甘露醇加料间歇式双酶反应器的多目标优化

G. Maria, Laura Renea, C. Maria
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引用次数: 0

摘要

酶促反应可以用更温和的反应条件和产生更少的废物成功地取代复杂的化学合成。所开发的基于模型的数值分析是确定复杂多酶反应器最优操作策略的有益工具。结果表明,在这种情况下,间歇式堆(FBR)最优运行策略的确定是一个困难的多目标优化问题。举例说明了利用MDH(甘露醇脱氢酶)和烟酰胺腺嘌呤二核苷酸(NADH)辅助因子将d -果糖双酶还原为甘露醇,在FDH(甲酸脱氢酶)存在的情况下,NADH的原位连续再生以牺牲甲酸降解为代价。对于这样一个耦合系统,基于模型的工程评估必须考虑多个相互竞争(对立)的优化目标。在众多新颖元素中:i)在批处理过程中,采用严格控制的可变进料(时间阶跃式)优化操作的快堆可以提高性能;ii)在考虑多目标优化时,与最佳单堆或循环堆或最佳串联批对批堆(SeqBR)相比,最佳运行快堆报告了更好的性能;iii)在FBR“时间弧”期间,底物、酶和辅因子的同时可变投料在文献中很少涉及,但在这里得到了证明,从而带来了一致的经济效益。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Multiobjective Optimization of a Fed-Batch Bienzymatic Reactor for Mannitol Production
Enzymatic reactions can successfully replace complex chemical syntheses using milder reaction conditions and generating less waste. The developed model-based numerical analysis turned out to be a beneficial tool to determine the optimal operating policies of complex multienzymatic reactors. As proved, for such cases, the determination of a Fed-Batch Reactor (FBR) optimal operating policy results in a difficult multiobjective optimization problem. Exemplification is made for the bienzymatic reduction of D-fructose to mannitol by using MDH (mannitol dehydrogenase) and nicotinamide adenine dinucleotide (NADH) cofactor with the in situ continuous regeneration of NADH at the expense of formate degradation in the presence of FDH (formate dehydrogenase). For such a coupled system, the model-based engineering evaluations must account for multiple competing (opposable) optimization objectives. Among the multiple novelty elements: i) an optimally operated FBR with a tightly controlled variable feeding (of the time stepwise type) during the batch can lead to higher performance; ii) the optimally operated FBR reported better performance compared to an optimally single or cyclic BR, or to optimally serial batch-to-batch reactors (SeqBR), when considering a multiobjective optimization; iii) the concomitant variable feeding with substrate, enzymes, and cofactor during the FBR “time-arcs” is an option seldom approached in the literature but which is proved here, leading to consistent economic benefits.
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