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在满足工业生产工艺约束的高产连续培养(细胞培养罐)中优化噬菌体的繁殖。

Optimization of bacteriophage propagation in high-yield continuous culture (cellstat) meeting the constraints of industrial manufacturing processes.

机构信息

IUT du Littoral Côte d'Opale, Département Génie Biologique, Université du Littoral Côte d'Opale, Bassin Napoléon B.P. 120, 63327 Boulogne-sur-Mer Cedex, France.

IUT du Littoral Côte d'Opale, Département Génie Biologique, Université du Littoral Côte d'Opale, Bassin Napoléon B.P. 120, 63327 Boulogne-sur-Mer Cedex, France; Univ. Littoral Côte d'Opale, UMRt 1158 BioEcoAgro, USC ANSES, INRAe, Univ. Artois, Univ. Lille, Univ. Picardie Jules Verne, Univ. Liège, Junia, 62200 Boulogne-sur-Mer, France.

出版信息

J Biosci Bioeng. 2024 Dec;138(6):507-514. doi: 10.1016/j.jbiosc.2024.09.001. Epub 2024 Oct 5.

DOI:10.1016/j.jbiosc.2024.09.001
PMID:39368907
Abstract

The growing use of bacteriophages in the fields of agriculture, agri-food, veterinary treatments, and medicine involves the quantitative production of these bacteriophages. In this study, we propose a bacteriophage production protocol that can easily be transposed to industry. We used a cellstat production system because the latest studies have shown that it is the most suitable process for the production of phages due to volumetric productivity, safety (limitation of co-evolution), and flexibility (choice of growth rate criteria). Sizing of the assembly used makes it possible to extrapolate the results to industrial production. The production conditions are indicated precisely, which would allow manufacturers to adapt the protocol to their own equipment. We propose experimental conditions in order to obtain a stable Escherichia coli population, qualitatively and over time, and production of high-titer T7 bacteriophages. The optimized production conditions (yield, cost and simplicity of the process) are: a buffered peptone water medium concentration of 11 g L and a dilution rate of 1.6 h. Under these conditions, we obtained a production of 7.35×10 plaque-forming units (PFU) L day with a concentration of 9.8×10 PFU mL. The strength of this work lies in its focus on industrial applicability.

摘要

噬菌体在农业、农食、兽医治疗和医学领域的应用日益广泛,这涉及到这些噬菌体的定量生产。在本研究中,我们提出了一种噬菌体生产方案,该方案可以很容易地应用于工业生产。我们使用了细胞培养生产系统,因为最新的研究表明,由于其容积生产率、安全性(限制共同进化)和灵活性(选择生长速率标准),该系统是最适合噬菌体生产的工艺。组装的尺寸设计使其可以将结果推断到工业生产中。确切地指出了生产条件,这将允许制造商根据自己的设备来调整该方案。我们提出了实验条件,以获得稳定的大肠杆菌种群,定性地和随时间推移的种群,以及生产高滴度的 T7 噬菌体。优化的生产条件(产量、成本和工艺的简单性)为:缓冲蛋白胨水培养基浓度为 11 g/L 和稀释率为 1.6 h。在这些条件下,我们获得了 7.35×10 个噬菌斑形成单位(PFU)/L·天的产量,浓度为 9.8×10 PFU/mL。这项工作的优势在于其专注于工业适用性。

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