性强且可进行多重编辑而受到科学界关注,其发明者也因此获得2020年诺贝尔化学奖。CRISPR/Cas9利用RNA引导的位点特异性核酸内切酶,实现靶向基因组序列改变、基因调控及表观遗传修饰。尽管CRISPR/Cas9的影响毋庸置疑,其局限性促成了多项重要改进,包括使用微型Cas蛋白、Cas9 Retron精准同源平行编辑(CRISPEY)、Cas-Clover;也推动了替代方法的开发,如retron重组工程、必需移动元件引导活性(OMEGA)、Fanzor和Argonaute蛋白。
癌症由遗传和表观遗传改变引起,因此基因编辑可用于敲除癌基因、编辑突变以恢复抑癌基因正常功能、敲除CAR-T 细胞中的免疫检查点、制备“现货型”CAR-T 细胞、鉴定新的致瘤基因以及对癌症中的多种通路开展功能分析等。基于纳米颗粒将向导RNA和Cas9复合物递送至人体的进展,进一步增强了CRISPR/Cas9临床转化的潜力。目前已有多项研究开发新型递送方法,以增强CRISPR/Cas9在抗癌治疗中的肿瘤特异性应用。本综述讨论新型基因编辑技术的发展,以及纳米颗粒递送CRISPR/Cas9用于癌症的近期进展。
Remarkable progress has been made in the field of genome engineering after the discovery of CRISPR/Cas9 in 2012 by Jennifer Doudna and Emmanuelle Charpentier. Compared to any other gene-editing tools, CRISPR/Cas9 attracted the attention of the scientific community because of its simplicity, specificity, and multiplex editing possibilities for which the inventors were awarded the Nobel prize for chemistry in 2020. CRISPR/Cas9 allows targeted alteration of the genomic sequence, gene regulation, and epigenetic modifications using an RNA-guided site-specific endonuclease. Though the impact of CRISPR/Cas9 was undisputed, some of its limitations led to key modifications including the use of miniature-Cas proteins, Cas9 Retron precise Parallel Editing via homologY (CRISPEY), Cas-Clover, or development of alternative methods including retron-recombineering, Obligate Mobile Element Guided Activity(OMEGA), Fanzor, and Argonaute proteins.
As cancer is caused by genetic and epigenetic alterations, gene-editing was found to be highly useful for knocking out oncogenes, editing mutations to regain the normal functioning of tumor suppressor genes, knock-out immune checkpoint blockade in CAR-T cells, producing 'off-the-shelf' CAR-T cells, identify novel tumorigenic genes and functional analysis of multiple pathways in cancer, etc.
Advancements in nanoparticle-based delivery of guide-RNA and Cas9 complex to the human body further enhanced the potential of CRISPR/Cas9 for clinical translation. Several studies are reported for developing novel delivery methods to enhance the tumor-specific application of CRISPR/Cas9 for anticancer therapy. In this review, we discuss new developments in novel gene editing techniques and recent progress in nanoparticle-based CRISPR/Cas9 delivery specific to cancer applications.
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