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一种高效的大规模逆转录病毒转导方法,包括将载体在低温摇床中预加载到 RetroNectin 包被的袋子中。

An efficient large-scale retroviral transduction method involving preloading the vector into a RetroNectin-coated bag with low-temperature shaking.

机构信息

Center for Cell and Gene Therapy, Takara Bio Inc. Seta, Otsu, Shiga, Japan.

出版信息

PLoS One. 2014 Jan 15;9(1):e86275. doi: 10.1371/journal.pone.0086275. eCollection 2014.

Abstract

In retroviral vector-mediated gene transfer, transduction efficiency can be hampered by inhibitory molecules derived from the culture fluid of virus producer cell lines. To remove these inhibitory molecules to enable better gene transduction, we had previously developed a transduction method using a fibronectin fragment-coated vessel (i.e., the RetroNectin-bound virus transduction method). In the present study, we developed a method that combined RetroNectin-bound virus transduction with low-temperature shaking and applied this method in manufacturing autologous retroviral-engineered T cells for adoptive transfer gene therapy in a large-scale closed system. Retroviral vector was preloaded into a RetroNectin-coated bag and incubated at 4°C for 16 h on a reciprocating shaker at 50 rounds per minute. After the supernatant was removed, activated T cells were added to the bag. The bag transduction method has the advantage of increasing transduction efficiency, as simply flipping over the bag during gene transduction facilitates more efficient utilization of the retroviral vector adsorbed on the top and bottom surfaces of the bag. Finally, we performed validation runs of endoribonuclease MazF-modified CD4(+) T cell manufacturing for HIV-1 gene therapy and T cell receptor-modified T cell manufacturing for MAGE-A4 antigen-expressing cancer gene therapy and achieved over 200-fold (≥ 10(10)) and 100-fold (≥ 5 × 10(9)) expansion, respectively. In conclusion, we demonstrated that the large-scale closed transduction system is highly efficient for retroviral vector-based T cell manufacturing for adoptive transfer gene therapy, and this technology is expected to be amenable to automation and improve current clinical gene therapy protocols.

摘要

在逆转录病毒载体介导的基因转移中,转导效率可能会受到来自病毒生产细胞系的培养液中抑制分子的阻碍。为了去除这些抑制分子以实现更好的基因转导,我们之前开发了一种使用纤连蛋白片段包被的容器(即 RetroNectin 结合病毒转导方法)的转导方法。在本研究中,我们开发了一种将 RetroNectin 结合病毒转导与低温摇动相结合的方法,并将其应用于在大规模封闭系统中制造自体逆转录病毒工程化 T 细胞进行过继转移基因治疗。将逆转录病毒载体预先加载到 RetroNectin 包被的袋子中,并在 4°C 下在每分钟 50 转的往复式摇床上孵育 16 小时。去除上清液后,将激活的 T 细胞加入袋子中。袋子转导方法的优点是提高转导效率,因为在基因转导过程中简单地翻转袋子可以更有效地利用吸附在袋子顶部和底部表面的逆转录病毒载体。最后,我们对 HIV-1 基因治疗用 MazF 内切酶修饰的 CD4(+)T 细胞制造的验证运行以及用于表达 MAGE-A4 抗原的癌症基因治疗的 T 细胞受体修饰的 T 细胞制造进行了验证,分别实现了超过 200 倍(≥10(10))和 100 倍(≥5×10(9))的扩增。总之,我们证明了大规模封闭转导系统非常适合用于过继转移基因治疗的基于逆转录病毒载体的 T 细胞制造,并且该技术有望实现自动化并改进当前的临床基因治疗方案。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/26a3/3893289/b0bd2e60e3b1/pone.0086275.g001.jpg

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