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Structure-guided engineering of a CHMO from Amycolatopsis methanolica (AmCHMO) was performed for asymmetric sulfoxidation activity and stereoselectivity toward omeprazole sulfide. Initially, combinatorial active-site saturation test (CASTing) and iteratively saturation mutagenesis (ISM) were performed on 5 residues at the "bottleneck" of substrate tunnel, and MT3 was successfully obtained with a specific activity of 46.19 U/g and R-stereoselectivity of 99 % toward OPS. Then, 4 key mutations affecting the stereoselectivity were identified through multiple rounds of ISM on residues at the substrate binding pocket region, resulting MT8 with an inversed stereoselectivity from 99 % (R) to 97 % (S). MT8 has a greatly compromised specific activity of 0.08 U/g. By introducing additional beneficial mutations, MT11 was constructed with significantly increased specific activity of 2.29 U/g and stereoselectivity of 97 % (S). Enlarged substrate tunnel is critical to the expanded substrate spectrum of AmCHMO, while reshaping of substrate binding pocket is important for stereoselective inversion. Based on MD simulation, pre-reaction states of MT3-OPS, MT8-OPS, and MT11-OPS were calculated to be 45.56 %, 17.94 %, and 28.65 % respectively, which further confirm the experimental data on activity and stereoselectivity. Our results pave the way for engineering distinct activity and stereoselectivity of BVMOs toward bulky prazole thioethers.
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http://dx.doi.org/10.1002/cphc.202400008 | DOI Listing |
Chembiochem
September 2025
Science Center for Future Foods, Jiangnan University, 1800 Lihu Road, Wuxi, Jiangsu, 214122, China.
Natural products exhibit a wide range of biological activities and are the crucial resources for drug development and compound modification. Cytochrome P450 enzymes (P450s, CYP) are a class of multifunctional and stereoselective biocatalysts that utilize heme as a cofactor and can be employed in the biosynthesis of natural products. With the development of biotechnology, P450s have been widely applied in the synthesis of natural products.
View Article and Find Full Text PDFBeilstein J Org Chem
August 2025
Department of Natural Sciences and Sustainable Resources, Institute of Organic Chemistry, BOKU University, 1190 Vienna, Austria.
Nonreducing disaccharides are prevalent in non-mammalian glycans and glycolipids, serving as pivotal structural components in mycobacterial glycans, microbial oligosaccharide and nucleoside antibiotics, as well as biologically active mimetics of bacterial pathogen-associated molecular patterns (PAMPs). As integral components of PAMPs, 1,1'-linked disaccharide-containing biomolecules play important roles in host-pathogen interactions, cellular signaling, and pathogenesis. Accessing complex biomolecules containing nonreducing disaccharides is often hindered by difficulties in isolating them from natural sources, which can result in impure or degraded products, particularly when sensitive functional groups are involved.
View Article and Find Full Text PDFOrg Lett
September 2025
State Key Laboratory of Chemistry for NBC Hazards Protection, Beijing 102205, China.
Optically active α-aminophosphonic acids are unique analogues of α-amino acids, and numerous synthetic methods have been developed. Herein, we present a highly diastereoselective α-azidation approach to the CAMDOL-derived phosphonates, enabling ready access to 27 diverse α-azidophosphonates with defined chirality in up to 85% yield and more than 99:1 dr. Late-stage transformations through the Staudinger reaction or click reaction efficiently delivered the related pharmacological α-aminophosphonic acids or the unique α-triazolylphosphonate derivative, respectively.
View Article and Find Full Text PDFJ Org Chem
September 2025
Department of Radiation and Medical Oncology, Zhongnan Hospital of Wuhan University, School of Pharmaceutical Sciences, Wuhan University, Wuhan 430071, P. R. of China.
A Mg(OTf)-catalyzed asymmetric Michael addition/cyclization cascade reaction between 3-isothiocyanato oxindoles and 2-arylidene-1,3-indanediones has been developed. This transformation provides an efficient and concise approach to biologically important bispiro[indanedione-oxindole-pyrrolidinyl]s under mild conditions in good to excellent yields (70-99% yields) with moderate to good stereoselectivities (up to 99% and >95:5 d.r.
View Article and Find Full Text PDFOrg Lett
September 2025
College of Chemistry and Chemical Engineering and Luoyang Key Laboratory of Green Synthesis and Photofunctional Materials, Luoyang Normal University, Luoyang, Henan 471934, China.
Inspired by the excellent stereoinduction of palladium catalytic glycosylation with glycals via an inner-sphere pathway, a nickel-catalyzed, stereoselective -aryl glycosylation has been developed for glucals bearing a pentafluorobenzoate (PFB) group at the C3 position. The extremely electron-deficient nature of PFB not only endows stronger activity compared to the traditional leaving groups but also functions as an orientation group, presumably through the strong π-π interactions with the bipyridine ligand coordinated to the nickel center, thereby enabling the β-selective formation of a -aryl glycosidic bond with aryl iodides as glycosyl acceptors under mild conditions. This method features a broad substrate scope, high efficiency, and scalability, providing a general solution to the synthesis of challenging β--glycosides.
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