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两步统计实验设计和人工神经网络优化及建模 AD119 生长和 1,3-丙二醇生产

Optimization and Modeling of AD119 Growth and 1,3-Propanediol Production Using Two-Step Statistical Experimental Design and Artificial Neural Networks.

机构信息

Department of Biotechnology and Food Microbiology, Faculty of Food Science and Nutrition, Poznań University of Life Sciences, 60-624 Poznań, Poland.

Department of Dairy and Process Engineering, Faculty of Food Science and Nutrition, Poznań University of Life Sciences, 60-624 Poznań, Poland.

出版信息

Sensors (Basel). 2023 Jan 22;23(3):1266. doi: 10.3390/s23031266.

Abstract

1,3-propanediol (1,3-PD) has a wide range of industrial applications. The most studied natural producers capable of fermenting glycerol to 1,3-PD belong to the genera , , and . In this study, the optimization of medium composition for the biosynthesis of 1,3-PD by AD119 was performed using the one-factor-at-a-time method (OFAT) and a two-step statistical experimental design. Eleven mineral components were tested for their impact on the process using the Plackett-Burman design. MgSO and CoCl were found to have the most pronounced effect. Consequently, a central composite design was used to optimize the concentration of these mineral components. Besides minerals, carbon and nitrogen sources were also optimized. Partial glycerol substitution with other carbon sources was found not to improve the bioconversion process. Moreover, although yeast extract was found to be the best nitrogen source, it was possible to replace it in part with (NH)SO without a negative impact on 1,3-PD production. As a part of the optimization procedure, an artificial neural network model of the growth of and 1,3-PD production was developed as a predictive tool supporting the design and control of the bioprocess under study.

摘要

1,3-丙二醇(1,3-PD)具有广泛的工业应用。最受研究关注的能够将甘油发酵为 1,3-PD 的天然生产者属于 、 和 属。在这项研究中,使用单因素实验设计(OFAT)和两步统计实验设计对 AD119 生物合成 1,3-PD 的培养基组成进行了优化。使用 Plackett-Burman 设计测试了 11 种矿物质成分对该过程的影响。发现 MgSO 和 CoCl 的影响最为显著。因此,使用中心复合设计优化了这些矿物质成分的浓度。除了矿物质,还优化了碳源和氮源。部分甘油替代其他碳源并没有改善生物转化过程。此外,虽然酵母提取物是最佳的氮源,但可以部分用(NH)SO 替代而对 1,3-PD 生产没有负面影响。作为优化过程的一部分,还开发了 和 1,3-PD 生产的生长人工神经网络模型,作为支持研究中生物过程设计和控制的预测工具。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/bd3e/9919890/30dbc5ff0f25/sensors-23-01266-g001.jpg

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