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Effective induction of phytase in Pichia pastoris fed-batch culture using an ANN pattern recognition model-based on-line adaptive control strategy

机译:基于ANN模式识别模型的在线自适应控制策略在巴斯德毕赤酵母补料分批培养中有效诱导植酸酶

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摘要

An on-line adaptive substrate feeding control system based on DO/pH measurements and artificial neural network pattern recognition (ANNPR) model for fed-batch cultivation processes proposed previously was successfully applied for the phytase production with recombinant Pichia pastoris. The control strategy could effectively improve the fermentation performance for both cultivation and induction phases. With the standard ANNPR model-based control strategy, the cultivation time before starting the methanol induction could be shortened for about 30%. By adequately increasing the feeding rate iterative step size of the ANNPR-based control during induction phase, methanol concentration could be automatically controlled within an optimal range, leading to an approximate three-fold stable increase in phytase activity compared with those obtained by the traditional DO-Stat method and the on-line methanol electrode-based on-off control strategy. The effectiveness, universal ability, as well as the operational simplicity of the proposed control system has been further verified in the recombinant P. pastoris fed-batch culture process.
机译:先前提出的基于DO / pH测量和人工神经网络模式识别(ANNPR)模型的在线自适应底物补料控制系统已成功应用于重组毕赤酵母生产植酸酶的过程。该控制策略可以有效地提高发酵阶段和诱导阶段的发酵性能。使用基于标准ANNPR模型的控制策略,可以将开始甲醇诱导之前的培养时间缩短约30%。通过在诱导期充分增加基于ANNPR的对照的进料速率迭代步长,可以将甲醇浓度自动控制在最佳范围内,从而使植酸酶活性比传统DO获得的活性稳定增加约三倍。 -Stat方法和基于在线甲醇电极的开关控制策略。在重组巴斯德毕赤酵母分批补料培养过程中,所提出的控制系统的有效性,通用性以及操作简便性得到了进一步验证。

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