用机械模型建立色谱树脂的概率压力流操作空间。

IF 3.8 2区 化学 Q1 BIOCHEMICAL RESEARCH METHODS Journal of Chromatography A Pub Date : 2025-01-25 DOI:10.1016/j.chroma.2024.465601
Chris A. Gerberich, Chaoying Ding, Lee Bink, André C. Dumetz
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引用次数: 0

摘要

在固定的床层高度下,色谱柱的压降受柱径的影响,在没有大规模数据的情况下很难预测。现代树脂工程已经减少了对压力降的关注,由于大珠和刚性基矩阵的广泛使用。然而,随着最近几种用于生物加工的小颗粒树脂的开发进入市场,压力降重新引起了人们的关注。这项工作旨在开发和应用基于力平衡的机械模型来预测跨尺度的压降。通过这种方法,很少的小规模实验可以用于校准,然后可以用最小的尺度数据预测大型包的压力-流量数据。首先使用Phenyl Sepharose 6 FF在小尺度上进行校准,然后在大尺度上验证模型预测。预测结果与实验结果非常吻合。然后,该模型针对7种树脂进行了校准,并用于确定基于超出规模压力限制的可能性计算的概率操作空间。考虑到柱填料和树脂制造过程中固有的可变性,根据床层高度、流体速度和流体粘度设定了安全操作范围。这种方法的强大之处在于,它可以在开始工艺开发之前大规模筛选树脂,以解决潜在的压力流动问题,并且可以用于设置整个色谱序列中溶液粘度变化的流速范围。
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Probabilistic pressure-flow operating space for chromatographic resins using mechanistic modeling
Pressure drop across chromatography columns at constant bed height is affected by column diameter and can be difficult to predict without large-scale data. Modern resin engineering has decreased the focus on pressure drop due to the widespread use of large beads and rigid base matrices. However, with the recent development of several small-bead resins optimized for bioprocessing entering the market, pressure drop has justified a regain of attention. This work seeks to develop and apply a mechanistic model based on force balances for predicting pressure drop across scales. With this approach, few small-scale experiments can be used for calibration, and pressure-flow data for large-scale packs can then be predicted with minimum at-scale data. The model was first tested using Phenyl Sepharose 6 FF by calibrating at small scale and then validating the model predictions at larger scale. Strong agreement was observed between predicted and experimental results. The model was then calibrated for seven resins and used to determine a probabilistic operating space calculated based on the likelihood of exceeding pressure limits at scale. Safe operating ranges, accounting for the inherent variability in column packing and resin manufacturing, were set for bed height, fluid velocity, and fluid viscosity. The power of this approach is that it enables screening of resins for potential pressure-flow issues at scale before beginning process development and can be used to set flow rate ranges as solution viscosity changes throughout a chromatographic sequence.
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来源期刊
Journal of Chromatography A
Journal of Chromatography A 化学-分析化学
CiteScore
7.90
自引率
14.60%
发文量
742
审稿时长
45 days
期刊介绍: The Journal of Chromatography A provides a forum for the publication of original research and critical reviews on all aspects of fundamental and applied separation science. The scope of the journal includes chromatography and related techniques, electromigration techniques (e.g. electrophoresis, electrochromatography), hyphenated and other multi-dimensional techniques, sample preparation, and detection methods such as mass spectrometry. Contributions consist mainly of research papers dealing with the theory of separation methods, instrumental developments and analytical and preparative applications of general interest.
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