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A model-based framework for parallel scale-down fed-batch cultivations in mini-bioreactors for accelerated phenotyping

机译:用于加速表型的迷你生物反应器中的平行尺度下纸培养培养的模型框架。

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Concentration gradients that occur in large industrial-scale bioreactors due to mass transfer limitations have significant effects on process efficiency. Hence, it is desirable to investigate the response of strains to such heterogeneities to reduce the risk of failure during process scale-up. Although there are various scale-down techniques to study these effects, scale-down strategies are rarely applied in the early developmental phases of a bioprocess, as they have not yet been implemented on small-scale parallel cultivation devices. In this study, we combine mechanistic growth models with a parallel mini-bioreactor system to create a high-throughput platform for studying the response of Escherichia coli strains to concentration gradients. As a scaled-down approach, a model-based glucose pulse feeding scheme is applied and compared with a continuous feed profile to study the influence of glucose and dissolved oxygen gradients on both cell physiology and incorporation of noncanonical amino acids into recombinant proinsulin. The results show a significant increase in the incorporation of the noncanonical amino acid norvaline in the soluble intracellular extract and in the recombinant product in cultures with glucose/oxygen oscillations. Interestingly, the amount of norvaline depends on the pulse frequency and is negligible with continuous feeding, confirming observations from large-scale cultivations. Most importantly, the results also show that a larger number of the model parameters are significantly affected by the scale-down scheme, compared with the reference cultivations. In this example, it was possible to describe the effects of oscillations in a single parallel experiment. The platform offers the opportunity to combine strain screening with scale-down studies to select the most robust strains for bioprocess scale-up.
机译:由于传质限制,大型工业规模生物反应器中发生的浓度梯度对工艺效率产生显着影响。因此,希望研究菌株与这种多相的响应,以降低过程扩大过程中失效的风险。尽管存在各种缩减的技术来研究这些效果,但是缩小的策略很少在生物过程的早期发育阶段中应用,因为它们尚未在小规模平行栽培装置上实施。在这项研究中,我们将机械生长模型与平行的迷你生物反应器系统相结合,以创造高通量平台,用于研究大肠杆菌菌株对浓度梯度的响应。作为缩小方法,应用基于模型的葡萄糖脉冲进料方案并与连续进料曲线进行比较,以研究葡萄糖和溶解氧梯度对细胞生理学的影响,并将非甘露糖氨基酸掺入重组胰岛素中。结果表明,在具有葡萄糖/氧振荡的培养物中,在可溶性细胞内提取物和重组产物中掺入非Canonical氨基酸NORVALIN的显着增加。有趣的是,NORVALINE的量取决于脉冲频率,并且与连续喂养可忽略不计,确认大规模培养的观察。最重要的是,结果还表明,与参考栽培相比,缩放方案的大量模型参数显着影响。在该示例中,可以描述振荡在单个平行实验中的效果。该平台提供了将应变筛选结合缩放研究的机会,以选择最强大的生物过程扩大衡量标准。

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