Practical deployment of automation to expedite aqueous two-phase extraction

IF 4.1 2区 生物学 Q2 BIOTECHNOLOGY & APPLIED MICROBIOLOGY
Mario A. Torres-Acosta , Alex Olivares-Molina , Ross Kent , Nuno Leitão , Markus Gershater , Brenda Parker , Gary J. Lye , Duygu Dikicioglu
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引用次数: 0

Abstract

The feasibility of bioprocess development relies heavily on the successful application of primary recovery and purification techniques. Aqueous two-phase extraction (ATPE) disrupts the definition of "unit operation" by serving as an integrative and intensive technique that combines different objectives such as the removal of biomass and integrated recovery and purification of the product of interest. The relative simplicity of processing large samples renders this technique an attractive alternative for industrial bioprocessing applications. However, process development is hindered by the lack of easily predictable partition behaviours, the elucidation of which necessitates a large number of experiments to be conducted. Liquid handling devices can assist to address this problem; however, they are configured to operate using low viscosity fluids such as water and water-based solutions as opposed to highly viscous polymeric solutions, which are typically required in ATPE. In this work, an automated high throughput ATPE process development framework is presented by constructing phase diagrams and identifying the binodal curves for PEG6000, PEG3000, and PEG2000. Models were built to determine viscosity- and volume-independent transfer parameters. The framework provided an appropriate strategy to develop a very precise and accurate operation by exploiting the relationship between different liquid transfer parameters and process error. Process accuracy, measured by mean absolute error, and device precision, evaluated by the coefficient of variation, were both shown to be affected by the mechanical properties, particularly viscosity, of the fluids employed. For PEG6000, the mean absolute error improved by six-fold (from 4.82% to 0.75%) and the coefficient of variation improved by three-fold (from 0.027 to 0.008) upon optimisation of the liquid transfer parameters accounting for the viscosity effect on the PEG-salt buffer utilising ATPE operations. As demonstrated here, automated liquid handling devices can serve to streamline process development for APTE enabling wide adoption of this technique in large scale bioprocess applications.

加快水相两相萃取的自动化实际部署。
生物工艺开发的可行性在很大程度上取决于初级回收和纯化技术的成功应用。水溶液两相萃取(ATPE)打破了 "单元操作 "的定义,它是一种综合密集型技术,结合了不同的目标,如去除生物质以及相关产品的综合回收和纯化。处理大量样品的相对简单性使该技术成为工业生物处理应用中的一种极具吸引力的替代技术。然而,由于缺乏易于预测的分离行为,工艺开发受到阻碍,而要阐明这些行为,就必须进行大量的实验。液体处理设备可以帮助解决这一问题;然而,这些设备的配置是为了使用水和水基溶液等低粘度液体,而不是 ATPE 通常需要的高粘度聚合物溶液。在这项工作中,通过构建相图和识别 PEG6000、PEG3000 和 PEG2000 的双峰曲线,提出了一个自动化高通量 ATPE 工艺开发框架。建立的模型可确定与粘度和体积无关的转移参数。通过利用不同液体传输参数与工艺误差之间的关系,该框架为开发非常精确和准确的操作提供了适当的策略。以平均绝对误差衡量的工艺精确度和以变异系数评估的设备精确度均受到所用液体的机械特性(尤其是粘度)的影响。对于 PEG6000,在利用 ATPE 操作对 PEG 盐缓冲液的粘度影响进行液体传输参数优化后,平均绝对误差提高了六倍(从 4.82% 降至 0.75%),变异系数提高了三倍(从 0.027 降至 0.008)。正如本文所展示的,自动液体处理设备可简化 APTE 的工艺开发,从而使该技术在大规模生物工艺应用中得到广泛采用。
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来源期刊
Journal of biotechnology
Journal of biotechnology 工程技术-生物工程与应用微生物
CiteScore
8.90
自引率
2.40%
发文量
190
审稿时长
45 days
期刊介绍: The Journal of Biotechnology has an open access mirror journal, the Journal of Biotechnology: X, sharing the same aims and scope, editorial team, submission system and rigorous peer review. The Journal provides a medium for the rapid publication of both full-length articles and short communications on novel and innovative aspects of biotechnology. The Journal will accept papers ranging from genetic or molecular biological positions to those covering biochemical, chemical or bioprocess engineering aspects as well as computer application of new software concepts, provided that in each case the material is directly relevant to biotechnological systems. Papers presenting information of a multidisciplinary nature that would not be suitable for publication in a journal devoted to a single discipline, are particularly welcome.
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