Virus inactivation using an electrically conducting virus filter in biopharmaceutical manufacturing process

IF 4.5 2区 生物学 Q1 BIOCHEMICAL RESEARCH METHODS
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引用次数: 0

Abstract

Biopharmaceutical manufacturing processes using mammalian cells or plasma carry the risk of viral contamination. To mitigate these risks, it is essential to ensure viral clearance during the downstream process. Virus-retentive filters are used for size-based virus filtration, offering robust viral removal of more than 99.99%. However, virus breakthroughs have also been reported during virus filtration under certain conditions. In addition, these virus-retentive filters are disposable to ensure the safety of bioproducts, leading to significant costs and environmental concerns. In this study, innovative electrically conducting virus filters were fabricated using free-standing carbon veils (CV) and used to achieve additional virus inactivation after filtration. The viruses were captured in a CV-assisted virus filter, which was electrically heated using direct current to inactivate the viruses. This electrically conducting virus filter can inactivate viruses and can be reused up to five times. These results demonstrate that electrical conduction through electrical conducting damaged the phage capsid and eliminated the RNA genome, leading to bacteriophage inactivation. Moreover, it was confirmed that the electrically conducting virus filter could be reused up to five times without any changes to its physical or chemical structure. This study contributes to the reduction of process costs and environmental impacts by enabling the reuse of virus filters and enhancing the safety of the virus filtration process by preventing undesired virus breakthroughs.

在生物制药生产过程中使用导电病毒过滤器灭活病毒
使用哺乳动物细胞或血浆的生物制药生产过程存在病毒污染的风险。为了降低这些风险,必须确保在下游工艺中清除病毒。病毒截留型过滤器用于基于尺寸的病毒过滤,病毒去除率高达 99.99% 以上。不过,也有报道称,在某些条件下,病毒过滤过程中也会出现病毒突破。此外,为了确保生物产品的安全性,这些病毒截留过滤器都是一次性的,这导致了巨大的成本和环境问题。在本研究中,利用独立碳纱(CV)制作了创新的导电病毒过滤器,用于在过滤后进一步灭活病毒。在 CV 辅助病毒过滤器中捕获病毒,然后用直流电对其进行电加热以灭活病毒。这种导电病毒过滤器可以灭活病毒,并可重复使用五次。这些结果表明,通过导电的电传导破坏了噬菌体的外壳,消除了 RNA 基因组,从而导致噬菌体失活。此外,还证实导电病毒过滤器可重复使用五次,其物理或化学结构不会发生任何变化。这项研究有助于降低工艺成本和环境影响,因为它实现了病毒过滤器的重复使用,并通过防止意外的病毒突破提高了病毒过滤工艺的安全性。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
New biotechnology
New biotechnology 生物-生化研究方法
CiteScore
11.40
自引率
1.90%
发文量
77
审稿时长
1 months
期刊介绍: New Biotechnology is the official journal of the European Federation of Biotechnology (EFB) and is published bimonthly. It covers both the science of biotechnology and its surrounding political, business and financial milieu. The journal publishes peer-reviewed basic research papers, authoritative reviews, feature articles and opinions in all areas of biotechnology. It reflects the full diversity of current biotechnology science, particularly those advances in research and practice that open opportunities for exploitation of knowledge, commercially or otherwise, together with news, discussion and comment on broader issues of general interest and concern. The outlook is fully international. The scope of the journal includes the research, industrial and commercial aspects of biotechnology, in areas such as: Healthcare and Pharmaceuticals; Food and Agriculture; Biofuels; Genetic Engineering and Molecular Biology; Genomics and Synthetic Biology; Nanotechnology; Environment and Biodiversity; Biocatalysis; Bioremediation; Process engineering.
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