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Remarkable stability of an instability-prone lentiviral vector plasmid in Escherichia coli Stbl3

机译:易失性慢病毒载体质粒在大肠杆菌Stbl3中的显着稳定性

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摘要

Large-scale production of plasmid DNA to prepare therapeutic gene vectors or DNA-based vaccines requires a suitable bacterial host, which can stably maintain the plasmid DNA during industrial cultivation. Plasmid loss during bacterial cell divisions and structural changes in the plasmid DNA can dramatically reduce the yield of the desired recombinant plasmid DNA. While generating an HIV-based gene vector containing a bicistronic expression cassette 5′-Olig2cDNA-IRES-dsRed2-3′, we encountered plasmid DNA instability, which occurred in homologous recombination deficient recA1 Escherichia coli strain Stbl2 specifically during large-scale bacterial cultivation. Unexpectedly, the new recombinant plasmid was structurally changed or completely lost in 0.5 L liquid cultures but not in the preceding 5 mL cultures. Neither the employment of an array of alternative recA1 E. coli plasmid hosts, nor the lowering of the culture incubation temperature prevented the instability. However, after the introduction of this instability-prone plasmid into the recA13E. coli strain Stbl3, the transformed bacteria grew without being overrun by plasmid-free cells, reduction in the plasmid DNA yield or structural changes in plasmid DNA. Thus, E. coli strain Stbl3 conferred structural and maintenance stability to the otherwise instability-prone lentivirus-based recombinant plasmid, suggesting that this strain can be used for the faithful maintenance of similar stability-compromised plasmids in large-scale bacterial cultivations. In contrast to Stbl2, which is derived wholly from the wild type isolate E. coli K12, E. coli Stbl3 is a hybrid strain of mixed E. coli K12 and E. coli B parentage. Therefore, we speculate that genetic determinants for the benevolent properties of E. coli Stbl3 for safe plasmid propagation originate from its E. coli B ancestor.
机译:质粒DNA的大规模生产以制备治疗性基因载体或基于DNA的疫苗需要合适的细菌宿主,其可以在工业培养过程中稳定地维持质粒DNA。细菌细胞分裂过程中的质粒损失和质粒DNA的结构变化会大大降低所需重组质粒DNA的产量。在生成包含双顺反子表达盒5'-Olig2cDNA-IRES-dsRed2-3'的基于HIV的基因载体时,我们遇到了质粒DNA不稳定性,特别是在大规模细菌培养过程中,同源重组缺陷recA1大肠杆菌Stbl2中出现了这种质粒DNA不稳定性。出乎意料的是,新的重组质粒在0.5L液体培养物中发生了结构改变或完全丢失,但在之前的5mL培养物中没有发生变化。既不使用一系列替代的recA1大肠杆菌质粒宿主,也不降低培养温育温度来防止不稳定。但是,将这种不稳定的质粒引入recA13E之后。在大肠杆菌菌株Stbl3中,转化的细菌在生长时不会被无质粒的细胞淹没,质粒DNA产量降低或质粒DNA结构改变。因此,E.coli菌株Stbl3为原本不易不稳定的慢病毒重组质粒赋予了结构和维持稳定性,表明该菌株可用于大规模细菌培养中忠实维持相似的稳定性受损质粒。与完全源自野生型分离株大肠杆菌K12的Stbl2相反,大肠杆菌Stbl3是大肠杆菌K12和大肠杆菌B亲本混合的杂种菌株。因此,我们推测大肠杆菌Stbl3对质粒安全繁殖的仁慈性质的遗传决定因素来自其大肠杆菌B祖先。

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