Ghent University, Department of Biosystems Engineering, Coupure Links 653, 9000 Gent, Belgium.
Shahjalal University of Science and Technology, Department of Chemical Engineering and Polymer Science, Sylhet, Bangladesh.
Bioresour Technol. 2018 Feb;249:858-868. doi: 10.1016/j.biortech.2017.10.081. Epub 2017 Nov 12.
A microbial production process was developed to convert CO and valeric acid into tailored poly(3-hydroxybutyrate-co-3-hydroxyvalerate) (PHBV) bioplastics. The aim was to understand microbial PHBV production in mixotrophic conditions and to control the monomer distribution in the polymer. Continuous sparging of CO with pulse and pH-stat feeding of valeric acid were evaluated to produce PHBV copolyesters with predefined properties. The desired random monomer distribution was obtained by limiting the valeric acid concentration (below 1 gL). H-NMR, C-NMR and chromatographic analysis of the PHBV copolymer confirmed both the monomer distribution and the 3-hydroxyvalerate (3HV) fraction in the produced PHBV. A physical-based model was developed for mixotrophic PHBV production, which was calibrated and validated with independent experimental datasets. To produce PHBV with a predefined 3HV fraction, an operating diagram was constructed. This tool was able to predict the 3HV fraction with a very good accuracy (2% deviation).
开发了一种微生物生产工艺,用于将 CO 和戊酸转化为定制的聚(3-羟基丁酸酯-共-3-羟基戊酸酯)(PHBV)生物塑料。目的是了解混合营养条件下微生物 PHBV 的生产情况,并控制聚合物中单体的分布。通过连续脉冲 CO 鼓泡和戊酸 pH -stat 进料来评估,以生产具有预定性能的 PHBV 共聚酯。通过限制戊酸浓度(低于 1 gL)来获得所需的随机单体分布。通过对 PHBV 共聚物的 H-NMR、C-NMR 和色谱分析,证实了所生产的 PHBV 中的单体分布和 3-羟基戊酸酯(3HV)分数。开发了一种基于物理的混合营养 PHBV 生产模型,并用独立的实验数据集进行了校准和验证。为了生产具有预定 3HV 分数的 PHBV,可以构建操作图。该工具能够非常准确地预测 3HV 分数(偏差 2%)。