28824-88-6Relevant academic research and scientific papers
Highly Chemoselective, Transition-Metal-Free Transamidation of Unactivated Amides and Direct Amidation of Alkyl Esters by N-C/O-C Cleavage
Li, Guangchen,Ji, Chong-Lei,Hong, Xin,Szostak, Michal
supporting information, p. 11161 - 11172 (2019/08/07)
The amide bond is one of the most fundamental functional groups in chemistry and biology and plays a central role in numerous processes harnessed to streamline the synthesis of key pharmaceutical and industrial molecules. Although the synthesis of amides is one of the most frequently performed reactions by academic and industrial scientists, the direct transamidation of tertiary amides is challenging due to unfavorable kinetic and thermodynamic contributions of the process. Herein, we report the first general, mild, and highly chemoselective method for transamidation of unactivated tertiary amides by a direct acyl N-C bond cleavage with non-nucleophilic amines. This operationally simple method is performed in the absence of transition metals and operates under unusually mild reaction conditions. In this context, we further describe the direct amidation of abundant alkyl esters to afford amide bonds with exquisite selectivity by acyl C-O bond cleavage. The utility of this process is showcased by a broad scope of the method, including various sensitive functional groups, late-stage modification, and the synthesis of drug molecules (>80 examples). Remarkable selectivity toward different functional groups and within different amide and ester electrophiles that is not feasible using existing methods was observed. Extensive experimental and computational studies were conducted to provide insight into the mechanism and the origins of high selectivity. We further present a series of guidelines to predict the reactivity of amides and esters in the synthesis of valuable amide bonds by this user-friendly process. In light of the importance of the amide bond in organic synthesis and major practical advantages of this method, the study opens up new opportunities in the synthesis of pivotal amide bonds in a broad range of chemical contexts.
Development of 4,5-dihydro-benzodiazepinone derivatives as a new chemical series of BRD4 inhibitors
Li, Jie,Wang, Peiqi,Zhou, Bihui,Shi, Jianyou,Liu, Jie,Li, Xiangrong,Fan, Limei,Zheng, Yaxin,Ouyang, Liang
, p. 294 - 299 (2016/07/06)
Bromodomains (BRDs) are protein interaction modules that selectively recognize ?-N-lysine residues, serving as key epigenetic readers and play a key role in epigenetic regulation of gene transcription. Bromodomain-containing protein 4 (BRD4), a protein containing two BRDs termed BD1 and BD2, has emerged as an attractive candidate for the development of inhibitors targeting gene transcription in several types of cancers. In this study, we made structural modifications of previously reported BRD4 inhibitors, to develop new chemical scaffold 3,4-dihydroquinoxalin-2(1H)-one. Four series of compounds (compounds 7e10) were synthesized, and the BRD4-inhibitory activity and anti-proliferative effect of these compounds were evaluated. We found compound 10d has remarkable anti-proliferative activities toward leukemia cells and could induce apoptosis by mitochondrial pathways. Notably, the analysis of molecular docking suggested that hydrophobic interaction was essential for compound 10d to bind to BD1. In conclusion, these results demonstrate the potential of compound 10d to be utilized as a BRD4 inhibitor with apoptosis inducing effect in future leukemia therapy.
A one-pot synthesis of 3-methyl-5-aryl-4H-pyrrolo[2,3-d]-isoxazoles
Rajanarendar,Mohan,Ramesh,Karunakar
, p. 4957 - 4959 (2007/10/03)
Sharpless epoxidation of 4-amino-3-methyl-5-styrylisoxazoles 1 resulted in the formation of 3-methyl-5-aryl-4H-pyrrolo[2,3-d]-isoxazoles 4 in a one-step reaction. The reaction initially involves epoxide formation, followed by ring-opening and cyclization.
