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Schüttler, S.

Publications and source records attributed to Schüttler, S..

2 recordsLinked to original sources

Plasma-driven biocatalysis using the cytochrome P450 enzyme CYP152BSβ

Plasma-driven biocatalysis utilizes in situ H2O2 production by atmospheric pressure plasmas to drive H2O2-dependent enzymatic reactions. Having previously established plasma-driven biocatalysis using recombinant unspecific peroxygenase from Agrocybe aegerita (rAaeUPO) to produce (R)-1-phenylethanol from ethylbenzene (ETBE), we here employed CYP152 from Bacillus subtilis (CYP152BS{beta}). CYP152BS{beta} naturally hydroxylates medium and long-chain carboxylic acids, and, with short-chain carboxylic acids as decoy molecules, also converts non-natural substrates such as ETBE. To produce active CYP152BS{beta} overexpression and heme loading were optimized. The conversion of the non-natural substrates guaiacol and ABTS with heptanoic acid as decoy molecule and H2O2 from stock solution yielded 18.28 and 21.13 nmol product min-1 [Formula], respectively. These reactions also served to assess compatibility of CYP152BS{beta} with plasma-driven biocatalysis regarding temperature and H2O2 operating windows. To establish CYP152BS{beta}-based plasma-driven biocatalysis, immobilized enzyme in a rotating bed reactor (5 ml reaction volume) was then supplied with H2O2 from a capillary plasma jet operated with 1280 ppm H2O in helium. After a 120 min run time a turnover number (TON) of 18.82 mol(R)-1-PhOl [Formula] was reached. We conclude that plasma-driven biocatalysis can be extended to other H2O2-dependent enzymes. Future efforts will be directed at increasing the TON and product range.

biochemistry↗

The atmospheric pressure capillary plasma jet is well-suited to supply H2O2 for plasma-driven biocatalysis

Plasma-generated H2O2 can be used to fuel biocatalytic reactions that require H2O2 as co-substrate such as the conversion of ethylbenzene to (R)-1-phenylethanol ((R)-1-PhOl) catalyzed by unspecific peroxygenase from Agrocybe aegerita (rAaeUPO). Immobilization was recently shown to protect biocatalysts from inactivation by highly reactive plasma-produced species, however, H2O2 supply by the employed plasma sources ({micro}APPJ and DBD) was limiting for rAaeUPO performance. In this study we evaluated a recently introduced capillary plasma jet for suitability to supply H2O2 in situ. H2O2 production was modulated by varying the water concentration in the feed gas, providing a greater operating window for applications in plasma-driven biocatalysis. In a static system after 80 min of biocatalysis, a turnover number of 44,199 mol(R)-1-PhOl mol-1rAaeUPO was achieved without significant enzyme inactivation. By exchanging the reaction solution every 5 min, a total product yield of 122 {micro}mol (R)-1-PhOl was achieved in 700 min run time, resulting in a total turnover number of 174,209 mol(R)-1-PhOl mol-1rAaeUPO. We conclude that the capillary plasma jet, due to its flexibility regarding feed gas, admixtures, and power input, is well-suited for in situ H2O2 generation for plasma-driven biocatalysis tailoring to enzymes with high H2O2 turnover.

biochemistry↗