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  4. Optimization of a reduced enzymatic reaction cascade for the production of L-alanine
 
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2019
Journal Article
Titel

Optimization of a reduced enzymatic reaction cascade for the production of L-alanine

Abstract
Cell-free enzymatic reaction cascades combine the advantages of well-established in vitro biocatalysis with the power of multi-step in vivo pathways. The absence of a regulatory cell environment enables direct process control including methods for facile bottleneck identification and process optimization. Within this work, we developed a reduced, enzymatic reaction cascade for the direct production of L-alanine from D-glucose and ammonium sulfate. An efficient, activity based enzyme selection is demonstrated for the two branches of the cascade. The resulting redox neutral cascade is composed of a glucose dehydrogenase, two dihydroxyacid dehydratases, a keto-deoxy-aldolase, an aldehyde dehydrogenase and an L-alanine dehydrogenase. This artificial combination of purified biocatalysts eliminates the need for phosphorylation and only requires NAD as cofactor. We provide insight into in detail optimization of the process parameters applying a fluorescamine based L-alanine quantification assay. An optimized enzyme ratio and the necessary enzyme load were identified and together with the optimal concentrations of cofactor (NAD), ammonium and buffer yields of >95% for the main branch and of 8% for the side branch were achieved.
Author(s)
Gmelch, T.J.
Sperl, J.M.
Sieber, V.
Zeitschrift
Scientific Reports
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DOI
10.1038/s41598-019-48151-y
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Language
English
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Fraunhofer-Institut für Grenzflächen- und Bioverfahrenstechnik IGB
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