32936-69-9Relevant academic research and scientific papers
CYCLOHEXYL-AZETIDINYL ANTAGONISTS OF CCR2
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Page/Page column 103, (2012/01/06)
The present invention comprises compounds of Formula (I). Wherein: R1, R2, R4, J, Q, and A are as defined in the specification. The invention also comprises a method of preventing, treating or ameliorating a syndrome, disorder or disease, wherein said syndrome, disorder or disease is type II diabetes, obesity and asthma. The invention also comprises a method of inhibiting CCR2 activity in a mammal by administration of a therapeutically effective amount of at least one compound of Formula (I).
Optimization of novel di-substituted cyclohexylbenzamide derivatives as potent 11β-HSD1 inhibitors
McMinn, Dustin L.,Rew, Yosup,Sudom, Athena,Caille, Seb,DeGraffenreid, Michael,He, Xiao,Hungate, Randall,Jiang, Ben,Jaen, Juan,Julian, Lisa D.,Kaizerman, Jacob,Novak, Perry,Sun, Daqing,Tu, Hua,Ursu, Stefania,Walker, Nigel P.C.,Yan, Xuelei,Ye, Qiuping,Wang, Zhulun,Powers, Jay P.
scheme or table, p. 1446 - 1450 (2010/01/16)
Novel 4,4-disubstituted cyclohexylbenzamide inhibitors of 11β-HSD1 were optimized to account for liabilities relating to in vitro pharmacokinetics, cytotoxicity and protein-related shifts in potency. A representative compound showing favorable in vivo pharmacokinetics was found to be an efficacious inhibitor of 11β-HSD1 in a rat pharmacodynamic model (ED50 = 10 mg/kg).
New bioorganic reagents: Evolved cyclohexanone monooxygenase - Why is it more selective?
Kayser, Margaret M.,Clouthier, Christopher M.
, p. 8424 - 8430 (2007/10/03)
Four mutants of the cyclohexanone monooxygenase (CHMO) evolved as catalysts for Baeyer-Villiger oxidation of 4-hydroxycyclohexanone were investigated as catalysts for a variety of 4-substituted and 4,4-disubstituted cyclohexanones. Several excellent catalytic matches (mutant/substrate) were identified. The most important, however, is the finding that, in a number of cases, a mutant with a single exchange, Phe432Ser, was shown to be as robust and more selective as a catalyst than the wild-type CHMO. All biotransformations were performed on a laboratory scale, allowing full characterization of the products. The absolute configurations of two products were established. A model suggesting a possible role of the 432 serine residue in enantioselectivity control is proposed.
