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用于精准治疗性 T 细胞工程的新型基因外基因组安全港

英文原题:Novel extragenic genomic safe harbors for precise therapeutic T-cell engineering.

PubMed 2023/06/01(内容时间) Blood Q1 · IF 23.9(JCR 2025)

研究概要

通过实现均一且可控的转基因表达,可以增强依赖工程化免疫细胞的细胞疗法,从而最大化 T 细胞功能并实现可预测的患者反应。

中文摘要

依赖工程化免疫细胞的细胞疗法,可通过实现均一且可控的转基因表达来增强,从而最大化T细胞功能并获得可预测的患者反应。当前遗传工程策略使用γ-逆转录病毒、慢病毒和转座子载体整合转基因,虽然有效,却不可避免地产生转基因表达差异,还伴有插入诱变风险。在嵌合抗原受体(CAR)疗法中,CAR表达不一致且随机可能导致持续性信号、T细胞耗竭及T细胞持久性不一。本文报告并验证了一种用于识别基因外基因组安全港(GSH)的算法;这些位点可高效靶向进行DNA整合,并支持人外周血T细胞持续且可预测地表达CAR。算法基于7项标准,旨在通过避免将转基因整合至功能重要的基因组元件来最大限度降低基因毒性,提高CRISPR/Cas9介导靶向的效率,并防止转基因随时间沉默。在急性淋巴细胞白血病小鼠模型中,于符合全部7项标准的GSH6位点工程化表达CD19 CAR的T细胞,以低细胞剂量即可治愈疾病,其效力与在TRAC位点工程化的CAR T细胞相当;输注100天后,该细胞仍能有效抵抗肿瘤再次攻击。因此,鉴定功能性基因外GSH扩大了可用于治疗性精确工程改造的人类基因组范围。

展开英文摘要原文

Cell therapies that rely on engineered immune cells can be enhanced by achieving uniform and controlled transgene expression in order to maximize T-cell function and achieve predictable patient responses. Although they are effective, current genetic engineering strategies that use -retroviral, lentiviral, and transposon-based vectors to integrate transgenes, unavoidably produce variegated transgene expression in addition to posing a risk of insertional mutagenesis. In the setting of chimeric antigen receptor (CAR) therapy, inconsistent and random CAR expression may result in tonic signaling, T-cell exhaustion, and variable T-cell persistence. Here, we report and validate an algorithm for the identification of extragenic genomic safe harbors (GSH) that can be efficiently targeted for DNA integration and can support sustained and predictable CAR expression in human peripheral blood T cells. The algorithm is based on 7 criteria established to minimize genotoxicity by directing transgene integration away from functionally important genomic elements, maximize efficient CRISPR/Cas9-mediated targeting, and avert transgene silencing over time. T cells engineered to express a CD19 CAR at GSH6, which meets all 7 criteria, are curative at low cell dose in a mouse model of acute lymphoblastic leukemia, matching the potency of CAR T cells engineered at the TRAC locus and effectively resisting tumor rechallenge 100 days after their infusion. The identification of functional extragenic GSHs thus expands the human genome available for therapeutic precision engineering.

论文信息

作者
Odak A、Yuan H、Feucht J、Cantu VA、Mansilla-Soto J、Kogel F、Eyquem J、Everett J
单位
Center for Cell Engineering and Immunology Program, Sloan Kettering Institute, Memorial Sloan Kettering Cancer Center, New York, NY.United States
文献类型
美国 NIH 资助研究
期刊
Blood2023 Jun 1
原文标识
PubMed 36745870 · DOI 10.1182/blood.2022018924