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开发新型脂质体复合物配方方法以改善用于慢病毒载体生产的大规模瞬时转染。

Development of novel lipoplex formulation methodologies to improve large-scale transient transfection for lentiviral vector manufacture.

作者信息

Williams-Fegredo Thomas, Davies Lee, Knevelman Carol, Mitrophanous Kyriacos, Miskin James, Rafiq Qasim A

机构信息

Oxford Biomedica (UK) Limited, Windrush Court, Transport Way, Oxford OX4 6LT, UK.

Advanced Centre for Biochemical Engineering, Department of Biochemical Engineering, University College London, Bernard Katz Building, Gower Street, London WC1E 6BT, UK.

出版信息

Mol Ther Methods Clin Dev. 2024 Apr 26;32(2):101260. doi: 10.1016/j.omtm.2024.101260. eCollection 2024 Jun 13.

Abstract

Large-scale transient transfection has advanced significantly over the last 20 years, enabling the effective production of a diverse range of biopharmaceutical products, including viral vectors. However, a number of challenges specifically related to transfection reagent stability and transfection complex preparation times remain. New developments and improved transfection technologies are required to ensure that transient gene expression-based bioprocesses can meet the growing demand for viral vectors. In this paper, we demonstrate that the growth of cationic lipid-based liposomes, an essential step in many cationic lipid-based transfection processes, can be controlled through adoption of low pH (pH 6.40 to pH 6.75) and in low salt concentration (0.2× PBS) formulations, facilitating improved control over the nanoparticle growth kinetics and enhancing particle stability. Such complexes retain the ability to facilitate efficient transfection for prolonged periods compared with standard preparation methodologies. These findings have significant industrial applications for the large-scale manufacture of lentiviral vectors for two principal reasons. First, the alternative preparation strategy enables longer liposome incubation times to be used, facilitating effective control in a good manufacturing practices setting. Second, the improvement in particle stability facilitates the setting of wider process operating ranges, which will significantly improve process robustness and maximise batch-to-batch control and product consistency.

摘要

在过去20年里,大规模瞬时转染技术取得了显著进展,能够有效生产包括病毒载体在内的多种生物制药产品。然而,与转染试剂稳定性和转染复合物制备时间相关的一些挑战依然存在。需要新的进展和改进的转染技术,以确保基于瞬时基因表达的生物工艺能够满足对病毒载体不断增长的需求。在本文中,我们证明,在许多基于阳离子脂质的转染过程中,一个关键步骤——基于阳离子脂质的脂质体的生长,可以通过采用低pH值(pH 6.40至pH 6.75)和低盐浓度(0.2×PBS)配方来控制,从而有助于更好地控制纳米颗粒的生长动力学并增强颗粒稳定性。与标准制备方法相比,此类复合物在较长时间内仍保持促进高效转染的能力。这些发现对于慢病毒载体的大规模生产具有重要的工业应用价值,主要有两个原因。第一,这种替代制备策略能够延长脂质体孵育时间,便于在良好生产规范环境中进行有效控制。第二,颗粒稳定性的提高有助于设定更宽的工艺操作范围,这将显著提高工艺稳健性,并最大限度地实现批次间控制和产品一致性。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/1f2b/11092396/15df4d9a1981/fx1.jpg

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