研究概要
基因组编辑技术已被广泛应用于细胞工程,在细胞与基因治疗中展现出巨大潜力。
中文摘要
基因组编辑技术已被广泛应用于细胞工程,在细胞与基因治疗中展现出巨大潜力。然而,用于免疫细胞编辑的最佳基因编辑酶仍未被确定。在本研究中,我们发现了一种新型基因编辑酶,命名为 CRISPR/PcoCas12a,来源于 Prevotella copri,其识别 5'-YYN PAM 序列。我们证明,与 AsCas12a 相比,CRISPR/PcoCas12a 可提供更广泛的编辑位点范围,并在特定基因座上具有更优的编辑效率。此外,我们阐明了其通过靶向 TCR-T 细胞中的 DGK 来增强肿瘤抑制的能力。DGK 作为 T 细胞功能的负向调控因子,其敲除可显著提升 TCR-T 细胞的抗肿瘤效力。PcoCas12a 靶向 DGK 的敲除效率和肿瘤抑制能力均显著高于 AsCas12a 所达到的水平。单细胞测序数据证实,PcoCas12a 介导的 DGK 基因敲除通过促进 T 细胞活化并增强免疫调控应答,提高了 T 细胞的肿瘤抑制能力。这些发现确立了 PcoCas12a 作为一种高效的 T 细胞编辑酶,表明其在 T 细胞治疗中具有潜在应用价值。
展开英文摘要原文
Genome editing technologies have been widely utilized in cell engineering, demonstrating immense potential in cell and gene therapy. However, an optimal gene-editing enzyme for immune cell editing remains unidentified. In this study, we identified a novel gene editing enzyme, termed CRISPR/PcoCas12a, derived from Prevotella copri, which recognizes a 5'-YYN PAM sequence. We demonstrated that CRISPR/PcoCas12a offers a broader range of editing sites and superior editing efficiency at specific loci compared to AsCas12a. Furthermore, we illustrated its capability to enhance tumor suppression by targeting DGK in TCR-T cells. DGK functions as a negative regulator of T cell function, and its knockout significantly boosts the antitumor efficacy of TCR-T cells. The knockout efficiency and tumor suppressor ability of PcoCas12a targeting DGK were markedly higher than those achieved with AsCas12a. Single-cell sequencing data confirmed that PcoCas12a-mediated DGK gene knockout improves the tumor suppressive capabilities of T cells by promoting T-cell activation and strengthening immune regulatory responses. These findings establish PcoCas12a as a highly efficient enzyme for T cell editing, indicating its potential application in T-cell therapy.
论文信息
- 作者
- Guo Q、Huang L、Liu Y、Qi C、Shao H、Peng J、Zhang H、Zang Y
- 第一作者单位
- College of Life Sciences, University of Chinese Academy of Sciences, Beijing 100049, China; BGI Research, Hangzhou 310030, China; BGI Research, Shenzhen 518083, China.China
- 通讯作者单位
- College of Life Sciences, University of Chinese Academy of Sciences, Beijing 100049, China; BGI Research, Shenzhen 518083, China. Electronic address: xuxun@genomics.cn.China
- 期刊
- International journal of biological macromolecules2025 Apr