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Designing novel cellulase systems through agent-based modeling and global sensitivity analysis

机译:通过基于代理的建模和全局敏感性分析设计新型纤维素酶系统

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摘要

Experimental techniques allow engineering of biological systems to modify functionality; however, there still remains a need to develop tools to prioritize targets for modification. In this study, agent-based modeling (ABM) was used to build stochastic models of complexed and non-complexed cellulose hydrolysis, including enzymatic mechanisms for endoglucanase, exoglucanase, and β-glucosidase activity. Modeling results were consistent with experimental observations of higher efficiency in complexed systems than non-complexed systems and established relationships between specific cellulolytic mechanisms and overall efficiency. Global sensitivity analysis (GSA) of model results identified key parameters for improving overall cellulose hydrolysis efficiency including: (1) the cellulase half-life, (2) the exoglucanase activity, and (3) the cellulase composition. Overall, the following parameters were found to significantly influence cellulose consumption in a consolidated bioprocess (CBP): (1) the glucose uptake rate of the culture, (2) the bacterial cell concentration, and (3) the nature of the cellulase enzyme system (complexed or non-complexed). Broadly, these results demonstrate the utility of combining modeling and sensitivity analysis to identify key parameters and/or targets for experimental improvement.
机译:实验技术允许对生物系统进行工程设计以修改功能;但是,仍然需要开发工具来确定修改目标的优先级。在这项研究中,基于主体的建模(ABM)用于建立复杂和非复杂纤维素水解的随机模型,包括内切葡聚糖酶,外切葡聚糖酶和β-葡萄糖苷酶活性的酶机制。建模结果与实验观察结果相吻合,与在复杂系统中效率高于非复杂系统的实验观察结果一致,并且特定纤维素分解机理与总体效率之间已建立关系。模型结果的全局敏感性分析(GSA)确定了改善总体纤维素水解效率的关键参数,包括:(1)纤维素酶半衰期,(2)外切葡聚糖酶活性,和(3)纤维素酶组成。总体而言,发现以下参数会显着影响整合生物过程(CBP)中的纤维素消耗:(1)培养物的葡萄糖摄取率,(2)细菌细胞浓度,以及(3)纤维素酶系统的性质(复杂或非复杂)。广泛地,这些结果证明了将建模和灵敏度分析相结合以识别关键参数和/或实验改进目标的实用性。

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