| Literature DB >> 23412139 |
Andrew W Stamford1, Jack D Scott, Sarah W Li, Suresh Babu, Dawit Tadesse, Rachael Hunter, Yusheng Wu, Jeffrey Misiaszek, Jared N Cumming, Eric J Gilbert, Chunli Huang, Brian A McKittrick, Liwu Hong, Tao Guo, Zhaoning Zhu, Corey Strickland, Peter Orth, Johannes H Voigt, Matthew E Kennedy, Xia Chen, Reshma Kuvelkar, Robert Hodgson, Lynn A Hyde, Kathleen Cox, Leonard Favreau, Eric M Parker, William J Greenlee.
Abstract
Inhibition of BACE1 to prevent brain Aβ peptide formation is a potential disease-modifying approach to the treatment of Alzheimer's disease. Despite over a decade of drug discovery efforts, the identification of brain-penetrant BACE1 inhibitors that substantially lower CNS Aβ levels following systemic administration remains challenging. In this report we describe structure-based optimization of a series of brain-penetrant BACE1 inhibitors derived from an iminopyrimidinone scaffold. Application of structure-based design in tandem with control of physicochemical properties culminated in the discovery of compound 16, which potently reduced cortex and CSF Aβ40 levels when administered orally to rats.Entities:
Keywords: Alzheimer’s disease; Aβ40; BACE1; X-ray crystallography; iminopyrimidinone; inhibitor
Year: 2012 PMID: 23412139 PMCID: PMC3568987 DOI: 10.1021/ml3001165
Source DB: PubMed Journal: ACS Med Chem Lett ISSN: 1948-5875 Impact factor: 4.345