Memory of Chirality in the Enantioselective Synthesis of β-Lactams Derived from Amino Acids. Influence of the Reaction Conditions.

ChemInform ◽  
2003 ◽  
Vol 34 (41) ◽  
Author(s):  
M. Angeles Bonache ◽  
Guillermo Gerona-Navarro ◽  
Mercedes Martin-Martinez ◽  
M. Teresa Garcia-Lopez ◽  
Pilar Lopez ◽  
...  
2009 ◽  
Vol 131 (30) ◽  
pp. 10711-10718 ◽  
Author(s):  
Mathieu Branca ◽  
Sébastien Pena ◽  
Régis Guillot ◽  
Didier Gori ◽  
Valérie Alezra ◽  
...  

2018 ◽  
Vol 2018 (47) ◽  
pp. 6754-6757 ◽  
Author(s):  
Antonin Mambrini ◽  
Didier Gori ◽  
Cyrille Kouklovsky ◽  
Heejin Kim ◽  
Jun-ichi Yoshida ◽  
...  

2021 ◽  
Author(s):  
Eryn Nelson ◽  
Jeffrey S. S. K. Formen ◽  
Christian Wolf

The widespread occurrence and significance of chiral compounds does not only require new methods for their enantioselective synthesis but also efficient tools that allow rapid determination of the absolute configuration,...


Catalysts ◽  
2021 ◽  
Vol 11 (6) ◽  
pp. 671
Author(s):  
Chad M. Bernier ◽  
Joseph S. Merola

A series of chiral complexes of the form Ir(NHC)2(aa)(H)(X) (NHC = N-heterocyclic carbene, aa = chelated amino acid, X = halide) was synthesized by oxidative addition of -amino acids to iridium(I) bis-NHC compounds and screened for asymmetric transfer hydrogenation of ketones. Following optimization of the reaction conditions, NHC, and amino acid ligands, high enantioselectivity was achieved when employing the Ir(IMe)2(l-Pro)(H)(I) catalyst (IMe = 1,3-dimethylimidazol-2-ylidene), which asymmetrically reduces a range of acetophenone derivatives in up to 95% enantiomeric excess.


Author(s):  
Shan Wang ◽  
Hai Deng

Abstract The introduction of β-hydroxy-α-amino acids (βHAAs) into organic molecules has received considerable attention as these molecules have often found widespread applications in bioorganic chemistry, medicinal chemistry and biomaterial science. Despite innovation of asymmetric synthesis of βHAAs, stereoselective synthesis to control the two chiral centres at Cα and Cβ positions is still challenging, with poor atomic economy and multi protection and deprotection steps. These syntheses are often operated under harsh conditions. Therefore, a biotransformation approach using biocatalysts is needed to selectively introduce these two chiral centres into structurally diverse molecules. Yet, there are few ways that enable one-step synthesis of βHAAs. One is to extend the substrate scope of the existing enzyme inventory. Threonine aldolases have been explored to produce βHAAs. However, the enzymes have poor controlled installation at Cβ position, often resulting in a mixture of diastereoisomers which are difficult to be separated. In this respect, l-threonine transaldolases (LTTAs) offer an excellent potential as the enzymes often provide controlled stereochemistry at Cα and Cβ positions. Another is to mine LTTA homologues and engineer the enzymes using directed evolution with the aim of finding engineered biocatalysts to accept broad substrates with enhanced conversion and stereoselectivity. Here, we review the development of LTTAs that incorporate various aldehyde acceptors to generate structurally diverse βHAAs and highlight areas for future developments. Key points • The general mechanism of the transaldolation reaction catalysed by LTTAs • Recent advances in LTTAs from different biosynthetic pathways • Applications of LTTAs as biocatalysts for production of βHAAs


2003 ◽  
Vol 2003 (9) ◽  
pp. 527-528 ◽  
Author(s):  
Krishna Gopal Dongol ◽  
Shuntaro Mataka ◽  
Thies Thiemann

Thiophenes may be converted to substituted arenes by oxidative cycloaddition to alkynes or by oxidative cycloaddition to alkenes with subsequent oxidative SO-extrusion. Cyano- and acetylamino-groups do not interfere in the reaction and are stable under the reaction conditions. This transformation can be used as a novel route to non-natural aryl-containing amino acids.


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