-Chiral amines are pivotal building blocks for chemical manufacturing. Stereoselective amination of alcohols is receiving increased interest due to its higher atom-efficiency and overall improved environmental footprint compared with other chemocatalytic and biocatalytic methods. We previously developed a hydrogen-borrowing amination by combining an alcohol dehydrogenase (ADH) with an amine dehydrogenase (AmDH) . Herein, we implemented the ADH-AmDH bioamination in resting cells for the first time. Different genetic constructs were created and tested in order to obtain balanced expression levels of the dehydrogenase enzymes in . Using the optimized constructs, the influence of several parameters towards the productivity of the system were investigated such as the intracellular NAD/NADH redox balance, the cell loading, the survival rate of recombinant cells, the possible toxicity of the components of the reaction at different concentrations and the influence of different substrates and cosolvents. In particular, the cofactor redox-balance for the bioamination was maintained by the addition of moderate and precise amounts of glucose. Higher concentrations of certain amine products resulted in toxicity and cell death, which could be alleviated by the addition of a co-solvent. Notably, amine formation was consistent using several independently grown batches. The optimized /ADH-AmDH strains produced enantiopure amines from the alcohols with up to 80% conversion and a molar productivity up to 15 mM. Practical applicability was demonstrated in a gram-scale biotransformation. In summary, the present -ADH-AmDH system represents an important advancement towards the development of 'green', efficient and selective biocatalytic processes for the amination of alcohols.
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http://dx.doi.org/10.1039/C9GC01059A | DOI Listing |
RSC Adv
December 2024
Departamento de Química Orgánica, Laboratorio de Química Farmacéutica, Facultad de Quimica, Universidad de la República Gral Flores 2124 Montevideo 11800 Uruguay
A new series of chiral δ-thiolactone derivatives have been prepared. These compounds exemplify the acetalic N-C-S reversibility of fused thiazolidines toward the thermodynamic product. The stereochemistry of the synthesized compounds was elucidated using X-ray crystallography, NOESY spectroscopy, and DFT calculations.
View Article and Find Full Text PDFJ Org Chem
December 2024
Medicines for All Institute, Virginia Commonwealth University, Richmond, Virginia 23284-3068, United States.
Herein, we describe a new seven-step approach to prepare ()-1-(3,6-dibromopyridin-2-yl)-2-(3,5-difluorophenyl)ethan-1-amine (()-) from the inexpensive 2-(3,5-difluorophenyl)acetic acid. The key steps in the sequence include (1) the Weinreb amide-based ketone synthesis to provide an entry point to the core structure; (2) simple functional group transformations to afford the racemic amine -; and (3) dynamic kinetic resolution (DKR) to access the chiral amine ()-. This seven-step process delivered the enantiopure amine ()- in an overall isolated yield of approximately 15%.
View Article and Find Full Text PDFOrg Biomol Chem
December 2024
Department of Chemistry, School of Sciences and Humanities, Nazarbayev University, Astana, 010000, Kazakhstan.
We report a two-step one-pot synthesis of the 2,6-diarylmorpholin-3-one core based on the Ugi reaction of 2-oxoaldehyde with 2-hydroxycarboxylic acid, a primary amine and -butyl isocyanide followed by a triflic acid-promoted intramolecular condensation accompanied by the loss of the isocyanide-originated amide moiety. The overall transformation proceeds with complete retention of stereoconfiguration at the 2-hydroxycarboxylic acid-derived chiral center, allowing the target morpholin-3-ones to be obtained in an enantiopure form. Subsequent double bond hydrogenation and amide reduction allow the degree of unsaturation to be reduced, providing a convenient entry to the -2,6-diphenylmorpholine motif.
View Article and Find Full Text PDFJ Agric Food Chem
November 2024
School of Minerals Processing and Bioengineering, Central South University, Changsha, Hunan 410083, China.
The access to the enantiopure noncanonical amino acid l-phosphinothricin (l-PPT) by applying biocatalysts is highly appealing in organic chemistry. In this study, a NADH-dependent glutamate dehydrogenase from (GluDH) was chosen for the asymmetric synthesis of l-PPT. Three flexible loops undergoing big conformational shifts during the catalysis were identified and rationally engineered following the initial mutagenesis.
View Article and Find Full Text PDFChirality
October 2024
Institut de Physique et Chimie des Matériaux de Stasbourg (IPCMS), Université de Strasbourg - CNRS UMR 7504, Strasbourg Cedex, France.
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