4.5 Article

Immobilization of an integral membrane protein for biotechnological phenylacetaldehyde production

期刊

JOURNAL OF BIOTECHNOLOGY
卷 174, 期 -, 页码 7-13

出版社

ELSEVIER SCIENCE BV
DOI: 10.1016/j.jbiotec.2014.01.019

关键词

Isomerization; Styrene oxide; Rhodococcus; Two-phase system; 1,2-Cyclohexane dicarboxylic acid diisononyl ester; Hexamol

资金

  1. Deutsche Bundesstiftung Umwelt
  2. European Social Fund
  3. Saxonian Government [GETGEOWEB: 100101363]
  4. EU European Regional Development Fund [POIG01.03.01-00-158/09-00]

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Styrene oxide isomerase (SOI) has previously been shown to be an integral membrane protein performinga highly selective, hydrolytic ring opening reaction of epoxides to yield pure aldehydes. Earlier studies had also shown a high sensitivity of SOIs toward their product phenylacetaldehyde which caused an irreversible inhibition and finally complete loss of activity at higher aldehyde concentrations. Here we report on the covalent immobilization of a styrene oxide isomerase (SOI) on SBA-15 silica carriers. The production of the SOI from a Rhodococcus strain was optimized, the enzyme was enriched and immobilized, and finally the biocatalyst was applied in aqueous as well as in two-phase systems. Linkage of the protein to epoxide or amino groups on the SBA-based carriers led to relatively poor stabilization of the enzyme in an aqueous system. But, improved stability was observed toward organic phases like the non-toxic phthalate-related 1,2-cyclohexane dicarboxylic acid diisononyl ester (Hexamol DINCH) which here to our knowledge was used for the first time in a biotechnological application. With this two-phasesystem and the immobilized SOI, 1.6-2.0x higher product yields were reached and the lifetime of the biocatalyst was tremendously increased. (C) 2014 Elsevier B. V. All rights reserved.

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