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Optimization of enzyme parameters for fermentative production of biorenewable fuels and chemicals

机译:优化用于发酵生产生物可再生燃料和化学品的酶参数

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摘要

Microbial biocatalysts such as Escherichia coli and Saccharomyces cerevisiae have been extensively subjected to Metabolic Engineering for the fermentative production of biorenewable fuels and chemicals. This often entails the introduction of new enzymes, deletion of unwanted enzymes and efforts to fine-tune enzyme abundance in order to attain the desired strain performance. Enzyme performance can be quantitatively described in terms of the Michaelis-Menten type parameters Km, turnover number kcat and Ki, which roughly describe the affinity of an enzyme for its substrate, the speed of a reaction and the enzyme sensitivity to inhibition by regulatory molecules. Here we describe examples of where knowledge of these parameters have been used to select, evolve or engineer enzymes for the desired performance and enabled increased production of biorenewable fuels and chemicals. Examples include production of ethanol, isobutanol, 1-butanol and tyrosine and furfural tolerance. The Michaelis-Menten parameters can also be used to judge the cofactor dependence of enzymes and quantify their preference for NADH or NADPH. Similarly, enzymes can be selected, evolved or engineered for the preferred cofactor preference. Examples of exporter engineering and selection are also discussed in the context of production of malate, valine and limonene.
机译:微生物生物催化剂,例如大肠杆菌和酿酒酵母,已经广泛地进行了代谢工程,以发酵生产生物可再生燃料和化学品。这通常需要引入新的酶,删除不需要的酶,并努力微调酶的丰度,以获得所需的菌株性能。酶的性能可以用Michaelis-Menten类型参数Km,周转数kcat和Ki来定量描述,这些参数大致描述了酶对其底物的亲和力,反应速度以及酶对调节分子抑制的敏感性。在这里,我们描述了一些示例,这些示例中的这些参数的知识已用于选择,进化或工程化酶以实现所需的性能,并能够提高生物可再生燃料和化学品的产量。实例包括乙醇,异丁醇,1-丁醇和酪氨酸的生产和糠醛耐受性。 Michaelis-Menten参数还可用于判断酶的辅因子依赖性,并量化其对NADH或NADPH的偏好。类似地,可以针对优选的辅因子偏爱选择,进化或工程改造酶。在苹果酸,缬氨酸和柠檬烯的生产中还讨论了出口商工程和选择的例子。

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