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Efficient Non-viral Gene Delivery into Human Hematopoietic Stem Cells by Minicircle Sleeping Beauty Transposon Vectors

机译:通过微型圆睡美人转座子载体有效地将非病毒基因传递到人类造血干细胞中

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摘要

The Sleeping Beauty (SB) transposon system is a non-viral gene delivery platform that combines simplicity, inexpensive manufacture, and favorable safety features in the context of human applications. However, efficient correction of hematopoietic stem and progenitor cells (HSPCs) with non-viral vector systems, including SB, demands further refinement of gene delivery techniques. We set out to improve SB gene transfer into hard-to-transfect human CD34+ cells by vectorizing the SB system components in the form of minicircles that are devoid of plasmid backbone sequences and are, therefore, significantly reduced in size. As compared to conventional plasmids, delivery of the SB transposon system as minicircle DNA is ∼20 times more efficient, and it is associated with up to a 50% reduction in cellular toxicity in human CD34+ cells. Moreover, providing the SB transposase in the form of synthetic mRNA enabled us to further increase the efficacy and biosafety of stable gene delivery into hematopoietic progenitors ex vivo. Genome-wide insertion site profiling revealed a close-to-random distribution of SB transposon integrants, which is characteristically different from gammaretroviral and lentiviral integrations in HSPCs. Transplantation of gene-marked CD34+ cells in immunodeficient mice resulted in long-term engraftment and hematopoietic reconstitution, which was most efficient when the SB transposase was supplied as mRNA and nucleofected cells were maintained for 4–8 days in culture before transplantation. Collectively, implementation of minicircle and mRNA technologies allowed us to further refine the SB transposon system in the context of HSPC gene delivery to ultimately meet clinical demands of an efficient and safe non-viral gene therapy protocol.
机译:睡美人(SB)转座子系统是一种非病毒基因传递平台,在人类应用中结合了简单性,廉价的制造和良好的安全性特征。但是,使用包括SB在内的非病毒载体系统对造血干细胞和祖细胞(HSPC)进行有效校正,需要进一步完善基因传递技术。我们着手通过将无质粒主链序列的小圆圈形式的SB系统成分矢量化来改善SB基因向难以转染的人CD34 + 细胞中的转移,从而显着降低在尺寸方面。与常规质粒相比,SB转座子系统作为小环DNA的传递效率提高了约20倍,并且与人类CD34 + 细胞的细胞毒性降低了多达50%有关。此外,以合成mRNA的形式提供SB转座酶使我们能够进一步提高将基因稳定地体外递送至造血祖细胞的功效和生物安全性。全基因组插入位点分析显示SB转座子整合子的分布接近随机,这与HSPC中的γ逆转录病毒和慢病毒整合特征不同。将基因标记的CD34 + 细胞移植到免疫缺陷小鼠中会导致长期植入和造血重建,当以mRNA形式提供SB转座酶并将核转染的细胞维持4-8天时,这是最有效的在移植前进行培养。总的来说,微圆和mRNA技术的实施使我们能够在HSPC基因递送的背景下进一步完善SB转座子系统,从而最终满足有效且安全的非病毒基因治疗方案的临床需求。

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