Optimization of the PiggyBac Transposon System for the Sustained Genetic Modification of Human T Lymphocytes

转座因子 转座酶 生物 转基因 过继性细胞移植 细胞生物学 遗传学 基因 计算生物学 T细胞 免疫系统 基因组
作者
Yozo Nakazawa,Leslie E. Huye,Gianpietro Dotti,Aaron E. Foster,Juan F. Vera,Pallavi R. Manuri,Carl H. June,Cliona M. Rooney,Matthew H. Wilson
出处
期刊:Journal of Immunotherapy [Lippincott Williams & Wilkins]
卷期号:32 (8): 826-836 被引量:109
标识
DOI:10.1097/cji.0b013e3181ad762b
摘要

Optimal implementation of adoptive T-cell therapy for cancer will likely require multiple and maintained genetic modifications of the infused T cells and their progeny so that they home to tumor sites and recognize tumor cells, overcome tumor immune evasion strategies, and remain safe. Retroviral vectors readily transduce T cells and integrate into the host cell genome, but have a limited capacity for multigene insertion and cotransduction and are prohibitively expensive to produce at clinical grade. Genetic modification of T cells using transposons as integrating plasmids is an attractive alternative because of the increased simplicity and cost of production. Of available transposons, piggyBac has the higher transposase activity and larger cargo capacity, and we now evaluate piggyBac for potential adoptive therapies with primary T cells. PiggyBac transposons mediated stable gene expression in approximately 20% of primary T cells without selection. Treatment and maintenance of T cells with interleukin-15 increased stable transgene expression up to approximately 40% and expression was sustained through multiple logs of expansion for over 9 weeks in culture. We demonstrate simultaneous integration of 2 independent transposons in 20% of T cells, a frequency that could be increased to over 85% by selection of a transgenic surface marker (truncated CD19). PiggyBac could also deliver transposons of up to 13 kb with 10,000-fold expansion of transduced T cells in culture and finally we demonstrate delivery of a functional suicide gene (iCasp9). PiggyBac transposons may thus be used to express the multiple integrated transgenes that will likely be necessary for the broader success of T-cell therapy.

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