chiral epoxides
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Molecules ◽  
2021 ◽  
Vol 26 (6) ◽  
pp. 1514
Author(s):  
Dominika Gyuranová ◽  
Radka Štadániová ◽  
Zuzana Hegyi ◽  
Róbert Fischer ◽  
Martin Rebroš

Styrene monooxygenases are a group of highly selective enzymes able to catalyse the epoxidation of alkenes to corresponding chiral epoxides in excellent enantiopurity. Chiral compounds containing oxirane ring or products of their hydrolysis represent key building blocks and precursors in organic synthesis in the pharmaceutical industry, and many of them are produced on an industrial scale. Two-component recombinant styrene monooxygenase (SMO) from Marinobacterium litorale was expressed as a fused protein (StyAL2StyB) in Escherichia coli BL21(DE3). By high cell density fermentation, 35 gDCW/L of biomass with overexpressed SMO was produced. SMO exhibited excellent stability, broad substrate specificity, and enantioselectivity, as it remained active for months and converted a group of alkenes to corresponding chiral epoxides in high enantiomeric excess (˃95–99% ee). Optically pure (S)-4-chlorostyrene oxide, (S)-allylbenzene oxide, (2R,5R)-1,2:5,6-diepoxyhexane, 2-(3-bromopropyl)oxirane, and (S)-4-(oxiran-2-yl)butan-1-ol were prepared by whole-cell SMO.


2021 ◽  
Vol 17 ◽  
pp. 688-704
Author(s):  
Mikhail K Klychnikov ◽  
Radek Pohl ◽  
Ivana Císařová ◽  
Ullrich Jahn

Pyrrolidones are common heterocyclic fragments in various biologically active compounds. Here, a two-step radical-based approach to γ-lactams bearing three to four stereocenters starting from epoxides, N-allylic silylacetamides and TEMPO is reported. The sequence starts with a new tandem nucleophilic substitution/Brook rearrangement/single electron transfer-induced radical oxygenation furnishing orthogonally protected α,γ-dioxygenated N-allylamides with wide scope, mostly good yields, and partly good diastereo- and enantioselectivity for defined combinations of chiral epoxides and chiral amides. This represents a very rare example of an oxidative geminal C–C/C–O difunctionalization next to carbonyl groups. The resulting dioxygenated allylic amides are subsequently subjected to persistent radical effect-based 5-exo-trig radical cyclization reactions providing functionalized pyrrolidones in high yields as diastereomeric mixtures. They converge to 3,4-trans-γ-lactams by base-mediated equilibration, which can be easily further diversified. Stereochemical models for both reaction types were developed.


Synlett ◽  
2020 ◽  
Author(s):  
David S. Glueck

AbstractMetal-catalyzed asymmetric synthesis of P-stereogenic phosphines is a potentially useful approach to a class of chiral ligands with valuable applications in asymmetric catalysis. We introduced this idea with chiral platinum and palladium catalysts, exploiting rapid pyramidal inversion in diastereomeric metal–phosphido complexes (ML*(PRR′)) to control phosphorus stereochemistry. This Account summarizes our attempts to develop related synthetic methods using earth-abundant metals, especially copper, in which weaker metal–ligand bonds and faster substitution processes were expected to result in more active catalysts. Indeed, precious metals were not required. Without any transition metals at all, we exploited related P-epimerization processes to prepare enantiomerically pure phosphiranes and secondary phosphine oxides (SPOs) from commercially available chiral epoxides.1 Introduction2 Copper-Catalyzed Phosphine Alkylation3 Copper-Catalyzed Tandem Phosphine Alkylation/Arylation4 Nickel-Catalyzed Phosphine Alkylation5 Proton-Mediated P-Epimerization in Synthesis of Chiral Phosphiranes6 Diastereoselective Synthesis of P-Stereogenic Secondary Phosphine Oxides (SPOs) from (+)-Limonene Oxide7 Conclusions


2020 ◽  
Vol 18 (27) ◽  
pp. 5264-5264
Author(s):  
Pradeep Kumar ◽  
Abhishek Dubey ◽  
Anand Harbindu
Keyword(s):  

Correction and removal of expression of concern for ‘Enantio- and diastereocontrolled conversion of chiral epoxides to trans-cyclopropane carboxylates: application to the synthesis of cascarillic acid, grenadamide and l-(−)-CCG-II’ by Pradeep Kumar et al., Org. Biomol. Chem., 2012, 10, 6987–6994, DOI: 10.1039/C2OB25622C.


ChemCatChem ◽  
2018 ◽  
Vol 10 (22) ◽  
pp. 5092-5114 ◽  
Author(s):  
Jesús M. de los Santos ◽  
Ana M. Ochoa de Retana ◽  
Edorta Martínez de Marigorta ◽  
Javier Vicario ◽  
Francisco Palacios

2018 ◽  
Vol 20 (19) ◽  
pp. 6310-6313 ◽  
Author(s):  
Roberto da Silva Gomes ◽  
Karla Mahender Reddy ◽  
E. J. Corey

2018 ◽  
Vol 130 (18) ◽  
pp. 5141-5145
Author(s):  
Jake A. Muldoon ◽  
Balázs R. Varga ◽  
Meaghan M. Deegan ◽  
Timothy W. Chapp ◽  
Ádám M. Eördögh ◽  
...  

2018 ◽  
Vol 57 (18) ◽  
pp. 5047-5051 ◽  
Author(s):  
Jake A. Muldoon ◽  
Balázs R. Varga ◽  
Meaghan M. Deegan ◽  
Timothy W. Chapp ◽  
Ádám M. Eördögh ◽  
...  

2018 ◽  
Vol 122 (2) ◽  
pp. 1215-1222 ◽  
Author(s):  
Mausumi Mahapatra ◽  
Wilfred T. Tysoe

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