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纳秒级脉冲电场增强植物细胞发酵产物的回收。

Nanosecond pulsed electrical fields enhance product recovery in plant cell fermentation.

机构信息

Molecular Cell Biology, Botanical Institute, Karlsruhe Institute of Technology, Karlsruhe, Germany.

Institute for Pulsed Power and Microwave Technology (IHM), Karlsruhe Institute of Technology, Karlsruhe, Germany.

出版信息

Protoplasma. 2020 Nov;257(6):1585-1594. doi: 10.1007/s00709-020-01534-9. Epub 2020 Jul 10.

Abstract

The potential of pharmacologically active secondary plant metabolites is limited by the low yield from often rare plants, and the lack of economically feasible chemical synthesis of these complex compounds. Plant cell fermentation offers an alternative strategy to overcome these constraints. However, the efficiency of this approach is limited by intracellular sequestration of the products, such that continuous bioprocessing is not possible. As a precondition for such a, more attractive, continuous process, it is of great importance to stimulate the export of the product into the medium without impairing viability and, thus, the productivity of the cells. Using nicotine alkaloids of tobacco as a case study, an alternative strategy is explored, where nanosecond pulsed electric fields (nsPEFs) are applied for the efficient downstream recovery of the products. To maintain cell viability and allow for the further use of biomass, cells were exposed to strong (1-20 kV·cm), but very short (10-100 ns) electric pulses, which leads to a temporary permeabilisation of cell membranes. Using two transgenic cell lines, where two key genes involved in the metabolism of the anti-Alzheimer compound nornicotine were overexpressed, we could show that this nsPEF treatment improved the partitioning of some nicotine alkaloids to the culture medium without impairing viability, nor the synthesis of alkaloids. However, this release was only partial and did not work for nornicotine. Thus, nsPEFs produced a fractionation of alkaloids. We explain this electrofractionation by a working model considering the differential intracellular compartmentalization of nicotineic alkaloids.

摘要

植物次生代谢产物具有潜在的药用价值,但由于其往往来源于稀有植物,因此产量较低,而且这些复杂化合物的经济可行的化学合成方法也很缺乏。植物细胞发酵为克服这些限制提供了一种替代策略。然而,这种方法的效率受到产物在细胞内隔离的限制,因此无法进行连续的生物加工。作为这种更具吸引力的连续过程的前提条件,刺激产物向培养基中的输出而不损害细胞活力和生产力非常重要。本文以烟草中的尼古丁生物碱为例,探索了一种替代策略,即利用纳秒级脉冲电场(nsPEFs)有效地回收产物。为了保持细胞活力并允许进一步利用生物质,将细胞暴露于强(1-20 kV·cm)但非常短(10-100 ns)的电脉冲下,这会导致细胞膜暂时通透性增加。使用两种转基因细胞系,其中过量表达了参与抗阿尔茨海默病化合物降烟碱代谢的两个关键基因,我们表明这种 nsPEF 处理可改善一些尼古丁生物碱向培养基中的分配,而不影响细胞活力或生物碱的合成。然而,这种释放只是部分的,对降烟碱不起作用。因此,nsPEFs 产生了生物碱的分级分离。我们通过考虑尼古丁生物碱的细胞内差异区室化的工作模型来解释这种电分级。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/ad75/7567687/9d13dbaefc44/709_2020_1534_Fig1_HTML.jpg

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