揭示逆转录病毒产生细胞系高产率的参数:评估随机整合与靶向整合。

Q1 Immunology and Microbiology
Vanessa S Bandeira, Hélio A Tomás, Evren Alici, Manuel J T Carrondo, Ana S Coroadinha
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引用次数: 4

摘要

在免疫细胞治疗中,逆转录病毒和慢病毒是对T细胞和自然杀伤细胞进行基因修饰的首选病毒载体。使用长臂猿白血病病毒(GaLV)假型可以提高造血细胞和T细胞的转导效率。在这种情况下,伽马逆转录病毒载体产生细胞比瞬时慢病毒载体产生细胞具有竞争性的更高滴度。这项工作的主要目的是确定在稳定的产生细胞中控制galv伪型γ -逆转录病毒载体生产力的关键参数,使用逆转录病毒载体表达盒实现阳性(促进细胞富集)和阴性细胞选择(允许细胞消除)。逆转录病毒载体包含胸苷激酶自杀基因与抗瓦巴因的Na+,K+- atp酶基因融合,这是一种潜在的更安全、更快速的标记。逆转录病毒载体产生细胞的建立传统上是通过随机整合编码转基因的逆转录病毒载体表达盒来实现的。最近,引入了重组酶介导的盒式交换方法来实现有针对性的整合。在此,我们比较了逆转录病毒载体转基因构建的随机整合和靶向整合。通过随机整合和靶向整合分别产生了293 OuaS和293 FlexOuaS两种逆转录病毒产生细胞系,产生了高滴度(约为107个感染性颗粒·ml-1)。结果表明,逆转录病毒载体转基因盒是决定病毒滴度的关键逆转录病毒载体成分,尽管如此,单拷贝整合足以提供高滴度。分析三种逆转录病毒构建体(gag-pol、GaLV、env和逆转录病毒载体转基因)的表达水平。虽然gag-pol和GaLV env基因的表达水平应该超过一个最小阈值,但我们发现这两个表达盒的表达水平相对适中。他们的表达水平不应该被最大化。我们认为,要建立高产逆转录病毒载体细胞系,只需通过(1)优化逆转录病毒载体的设计(即遗传元件组成)和(2)选择高表达的染色体位点进行整合,即可最大限度地提高逆转录病毒RNA(即逆转录病毒载体转基因盒)的表达水平。从这个角度来看,使用识别和促进高表达位点整合的方法,如靶向整合或高通量筛选,是非常有价值的。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Disclosing the Parameters Leading to High Productivity of Retroviral Producer Cells Lines: Evaluating Random Versus Targeted Integration.

Gammaretrovirus and lentivirus are the preferred viral vectors to genetically modify T and natural killer cells to be used in immune cell therapies. The transduction efficiency of hematopoietic and T cells is more efficient using gibbon ape leukemia virus (GaLV) pseudotyping. In this context gammaretroviral vector producer cells offer competitive higher titers than transient lentiviral vectors productions. The main aim of this work was to identify the key parameters governing GaLV-pseudotyped gammaretroviral vector productivity in stable producer cells, using a retroviral vector expression cassette enabling positive (facilitating cell enrichment) and negative cell selection (allowing cell elimination). The retroviral vector contains a thymidine kinase suicide gene fused with a ouabain-resistant Na+,K+-ATPase gene, a potential safer and faster marker. The establishment of retroviral vector producer cells is traditionally performed by randomly integrating the retroviral vector expression cassette codifying the transgene. More recently, recombinase-mediated cassette exchange methodologies have been introduced to achieve targeted integration. Herein we compared random and targeted integration of the retroviral vector transgene construct. Two retroviral producer cell lines, 293 OuaS and 293 FlexOuaS, were generated by random and targeted integration, respectively, producing high titers (on the order of 107 infectious particles·ml-1). Results showed that the retroviral vector transgene cassette is the key retroviral vector component determining the viral titers notwithstanding, single-copy integration is sufficient to provide high titers. The expression levels of the three retroviral constructs (gag-pol, GaLV env, and retroviral vector transgene) were analyzed. Although gag-pol and GaLV env gene expression levels should surpass a minimal threshold, we found that relatively modest expression levels of these two expression cassettes are required. Their levels of expression should not be maximized. We concluded, to establish a high producer retroviral vector cell line only the expression level of the genomic retroviral RNA, that is, the retroviral vector transgene cassette, should be maximized, both through (1) the optimization of its design (i.e., genetic elements composition) and (2) the selection of high expressing chromosomal locus for its integration. The use of methodologies identifying and promoting integration into high-expression loci, as targeted integration or high-throughput screening are in this perspective highly valuable.

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来源期刊
Human Gene Therapy Methods
Human Gene Therapy Methods BIOTECHNOLOGY & APPLIED MICROBIOLOGY-GENETICS & HEREDITY
CiteScore
5.80
自引率
0.00%
发文量
0
审稿时长
>12 weeks
期刊介绍: Human Gene Therapy is the premier, multidisciplinary journal covering all aspects of gene therapy. The Journal publishes in-depth coverage of DNA, RNA, and cell therapies by delivering the latest breakthroughs in research and technologies. Human Gene Therapy provides a central forum for scientific and clinical information, including ethical, legal, regulatory, social, and commercial issues, which enables the advancement and progress of therapeutic procedures leading to improved patient outcomes, and ultimately, to curing diseases. The Journal is divided into three parts. Human Gene Therapy, the flagship, is published 12 times per year. HGT Methods, a bimonthly journal, focuses on the applications of gene therapy to product testing and development. HGT Clinical Development, a quarterly journal, serves as a venue for publishing data relevant to the regulatory review and commercial development of cell and gene therapy products.
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