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:Applications of CRISPR Epigenome Editors in Tumor Immunology and Autoimmunity.
Applications of CRISPR Epigenome Editors in Tumor Immunology and Autoimmunity.
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在过去十年中,CRISPR-Cas 系统已成为基因工程不可或缺的工具,并已被用于多种疾病的临床试验。除了基因组编辑之外,CRISPR-Cas 系统还可用于执行可编程的表观遗传修饰。近期在增强基于 CRISPR 的表观基因组修饰因子方面的努力已经产生了强效工具,能够实现靶向 DNA 甲基化/去甲基化,并能够在多次细胞分裂中维持表观遗传记忆。
此外,人们已经认识到,在包括癌症在内的慢性炎症状态下,T 细胞会遇到一种称为 T 细胞耗竭的状态,其特征是抑制性受体升高(例如 LAG-3、TIM3、PD-1、CD39)以及效应 T 细胞相关蛋白水平降低(IFN-、颗粒酶 B 和穿孔素)。
重要的是,表观遗传失调已被确定为 T 细胞耗竭的关键驱动因素之一,并且它仍然是免疫治疗领域最大的障碍之一,并会降低CAR-T(CAR-T)细胞治疗的效率。同样,自身免疫性疾病也表现出表观遗传功能失调的调节性 T(Treg)细胞。例如,FOXP3 内含子区域,即已知的保守非编码序列,在健康状态下表现为低甲基化,但在病理背景下表现为高甲基化。
因此,使用基于 CRISPR 的表观基因组修饰因子逆转癌症和自身免疫性疾病中的表观遗传失调具有重要的治疗意义。在这篇综述中,我们概述了基于 CRISPR 的表观基因组修饰因子的逐步改进,并探讨了它们在肿瘤免疫学和自身免疫中的潜在治疗应用。
Over the past decade, CRISPR-Cas systems have become indispensable tools for genetic engineering and have been used in clinical trials for various diseases. Beyond genome editing, CRISPR-Cas systems can also be used for performing programmable epigenetic modifications. Recent efforts in enhancing CRISPR-based epigenome modifiers have yielded potent tools enabling targeted DNA methylation/demethylation capable of sustaining epigenetic memory through numerous cell divisions.
Moreover, it has been understood that during chronic inflammatory states, including cancer, T cells encounter a state called T cell exhaustion that involves elevated inhibitory receptors (e. g. , LAG-3, TIM3, PD-1, CD39) and reduced effector T cell-related protein levels (IFN- , granzyme B, and perforin).
Importantly, epigenetic dysregulation has been identified as one of the key drivers of T cell exhaustion, and it remains one of the biggest obstacles in the field of immunotherapy and decreases the efficiency of chimeric antigen receptor T (CAR-T) cell therapy. Similarly, autoimmune diseases exhibit epigenetically dysfunctional regulatory T (Treg) cells. For instance, FOXP3 intronic regions, known as conserved noncoding sequences, display hypomethylation in healthy states but hypermethylation in pathological contexts.
Therefore, the reversal of epigenetic dysregulation in cancer and autoimmune diseases using CRISPR-based epigenome modifiers has important therapeutic implications. In this review, we outline the progressive refinement of CRISPR-based epigenome modifiers and explore their potential therapeutic applications in tumor immunology and autoimmunity.
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