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首页> 外文期刊>Biotechnology Progress >Strategic Assay Deployment as A Method for Countering Analytical Bottlenecks in High Throughput Process Development: Case Studies in Ion Exchange Chromatography
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Strategic Assay Deployment as A Method for Countering Analytical Bottlenecks in High Throughput Process Development: Case Studies in Ion Exchange Chromatography

机译:战略性分析部署作为应对高通量工艺开发中分析瓶颈的一种方法:离子交换色谱中的案例研究

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摘要

High throughput approaches to facilitate the development of chromatographic separations have now been adopted widely in the biopharmaceutical industry, but issues of how to reduce the associated analytical burden remain. For example, acquiring experimental data by high level factorial designs in 96 well plates can place a considerable strain upon assay capabilities, generating a bottleneck that limits significantly the speed of process characterization. This article proposes an approach designed to counter this challenge; Strategic Assay Deployment (SAD). In SAD, a set of available analytical methods is investigated to determine which set of techniques is the most appropriate to use and how best to deploy these to reduce the consumption of analytical resources while still enabling accurate and complete process characterization. The approach is demonstrated by investigating how salt concentration and pH affect the binding of green fluorescent protein from Escherichia coli homogenate to an anion exchange resin presented in a 96-well filter plate format. Compared with the deployment of routinely used analytical methods alone, the application of SAD reduced both the total assay time and total assay material consumption by at least 40% and 5%, respectively. SAD has significant utility in accelerating bioprocess development activities.
机译:目前,生物制药行业已广泛采用高通量方法促进色谱分离的发展,但是如何减轻相关分析负担仍然存在问题。例如,通过在96孔板中进行高阶因子设计来获取实验数据可能会对分析能力造成很大的压力,从而产生瓶颈,大大限制了过程表征的速度。本文提出了一种旨在应对这一挑战的方法。战略分析部署(SAD)。在SAD中,将研究一组可用的分析方法,以确定最适合使用哪种技术以及如何最好地部署这些技术以减少分析资源的消耗,同时仍能进行准确而完整的过程表征。通过研究盐浓度和pH如何影响来自大肠杆菌匀浆的绿色荧光蛋白与以96孔滤板形式呈现的阴离子交换树脂的结合,可以证明该方法。与单独使用常规分析方法相比,SAD的应用分别将总测定时间和总测定材料消耗分别减少了至少40%和5%。 SAD在加速生物过程开发活动方面具有重要作用。

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