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Novel approach of high cell density recombinant bioprocess development: Optimisation and scale-up from microlitre to pilot scales while maintaining the fed-batch cultivation mode of E. coli cultures

机译:高细胞密度重组生物工艺开发的新方法:从微升到中试规模的优化和规模化,同时保持大肠杆菌培养的分批培养模式

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Background Bioprocess development of recombinant proteins is time consuming and laborious as many factors influence the accumulation of the product in the soluble and active form. Currently, in most cases the developmental line is characterised by a screening stage which is performed under batch conditions followed by the development of the fed-batch process. Performing the screening already under fed-batch conditions would limit the amount of work and guarantee that the selected favoured conditions also work in the production scale. Results Here, for the first time, high throughput multifactorial screening of a cloning library is combined with the fed-batch technique in 96-well plates, and a strategy is directly derived for scaling to bioreactor scale. At the example of a difficult to express protein, an RNase inhibitor, it is demonstrated that screening of various vector constructs and growth conditions can be performed in a coherent line by (i) applying a vector library with promoters and ribosome binding sites of different strength and various fusion partners together with (ii) an early stage use of the fed-batch technology. It is shown that the EnBase? technology provides an easy solution for controlled cultivation conditions in the microwell scale. Additionally the high cell densities obtained provide material for various analyses from the small culture volumes. Crucial factors for a high yield of the target protein in the actual case were (i) the fusion partner, (ii) the use of of a mineral salt medium together with the fed-batch technique, and (iii) the preinduction growth rate. Finally, it is shown that the favorable conditions selected in the microwell plate and shake flask scales also work in the bioreactor. Conclusions Cultivation media and culture conditions have a major impact on the success of a screening procedure. Therefore the application of controlled cultivation conditions is pivotal. The consequent use of fed-batch conditons from the first screening phase not only shortens the developmental line by guarantying that the selected conditions are relevant for the scale up, but in our case also standard batch cultures failed to select the right clone or conditions at all.
机译:背景技术重组蛋白的生物过程开发是耗时且费力的,因为许多因素影响可溶性和活性形式的产物的积累。当前,在大多数情况下,发育线的特征在于筛选阶段,该阶段在分批条件下进行,然后进行分批补料工艺。在分批补料条件下已经进行筛选将限制工作量,并确保所选的条件在生产规模中也能起作用。结果在这里,首次将克隆文库的高通量多因素筛选与补料分批技术结合在96孔板中,并直接推导了按比例放大至生物反应器规模的策略。在一个难于表达的蛋白质(RNase抑制剂)的例子中,已证明可以通过以下方式在相干系中筛选各种载体构建体和生长条件:(i)应用具有不同强度的启动子和核糖体结合位点的载体文库和各种聚变伙伴,以及(ii)早期使用分批补料技术。结果表明,EnBase ?技术为微孔规模的受控培养条件提供了简便的解决方案。另外,所获得的高细胞密度为小培养量的各种分析提供了材料。在实际情况下,高靶蛋白产量的关键因素是(i)融合伴侣,(ii)矿物盐培养基和分批补料技术的使用以及(iii)诱导前的生长速率。最后,表明在微孔板和摇瓶秤中选择的有利条件在生物反应器中也起作用。结论培养基和培养条件对筛选程序的成功有重大影响。因此,控制栽培条件的应用至关重要。从第一个筛选阶段开始使用补料分批培养的条件,不仅通过确保所选条件与规模放大有关而缩短了发育线,而且在我们的情况下,标准分批培养根本无法选择正确的克隆或条件。

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