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1.
Angew Chem Int Ed Engl ; 56(41): 12503-12507, 2017 10 02.
Artículo en Inglés | MEDLINE | ID: mdl-28727894

RESUMEN

Chemoenzymatic and enzymatic cascade reactions enable the synthesis of complex stereocomplementary 1,3,4-trisubstituted tetrahydroisoquinolines (THIQs) with three chiral centers in a step-efficient and selective manner without intermediate purification. The cascade employs inexpensive substrates (3-hydroxybenzaldehyde and pyruvate), and involves a carboligation step, a subsequent transamination, and finally a Pictet-Spengler reaction with a carbonyl cosubstrate. Appropriate selection of the carboligase and transaminase enzymes enabled the biocatalytic formation of (1R,2S)-metaraminol. Subsequent cyclization catalyzed either enzymatically by a norcoclaurine synthase or chemically by phosphate resulted in opposite stereoselectivities in the products at the C1 position, thus providing access to both orientations of the THIQ C1 substituent. This highlights the importance of selecting from both chemo- and biocatalysts for optimal results.


Asunto(s)
Tetrahidroisoquinolinas/síntesis química , Acetolactato Sintasa/química , Biocatálisis , Ligasas de Carbono-Nitrógeno/química , Catálisis , Técnicas de Química Sintética , Chromobacterium/enzimología , Escherichia coli/enzimología , Estereoisomerismo , Tetrahidroisoquinolinas/química , Thalictrum/enzimología , Transaminasas/química
2.
J Biotechnol ; 191: 106-12, 2014 Dec 10.
Artículo en Inglés | MEDLINE | ID: mdl-25036751

RESUMEN

The stereoselective production of (R)- or (S)-2-butanol is highly challenging. A potent synthesis strategy is the biocatalytic asymmetric reduction of 2-butanone applying alcohol dehydrogenases. However, due to a time-dependent racemisation process, high stereoselectivity is only obtained at incomplete conversion after short reaction times. Here, we present a solution to this problem: by using a continuous process, high biocatalytic selectivity can be achieved while racemisation is suppressed successfully. Furthermore, high conversion was achieved by applying recombinant, lyophilised E. coli cells hosting Lactobacillus brevis alcohol dehydrogenase in a micro-aqueous solvent-free continuous reaction system. The optimisation of residence time (τ) and 2-butanone concentration boosted both conversion (>99%) and enantiomeric excess (ee) of (R)-2-butanol (>96%). When a residence time of only τ=3.1 min was applied, productivity was extraordinary with a space-time yield of 2278±29g/(L×d), thus exceeding the highest values reported to date by a factor of more than eight. The use of E. coli cells overexpressing an ADH of complementary stereoselectivity yielded a synthesis strategy for (S)-2-butanol with an excellent ee (>98%). Although conversion was only moderate (up to 46%), excellent space-time yields of up to 461g/(L×d) were achieved. The investigated concept represents a synthesis strategy that can also be applied to other biocatalytic processes where racemisation poses a challenge.


Asunto(s)
Alcohol Deshidrogenasa/química , Biocatálisis , Butanoles/síntesis química , Escherichia coli/genética , Alcohol Deshidrogenasa/genética , Butanoles/química , Butanonas/química , Escherichia coli/enzimología , Levilactobacillus brevis/enzimología , Levilactobacillus brevis/genética , Proteínas Recombinantes , Estereoisomerismo , Especificidad por Sustrato
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