弥合差距:从实验室到农业食品工业的噬菌体制造过程。

IF 2.5 4区 医学 Q3 VIROLOGY
Elham Mohammadi , Mohammadreza Rahimian , Bahman Panahi
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引用次数: 0

摘要

由于对食品安全和抗菌素耐药性的担忧日益增加,噬菌体作为可持续生物防治剂在农业食品工业中的应用日益增加。本文综述了噬菌体生产工艺,特别关注大规模生产所需的关键上游和下游工艺。实现大量噬菌体产量需要上游程序,包括发酵和噬菌体扩增。同时,下游工序,包括净化、去除内毒素和配方,对于保证产品质量和符合法规是必不可少的。尽管噬菌体生产过程的上游和下游工艺优化取得了进展,但这些方法并没有有效地应用于制造过程。此外,噬菌体产品的商业化受到支离破碎的规则和不一致的法规的阻碍。诸如增强型色谱、连续处理和封装技术等新兴技术为提高稳定性、效率和可扩展性提供了前景,以填补这些空白。此外,通过促进实时流程优化、预测性质量控制(QC)和独特的噬菌体产品创造,人工智能(AI)和机器学习的整合有可能彻底改变噬菌体制造业。为了提供一致的标准,鼓励创新,并弥合学术研究和商业应用之间的差距,本综述确定了差距,并强调了学术界、工业界和监管机构之间合作的必要性。为了有效利用噬菌体的潜力来改善食品安全、对抗抗菌素耐药性和促进可持续农业实践,农业食品行业必须推进噬菌体制造技术并协调监管框架。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

Bridging the gap: Phage manufacturing processes from laboratory to agri-food industry

Bridging the gap: Phage manufacturing processes from laboratory to agri-food industry
Interest in bacteriophages (phages) as sustainable biocontrol agents in the agri-food industry has increased because of growing worries about food safety and antimicrobial resistance (AMR). The phage manufacturing process is examined in this review, with particular attention paid to the crucial upstream and downstream processes needed for large-scale production. Achieving large phage yields requires upstream procedures, including fermentation and phage amplification. In the meantime, downstream procedures, including purification, endotoxin removal, and formulation, is essential for guaranteeing product quality and regulatory compliance. Despite advances in upstream and downstream process optimization of phage production processes, these methods are not effectively utilized in manufacturing processes. Additionally, the commercialization of phage products is hindered by fragmented rules and inconsistent regulations. Emerging technologies such as enhanced chromatography, continuous processing, and encapsulating techniques provide prospects for increased stability, efficiency, and scalability to fill these gaps. Furthermore, by facilitating real-time process optimization, predictive quality control (QC), and unique phage product creation, the integration of artificial intelligence (AI) and machine learning has the potential to transform the phage manufacturing industry completely. In order to provide consistent standards, encourage innovation, and bridge the gap between academic research and commercial applications, this review identifies gaps and highlights the necessity of cooperation between academia, industry, and regulatory agencies. To effectively utilize phages' potential to improve food safety, fight AMR, and promote sustainable agricultural practices, the agri-food industry must advance phage manufacturing techniques and harmonize regulatory frameworks.
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来源期刊
Virus research
Virus research 医学-病毒学
CiteScore
9.50
自引率
2.00%
发文量
239
审稿时长
43 days
期刊介绍: Virus Research provides a means of fast publication for original papers on fundamental research in virology. Contributions on new developments concerning virus structure, replication, pathogenesis and evolution are encouraged. These include reports describing virus morphology, the function and antigenic analysis of virus structural components, virus genome structure and expression, analysis on virus replication processes, virus evolution in connection with antiviral interventions, effects of viruses on their host cells, particularly on the immune system, and the pathogenesis of virus infections, including oncogene activation and transduction.
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