Pyruvate-dependent aldolases exhibit a stringent selectivity for pyruvate, limiting application of their synthetic potential, which is a drawback shared with other existing aldolases. Structure-guided rational protein engineering rendered a 2-keto-3-deoxy-l-rhamnonate aldolase variant, fused with a maltose-binding protein (MBP-YfaU W23V/L216A), capable of efficiently converting larger pyruvate analogues, for example, those with linear and branched aliphatic chains, in aldol addition reactions. Combination of these nucleophiles with N-Cbz-alaninal (Cbz=benzyloxycarbonyl) and N-Cbz-prolinal electrophiles gave access to chiral building blocks, for example, derivatives of (2S,3S,4R)-4-amino-3-hydroxy-2-methylpentanoic acid (68 %, d.r. 90:10) and the enantiomer of dolaproine (33 %, d.r. 94:6) as well as a collection of unprecedented α-amino acid derivatives of the proline and pyrrolizidine type. Conversions varied between 6-93 % and diastereomeric ratios from 50:50 to 95:5 depending on the nucleophilic and electrophilic components.
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http://dx.doi.org/10.1002/anie.201711289 | DOI Listing |
Nature
January 2025
Manchester Institute of Biotechnology, The University of Manchester, Manchester, UK.
Nucleophilic aromatic substitutions (SAr) are amongst the most widely used processes in the pharmaceutical and agrochemical industries, allowing convergent assembly of complex molecules through C-C and C-X (X = O, N, S) bond formation. SAr reactions are typically carried out using forcing conditions, involving polar aprotic solvents, stoichiometric bases and elevated temperatures, which do not allow for control over reaction selectivity. Despite the importance of SAr chemistry, there are only a handful of selective catalytic methods reported that rely on small organic hydrogen-bonding or phase-transfer catalysts.
View Article and Find Full Text PDFJ Biol Chem
January 2025
Institute of Biomedicine, University of Turku, Turku, Finland. Electronic address:
Enzyme promiscuity is the ability of an enzyme to catalyze an unexpected side reaction in addition to its main reaction. Here, we describe a biocatalytic process to produce nonhydrolyzable NAD+ analogs based on the ADP-ribosyltransferase activity of pertussis toxin PtxS1 subunit. First, in identical manner to normal catalysis, PtxS1 activates NAD+ to form the reactive oxocarbenium cation.
View Article and Find Full Text PDFFoods
November 2024
Laboratory of Enzyme Technology, Department of Biotechnology, School of Applied Biology and Biotechnology, Agricultural University of Athens, 75 Iera Odos Street, GR-11855 Athens, Greece.
The comparative analysis of homologous enzymes is a valuable approach for elucidating enzymes' structure-function relationships. Glutathione transferases (GSTs, EC. 2.
View Article and Find Full Text PDFChembiochem
December 2024
College of Food Science and Engineering, Jiangxi Agricultural University, Nanchang, 330045, China.
Sulfide:Quinone Oxidoreductase (Sqr) Catalyzes The Initial Procedure On Sulfide Transformation, Alongside Sulfide (HS, S) Oxidization Coupled With Coenzyme Q (CoQ) Reducing And Reactive Sulfur Species (RSS) Production. Here, We Assessed The Reactivity Of Propanethiol (PT) As An Alternative Substrate For Sqr To Maintain Intracellular Homeostasis In Strain S-1 Capable Of Degrading Emerging Sulfur-Containing Pollutants. We Deleted A Gene Encoding Sqr, And Serial Transcriptional Difference Induced By RSS Dynamics Was Therefore Revealed.
View Article and Find Full Text PDFJ Am Chem Soc
October 2024
Department of Chemistry, University of Texas at Austin, Austin, Texas 78712, United States.
Kitasetaline is one of the very few β-carbolines isolated from bacteria. It features a unique -acetylcysteine moiety linked to the β-carboline core through a thioether bond. While earlier experiments identified the gene cluster and reported several putative biosynthetic intermediates, how the C-S bond linkage is constructed has remained elusive.
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