Department of Pharmaceutical Sciences, School of Pharmacy, University of Connecticut, Storrs, Connecticut, 06269, USA.
Department of Chemical & Biomolecular Engineering, University of Connecticut, 69 N. Eagleville Road, Storrs, Connecticut, 06269, USA.
AAPS PharmSciTech. 2021 May 12;22(4):153. doi: 10.1208/s12249-021-02034-6.
Large volumes of protein solutions are commonly stored in a frozen state before further drug product fill and finish. This study aimed to establish a design space to perform large-scale freeze-thaw (F/T) processes of biotherapeutics without inducing protein destabilization. A response surface model was designed to evaluate the following main factors and interactions: fill volume of the protein solution in 1-L containers, distance among nine containers during both F/T, freezer set temperature, and a novel forced air flow methodology during thawing. The analysis from 46 experimental runs indicated over 4-fold increase in the freezing rate by lowering the freezing temperature from -20 to -80°C, and the forced air flow at 98 fpm doubled the thawing rate. Furthermore, multivariate linear regression modeling revealed the significant impact of all main factors investigated on lactate dehydrogenase (LDH) quality attributes. The factor that most strongly affected the retention of LDH activity was the loading distance: ≥ 5 cm among containers positively affected the LDH activity response in 50.6%. The factor that most strongly retained the LDH tetramers was the set freezer temperature towards the lower range of -80°C (2.2% higher tetramer retention compared to -20°C freezing, due to faster freezing rate). In summary, this DoE-based systematic analysis increased F/T process understanding at large scale, identified critical F/T process parameters, and confirmed the feasibility of applying faster freezing and forced air thawing procedures to maintain the stability of LDH solutions subject to large-scale F/T.
大量的蛋白质溶液通常在进一步进行药物产品灌装和完成之前以冷冻状态储存。本研究旨在建立一个设计空间,以在不引起蛋白质失稳的情况下进行大规模的冷冻-解冻(F/T)工艺。设计了响应面模型来评估以下主要因素和相互作用:在 1-L 容器中蛋白质溶液的填充体积、F/T 过程中九个容器之间的距离、冷冻机设定温度以及解冻过程中的新型强制空气流动方法。46 次实验运行的分析表明,通过将冷冻温度从-20°C降低至-80°C,冷冻速率提高了 4 倍以上,而 98 fpm 的强制空气流使解冻速率提高了 1 倍。此外,多元线性回归建模显示,所有调查的主要因素对乳酸脱氢酶(LDH)质量属性都有显著影响。对 LDH 活性保留影响最大的因素是装载距离:容器之间的距离≥5cm 对 LDH 活性响应的正面影响为 50.6%。对 LDH 四聚体保留影响最大的因素是冷冻机设定温度向较低范围的-80°C(与-20°C 冷冻相比,四聚体保留率提高了 2.2%,因为冷冻速率更快)。总之,基于设计实验的系统分析提高了大规模 F/T 过程的理解,确定了关键的 F/T 工艺参数,并证实了应用更快的冷冻和强制空气解冻程序来保持 LDH 溶液在大规模 F/T 下的稳定性是可行的。