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Factorial and Economic Evaluation of an Aqueous Two-Phase Partitioning Pilot Plant for Invertase Recovery From Spent Brewery Yeast

机译:从废啤酒酵母中回收酶的水两相分区试验工厂的析因和经济评价

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摘要

Aqueous two-phase systems (ATPS) have been reported as an attractive biocompatible extraction system for recovery and purification of biological products. In this work, the implementation, characterization, and optimization (operational and economic) of invertase extraction from spent brewery yeast in a semi-automatized pilot plant using ATPS is reported. Gentian violet was used as tracer for the selection of phase composition through phase entrainment minimization. Yeast suspension was chosen as a complex cell matrix model for the recovery of the industrial relevant enzyme invertase. Flow rates of phases did not have an effect, given that a bottom continuous phase is given, while load of sample and number of agitators improved the recovery of the enzyme. The best combination of factors reached a recovery of 129.35 ± 2.76% and a purification factor of 4.98 ± 1.10 in the bottom phase of a PEG-Phosphate system, also resulting in the removal of inhibitor molecules increasing invertase activity as reported by several other authors. Then, an economic analysis was performed to study the production cost of invertase analyzing only the significant parameters for production. Results indicate that the parameters being analyzed only affect the production cost per enzymatic unit, while variations in the cost per batch are not significant. Moreover, only the sample load is significant, which, combined with operational optimization results, gives the same optimal result for operation, maximizing recovery yield (15% of sample load and 1 static mixer). Overall res ults of these case studies show continuous pilot-scale ATPS as a viable and reproducible extraction/purification system for high added-value biological compounds.
机译:据报道,水两相系统(ATPS)是一种有吸引力的生物相容性提取系统,用于生物产品的回收和纯化。在这项工作中,报道了在使用ATPS的半自动化中试工厂中从啤酒废酵母中提取蔗糖酶的实施,表征和优化(操作和经济)。龙胆紫被用作示踪剂,用于通过最小化相夹带来选择相组成。选择酵母悬浮液作为复杂的细胞基质模型以回收工业相关的酶转化酶。考虑到给出了底部连续相,各相的流速没有影响,而样品的负载和搅拌器的数量提高了酶的回收率。因素的最佳组合在PEG-磷酸盐系统的底部阶段达到了129.35±2.76%的回收率和4.98±1.10的纯化因子,这也导致了抑制剂分子的去除,从而提高了转化酶的活性,如其他几位作者所报道。然后,进行经济分析以研究转化酶的生产成本,仅分析重要的生产参数。结果表明,所分析的参数仅影响每酶单位的生产成本,而每批成本的变化并不明显。此外,只有样品负载很重要,再加上运行优化结果,可以提供相同的最佳运行结果,从而最大程度地提高回收率(15%的样品负载和1个静态混合器)。这些案例研究的总体结果表明,连续的中试规模ATPS作为高附加值生物化合物的可行且可再现的提取/纯化系统。

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