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  4. Process development for oxidations of hydrophobic compounds applying cytochrome P450 monooxygenases in-vitro
 
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Process development for oxidations of hydrophobic compounds applying cytochrome P450 monooxygenases in-vitro

Publikationstyp
Journal Article
Date Issued
2016-09-10
Author(s)
Brummund, Jan  
Müller, Monika  
Schmitges, Thomas  
Kaluzna, Iwona  
Mink, Daniel  
Hilterhaus, Lutz  
Liese, Andreas  orcid-logo
Institut
Technische Biokatalyse V-6  
TORE-URI
http://hdl.handle.net/11420/5447
Journal
Journal of biotechnology  
Volume
233
Start Page
143
End Page
150
Citation
Journal of biotechnology (233): 143-150 (2016-09-10)
Publisher DOI
10.1016/j.jbiotec.2016.07.002
Scopus ID
2-s2.0-84978374750
Cytochrome P450 monooxygenases are a unique family of enzymes that are able to catalyze regio- and stereospecific oxidations for a broad substrate range. However, due to limited enzyme activities and stabilities, hydrophobicity of substrates, as well as the necessity of a continuous electron and oxygen supply the implementation of P450s for industrial processes remains challenging. Aim of this study was to point out key aspects for the development of an efficient synthesis concept for cytochrome P450 catalyzed oxidations. In order to regenerate the natural cofactor NADPH, a glucose dehydrogenase was applied. The low water soluble terpene α-ionone was used as substrate for the model reaction system. The studies reveal that an addition of surfactants in combination with low volumetric amounts of co-solvent can significantly increase substrate availability and reaction rates. Furthermore, these additives facilitated a reliable sampling procedure during the process. Another key factor for the process design was the oxygen supply. Based on various investigations, a bubble-aerated stirred tank reactor in batch mode represents a promising reactor concept for P450 oxidations. Main restriction of the investigated reaction system was the low process stability of the P450 monooxygenase, characterized by maximum total turnover numbers of ∼4100 molα‐ionone/molP450.
Subjects
Biocatalytic oxidations
Cofactor regeneration
Cytochrome P450 monooxygenases
Hydrophobic substrates
Oxidative enzyme stability
Oxygen supply
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