Buchmann Leandro, Mathys Alexander
Laboratory of Sustainable Food Processing, Department of Health Sciences and Technology, Institute of Food Nutrition and Health, IFNH, ETH Zurich, Zurich, Switzerland.
Front Bioeng Biotechnol. 2019 Oct 16;7:265. doi: 10.3389/fbioe.2019.00265. eCollection 2019.
The bio-based industry is urged to find solutions to meet the demands of a growing world population. In this context, increased resource efficiency is a major goal. Pulsed electric field (PEF) processing is a promising technological solution. Conventional PEF and the emerging area of nanosecond PEF (nsPEF) have been shown to induce various biological effects, with nsPEF inducing pronounced intracellular effects, which could provide solutions for currently faced challenges. Based on the flexibility and continuous operation of PEF and nsPEF processing, the technology can be integrated into many existing cultivation systems; its modularity provides an approach for inducing specific effects. Depending on the treatment conditions, selective inactivation, continuous extraction without impeding cell viability, as well as the stimulation of cell growth and/or cellular compound stimulation are potential applications in the bio-based industry. However, continuous treatment currently involves heterogeneous energy inputs. Increasing the homogeneity of PEF and nsPEF processing by considering the flow and electric field heterogeneity may allow for more targeted effects on biological cells, further increasing the potential of the technology for bio-based applications. We provide an overview of existing and potential applications of PEF and nsPEF and suggest that theoretical and practical analyses of flow and electric field heterogeneity may provide a basis for obtaining more targeted effects on biological cells and for further increasing the bio-based applications of the technology, which thereby could become a key technology for circular economy approaches in the future.
生物基产业迫切需要找到满足不断增长的世界人口需求的解决方案。在这种背景下,提高资源效率是一个主要目标。脉冲电场(PEF)处理是一种很有前景的技术解决方案。传统的PEF和新兴的纳秒脉冲电场(nsPEF)领域已被证明能诱导多种生物学效应,其中nsPEF能诱导明显的细胞内效应,这可为当前面临的挑战提供解决方案。基于PEF和nsPEF处理的灵活性和连续运行,该技术可集成到许多现有的培养系统中;其模块化提供了一种诱导特定效应的方法。根据处理条件,选择性失活、在不影响细胞活力的情况下连续提取,以及刺激细胞生长和/或细胞化合物刺激是生物基产业中的潜在应用。然而,目前的连续处理涉及不均匀的能量输入。通过考虑流动和电场的不均匀性来提高PEF和nsPEF处理的均匀性,可能会对生物细胞产生更具针对性的效应,进一步提高该技术在生物基应用中的潜力。我们概述了PEF和nsPEF的现有及潜在应用,并提出对流动和电场不均匀性的理论和实际分析可能为对生物细胞获得更具针对性的效应以及进一步增加该技术在生物基应用方面提供基础,从而使其可能成为未来循环经济方法的关键技术。