Home LiteratureArticle Details
PMID: 8784449 Published · ppublish English Journal Article

Cyclic HIV protease inhibitors: synthesis, conformational analysis, P2/P2' structure-activity relationship, and molecular recognition of cyclic ureas.

Journal of medicinal chemistry ·Vol. 39 ·No. 18 ·1996-08-30 ·Pages 3514-25

Lam PY, Ru Y, Jadhav PK, Aldrich PE, DeLucca GV, Eyermann CJ, Chang CH, Emmett G, Holler ER, Daneker WF, Li L, Confalone PN, McHugh RJ, Han Q, Li R, Markwalder JA, Seitz SP, Sharpe TR, Bacheler LT, Rayner MM, Klabe RM, Shum L, Winslow DL, Kornhauser DM, Hodge CN

Abstract

High-resolution X-ray structures of the complexes of HIV-1 protease (HIV-1PR) with peptidomimetic inhibitors reveal the presence of a structural water molecule which is hydrogen bonded to both the mobile flaps of the enzyme and the two carbonyls flanking the transition-state mimic of the inhibitors. Using the structure-activity relationships of C2-symmetric diol inhibitors, computed-aided drug design tools, and first principles, we designed and synthesized a novel class of cyclic ureas that incorporates this structural water and preorganizes the side chain residues into optimum binding conformations. Conformational analysis suggested a preference for pseudodiaxial benzylic and pseudodiequatorial hydroxyl substituents and an enantiomeric preference for the RSSR stereochemistry. The X-ray and solution NMR structure of the complex of HIV-1PR and one such cyclic urea, DMP323, confirmed the displacement of the structural water. Additionally, the bound and "unbound" (small-molecule X-ray) ligands have similar conformations. The high degree of preorganization, the complementarity, and the entropic gain of water displacement are proposed to explain the high affinity of these small molecules for the enzyme. The small size probably contributes to the observed good oral bioavailability in animals. Extensive structure-based optimization of the side chains that fill the S2 and S2' pockets of the enzyme resulted in DMP323, which was studied in phase I clinical trials but found to suffer from variable pharmacokinetics in man. This report details the synthesis, conformational analysis, structure-activity relationships, and molecular recognition of this series of C2-symmetry HIV-1PR inhibitors. An initial series of cyclic ureas containing nonsymmetric P2/P2' is also discussed.

MeSH Terms
Animals HIV Protease Inhibitors/chemical synthesis,pharmacology Humans Molecular Conformation Structure-Activity Relationship Urea/chemical synthesis,chemistry,pharmacology
Chemicals
HIV Protease Inhibitors Urea
Authors & Affiliations
25 authors, click to expand affiliations / ORCID
Lam P Y
DuPont Merck Pharmaceutical Company, DuPont Merck Experimental Station, Wilmington, Delaware 19880-0500, USA. lampy@carbon.dmpc.com
Ru Y
Jadhav P K
Aldrich P E
DeLucca G V
Eyermann C J
Chang C H
Emmett G
Holler E R
Daneker W F
Li L
Confalone P N
McHugh R J
Han Q
Li R
Markwalder J A
Seitz S P
Sharpe T R
Bacheler L T
Rayner M M
Klabe R M
Shum L
Winslow D L
Kornhauser D M
Hodge C N
Article Info
Journal
Journal of medicinal chemistry
Abbr.
J Med Chem
ISSN
0022-2623
Published
1996-08-30
Pages
3514-25
Language
English
Region
United States
NLM ID
9716531
Subset
IM
Analysis Services
Analysis Services

Contact

No. 2 Wenbo Road, Zhangqiu District, Jinan, Shandong

Qilu Normal University · Genelibs Bioinformatics Lab

750 Shunhua Rd, Jinan

2F, Bldg F, University Science Park

Tel: 0531-88819269

WeChat Official Account

Follow our WeChat subscription account for real-time updates and the latest in medical and biological research.


Business Email

E-mail: product@genelibs.com