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Batch Control of Genetic Alterations for Optimal Metabolic Engineering

机译:批量控制最佳代谢工程的遗传改变

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Metabolic engineering manipulations can be performed in an optimal manner to maximize desired cellular properties. In prior work [1], a bilevel optimization framework was developed to demonstrate that temporal genetic manipulations yield optimal productivity. In this work, the bilevel optimization framework is coupled with control algorithms to determine the genetic manipulation strategies in practical bioprocess situations. Ethanol production in an anaerobic batch fermentation of Escherichia coli in two case studies are considered. In the first, the bilevel optimization framework is augmented to incorporate a penalty for longer time of operation. The framework successfully optimizes the batch time along with the genetic manipulations for maximizing the desired objectives. In the second, the bilevel optimization framework is coupled to a parameter estimation algorithm to compensate for plant-model mismatch. Starting from extreme initial guesses for the unknown growth inhibition constant, the framework converges to the optimal solution within 4 batches.
机译:可以以最佳方式进行代谢工程操纵以最大化所需的细胞性质。在现有工作[1]中,开发了一种双级优化框架,以证明颞遗传操作产生最佳的生产率。在这项工作中,Bilevel优化框架与控制算法耦合,以确定实际生物过程中的遗传操作策略。考虑了两种案例研究中大肠杆菌的厌氧分批发酵中的乙醇生产。首先,BileVel优化框架被增强以结合惩罚以实现更长的操作时间。该框架成功优化了批量时间以及遗传操作,以便最大化所需的目标。在第二中,彼此优化框架耦合到参数估计算法以补偿植物模型不匹配。从极端初始猜测开始对未知的生长抑制常数,该框架会收敛于4批次内的最佳溶液。

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