1246220-99-4Relevant academic research and scientific papers
Pd-catalyzed reductive cleavage of N-N bond in dibenzyl-1-alkylhydrazine-1,2-dicarboxylates with PMHS: Application to a formal enantioselective synthesis of (R)-sitagliptin
Dey, Soumen,Gadakh, Sunita K.,Ahuja, Brij Bhushan,Kamble, Sanjay P.,Sudalai, Arumugam
, p. 684 - 687 (2016/01/26)
An environmentally benign approach involving Pd-catalyzed reductive N-N bond cleavage in dibenzyl-1-alkylhydrazine-1,2-dicarboxylates leading to the synthesis of N-(tert-butoxy)carbamates under very mild conditions has been described. PMHS serves as an inexpensive source of hydride in MeOH/deionized H2O medium. This protocol has been successfully applied in the formal synthesis of (R)-sitagliptin, an anti-diabetic drug.
A concise enantioselective synthesis of (R)-selegiline, (S)-benzphetamine and formal synthesis of (R)-sitagliptin via electrophilic azidation of chiral imide enolates
Dey, Soumen,Sudalai, Arumugam
, p. 67 - 72 (2015/02/02)
A concise and high yielding enantioselective synthesis of (R)-selegiline, an anti-Parkinson's drug, (S)-benzphetamine, an anti-obesity agent, and (S)-sitagliptin, an anti-diabetic drug has been described starting from commercially available starting materials employing Evans' electrophilic azidation of chiral imide enolates as a key chiral inducing step, which proceeds in a highly diastereoselective manner (>99%).
Design and synthesis of 4-(2,4,5-Trifluorophenyl)butane-1,3-diamines as dipeptidyl peptidase IV inhibitors
Zhu, Linrong,Li, Yuanyuan,Qiu, Ling,Su, Mingbo,Wang, Xin,Xia, Chunmei,Qu, Yi,Li, Jingya,Li, Jia,Xiong, Bing,Shen, Jingkang
, p. 1104 - 1116 (2013/07/26)
The worldwide prevalence of diabetes has spurred numerous studies on the development of new antidiabetic medicines. As a result, dipeptidyl peptidaseIV (DPP4) has been recognized as a validated target. In our efforts to discover new DPP4 inhibitors, we analyzed the complexed structures of DPP4 available in Protein Data Bank and designed a series of triazole compounds. After enzyme activity assays and crystallographic verification of the binding interaction patterns, we found that the triazole compounds can inhibit DPP4 with micromolar IC50 values. Liver microsome stability and cytochrome P450 metabolic tests were performed on this series, revealing undesirable pharmacokinetic profiles for the triazole compounds. To overcome this liability, we substituted the triazole ring with an amide or urea group to produce a new series of DPP4 inhibitors. Based on its enzyme activity, metabolic stability, and selectivity over DPP8 and DPP9, we selected compound 21r for further study of its invivo effects in mice using an oral glucose tolerance test (OGTT). The results show that 21r has efficacy similar to that of sitagliptin at a dose of 3mgkg-1. The crystal structure of 21r bound to DPP4 also reveals that the trifluoromethyl group is directed toward a subpocket different from the subsite bound by sitagliptin, providing clues for the design of new DPP4 inhibitors.
