Seručnik Mojca, Vicente Filipa A, Brečko Živa, Coutinho João A P, Ventura Sónia P M, Žnidaršič-Plazl Polona
Faculty of Chemistry and Chemical Technology, University of Ljubljana, Večna pot 113, SI-1000 Ljubljana, Slovenia.
Aveiro Institute of Materials (CICECO), Department of Chemistry, University of Aveiro, Campus Universitário de Santiago, 3810-193 PT Aveiro, Portugal.
ACS Sustain Chem Eng. 2020 Nov 23;8(46):17097-17105. doi: 10.1021/acssuschemeng.0c05042. Epub 2020 Nov 11.
Temperature-dependent aqueous micellar two-phase systems (AMTPSs) have recently been gaining attention in the isolation of high-added-value biomolecules from their natural sources. Despite their sustainability, aqueous two-phase systems, and particularly AMTPSs, have not been extensively applied in the industry, which might be changed by applying process integration and continuous manufacturing. Here, we report for the first time on an integrated microfluidic platform for fast and low-material-consuming development of continuous protein purification using an AMTPS. A system comprised of a microchannel incubated at high temperature, enabling instantaneous triggering of a two-phase system formation, and a microsettler, allowing complete phase separation at the outlets, is reported here. The separation of phycobiliproteins and particularly the purification of R-phycoerythrin from the contaminant proteins present in the aqueous crude extract obtained from fresh cells of were thereby achieved. The results from the developed microfluidic system revealed that the fractionation performance was maintained while reducing the processing time more than 20-fold when compared with the conventional lab-scale batch process. Furthermore, the integration of a miniaturized ultrafiltration module resulted in the complete removal of the surfactant from the bottom phase containing R-phycoerythrin, as well as in nearly twofold target protein concentration. The process setup successfully exploits the benefits of process intensification along with the integration of various downstream processes. Further transfer to a meso-scale integrated system would make such a system appropriate for the separation and purification of biomolecules with high commercial interest.
温度依赖型水相胶束双相系统(AMTPSs)最近在从天然来源中分离高附加值生物分子方面受到了关注。尽管水相双相系统,特别是AMTPSs具有可持续性,但它们尚未在工业中得到广泛应用,而通过应用过程集成和连续制造可能会改变这种情况。在此,我们首次报道了一种集成微流控平台,用于使用AMTPS快速且低材料消耗地开发连续蛋白质纯化方法。本文报道了一个系统,该系统由一个在高温下孵育的微通道组成,能够瞬间触发双相系统的形成,以及一个微沉降器,可在出口处实现完全相分离。由此实现了藻胆蛋白的分离,特别是从新鲜细胞的水相粗提物中存在的污染蛋白中纯化R-藻红蛋白。与传统的实验室规模间歇过程相比,所开发的微流控系统的结果表明,在减少处理时间20多倍的同时,分馏性能得以保持。此外,集成一个小型超滤模块可完全去除含有R-藻红蛋白的底部相中表面活性剂,同时使目标蛋白浓度提高近两倍。该工艺设置成功地利用了过程强化的优势以及各种下游工艺的集成。进一步转移到中尺度集成系统将使这样的系统适合于分离和纯化具有高商业价值的生物分子。