1380095-44-2Relevant academic research and scientific papers
Comparative cholinesterase, α-glucosidase inhibitory, antioxidant, molecular docking, and kinetic studies on potent succinimide derivatives
Ahmad, Ashfaq,Alqahtani, Ali S.,Ayaz, Muhammad,Jan, Muhammad Saeed,Mahmood, Fawad,Mahmood, Hafiz Majid,Rashid, Umer,Sadiq, Abdul,Sahibzada, Muhammad Umar Khayam,Shahid, Muhammad,Ullah, Farhat,Ullah, Riaz,Wadood, Abdul
, p. 2165 - 2178 (2020/06/10)
Introduction: The current study was designed to synthesize derivatives of succinimide and compare their biological potency in anticholinesterase, alpha-glucosidase inhibition, and antioxidant assays. Methods: In this research, two succinimide derivatives
Organocatalytic enantioselective conjugate addition of aldehydes to maleimides in deep eutectic solvents
Flores-Ferrándiz, Jesús,Chinchilla, Rafael
, p. 302 - 306 (2017/02/18)
The conjugate enantioselective addition of aldehydes, mainly α,α-disubstituted, to maleimides leading to enantioenriched succinimides, has been achieved in recyclable deep eutectic solvents at room temperature. Enantiomerically pure carbamate-monoprotecte
Primary Amine-2-Aminopyrimidine Chiral Organocatalysts for the Enantioselective Conjugate Addition of Branched Aldehydes to Maleimides
Vízcaíno-Milla, Pascuala,Sansano, José M.,Nájera, Carmen,Fiser, Béla,Gómez-Bengoa, Enrique
, p. 2199 - 2206 (2015/08/03)
Chiral primary amines containing the (R,R)- and (S,S)-trans-cyclohexane-1,2-diamine scaffold and a pyrimidin-2-yl unit are synthesized and used as general organocatalysts for the Michael reaction of α-branched aldehydes to maleimides. The reaction takes place with 10 mol% organocatalyst loading and hexanedioic acid as cocatalyst in aqueous N,N-dimethylformamide at 10 °C affording the corresponding succinimides in good yields and enantioselectivities. DFT calculations support the stereochemical results and the role played by the solvents.
An asymmetric Michael addition of α,α-disubstituted aldehydes to maleimides leading to a one-pot enantioselective synthesis of lactones catalyzed by amino acids
Kokotos, Christoforos G.
supporting information, p. 2406 - 2409 (2013/06/27)
A cheap and fast construction of both enantiomers of substituted succinimides is reported. α- or β-amino acids, such as β-phenylalanine and α-tert-butyl aspartate, were found to be efficient organocatalysts for the reaction between α,α-disubstituted aldeh
Noncovalent bifunctional organocatalysts: Powerful tools for contiguous quaternary-tertiary stereogenic carbon formation, scope, and origin of enantioselectivity
Nugent, Thomas C.,Sadiq, Abdul,Bibi, Ahtaram,Heine, Thomas,Zeonjuk, Lei Liu,Vankova, Nina,Bassil, Bassem S.
supporting information; experimental part, p. 4088 - 4098 (2012/06/01)
Relying on the assembly of commercially available catalyst building blocks, highly stereocontrolled quaternary carbon (all carbon substituted) formation has been achieved with unmatched substrate diversity. For example, the in situ assembly of a tricomponent catalyst system allows α-branched aldehyde addition to nitroalkene or maleimide electrophiles (Michael products), while addition to an α-iminoester affords Mannich reaction products. Very good yields are observed and for fifteen of the eighteen examples 96-99 % ee is observed. Using racemic α-branched aldehydes, two contiguous (quaternary-tertiary) stereogenic centers can be formed in high diastereo- and enantiomeric excess (eight examples) via an efficient in situ dynamic kinetic resolution, solving a known shortcoming for maleimide electrophiles in particular. The method is of practical value, requiring only 1.2 equiv of the aldehyde, a 5.0 mol % loading of each catalyst component, for example, O-tBu-L-threonine (O-tBu-L-Thr), sulfamide, DMAP or O-tBu-L-Thr, KOH, and room temperature reactions. As a highlight, the first demonstration of ethylisovaleraldehyde (7) addition is disclosed, providing the most congested quaternary stereogenic carbon containing succinimide product (8) known to date. Finally, mechanistic insight, via DFT calculations, support a noncovalent assembly of the catalyst components into a bifunctional catalyst, correctly predict two levels of product stereoselectivity, and suggest the origin of the tricomponent catalyst system's exceptionality: an alternative hydrogen bond motif for the donor-acceptor pair than currently suggested for non-assembled catalysts. Noncovalent by nature: Commercially available building blocks allow in situ formation of bifunctional organocatalysts for the enantioselective formation of quaternary carbons (see scheme). This new catalyst approach is general in nature and the catalyst platform is readily adaptable. Copyright
