基于质粒的电穿孔技术用于永生 T 淋巴细胞的高效基因工程。

IF 6.8 1区 生物学 Q1 BIOTECHNOLOGY & APPLIED MICROBIOLOGY
Yu-Qing Xie , Martin Fussenegger
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引用次数: 0

摘要

最近基因修饰T细胞疗法的临床成功强调了加速T淋巴细胞基础研究和功能筛选方法的迫切需要。然而,对t细胞进行高效基因工程的一种简单而经济的方法仍然是难以捉摸的。目前的方法通常依赖于病毒转导,这是劳动密集型的,需要严格的生物安全措施。基于质粒的电穿孔是一种经济实惠的替代方法,但在t细胞中仍未得到充分探索。此外,原型t细胞系的可用性是有限的。在这里,我们通过关注两种永生化小鼠t细胞系HT-2和CTLL-2来解决这些挑战,它们概括了原代t细胞的关键特征,包括细胞毒性和细胞因子依赖性增殖。与广泛使用的Jurkat t细胞系一起,HT-2和CTLL-2通过优化的电穿孔系统以高效率成功地转染了单个或多个基因。值得注意的是,质粒结构的优化使其能够递送多达6.5千碱基对的大型感兴趣基因(GOI)货物,并通过睡美人转座子系统将GOI稳定地整合到基因组中。我们还开发了CRISPR/ cas9介导的永生化T淋巴细胞基因编辑的先进方法,实现了高达97%的敲除效率和高达70%的基于同源定向修复(HDR)的靶向敲入效率。我们相信这种优化的基于质粒的电穿孔方法将有助于淋巴细胞生物学基础研究的进步,并为t细胞治疗的临床前研究提供实用、经济的工具。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Plasmid-based electroporation for efficient genetic engineering in immortalized T lymphocytes
The recent clinical success of genetically modified T-cell therapies underscores the urgent need to accelerate fundamental studies and functional screening methods in T lymphocytes. However, a facile and cost-effective method for efficient genetic engineering of T-cells remains elusive. Current approaches often rely on viral transduction, which is labor-intensive and requires stringent biosafety measures. Plasmid-based electroporation presents an affordable alternative, but remains underexplored in T-cells. Moreover, the availability of prototypical T-cell lines is limited. Here, we address these challenges by focusing on two immortalized murine T-cell lines, HT-2 and CTLL-2, which recapitulate key characteristics of primary T-cells, including cytotoxicity and cytokine-dependent proliferation. Alongside the widely used Jurkat T-cell line, HT-2 and CTLL-2 were successfully transfected with single or multiple genes with high efficiencies by means of optimized electroporation in a cuvette-based system. Notably, optimization of plasmid constructs enabled the delivery of large gene-of-interest (GOI) cargos of up to 6.5 kilobase pairs, as well as stable integration of a GOI into the genome via the Sleeping Beauty transposon system. We also developed advanced methodologies for CRISPR/Cas9-mediated gene editing in immortalized T lymphocytes, achieving knockout efficiencies of up to 97 % and homology-directed repair (HDR)-based targeted knock-in efficiencies of up to 70 %. We believe this optimized plasmid-based electroporation approach will contribute to advances in basic research on lymphocyte biology, as well as providing a practical, cost-effective tool for preclinical studies of T-cell therapies.
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来源期刊
Metabolic engineering
Metabolic engineering 工程技术-生物工程与应用微生物
CiteScore
15.60
自引率
6.00%
发文量
140
审稿时长
44 days
期刊介绍: Metabolic Engineering (MBE) is a journal that focuses on publishing original research papers on the directed modulation of metabolic pathways for metabolite overproduction or the enhancement of cellular properties. It welcomes papers that describe the engineering of native pathways and the synthesis of heterologous pathways to convert microorganisms into microbial cell factories. The journal covers experimental, computational, and modeling approaches for understanding metabolic pathways and manipulating them through genetic, media, or environmental means. Effective exploration of metabolic pathways necessitates the use of molecular biology and biochemistry methods, as well as engineering techniques for modeling and data analysis. MBE serves as a platform for interdisciplinary research in fields such as biochemistry, molecular biology, applied microbiology, cellular physiology, cellular nutrition in health and disease, and biochemical engineering. The journal publishes various types of papers, including original research papers and review papers. It is indexed and abstracted in databases such as Scopus, Embase, EMBiology, Current Contents - Life Sciences and Clinical Medicine, Science Citation Index, PubMed/Medline, CAS and Biotechnology Citation Index.
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