HOMEPRODUCTSCOMPANYCONTACTFAQResearchDictionaryPharmaSign Up FREE or Login

Rational design and synthesis of novel dimeric diketoacid-containing inhibitors of HIV-1 integrase: implication for binding to two metal ions on the active site of integrase.

Abstract
Discovery of diketoacid-containing compounds as HIV-1 integrase (IN) inhibitors played a major role in validating this enzyme as an important target for the development of therapeutics against HIV infection. In fact, S-1360, the first clinically used IN inhibitor containing a triazole ring as a bioisostere of a carboxylic acid moiety belongs to this class of compounds. To understand the role of divalent metal-chelating in the inhibition of IN (J. Med. Chem. 2002, 45, 5661-5670), we designed and synthesized a series of novel dimeric diketo-containing compounds with the notion that such dimeric compounds may simultaneously bind to two divalent metal ions on the active site of IN. We rationalized that the two diketo subunits separated by uniquely designed linkers can potentially chelate two metal ions that are either provided from one IN active site or two active sites juxtaposed together in a higher order tetramer. Herein, we show that all the new compounds are highly potent against purified IN with varied selectivity for strand transfer, and that some of the analogues exert potent inhibition of the cytopathic effect of HIV-1 in infected CEM cells. This study represents the first attempt to rationally target two divalent metal ions on the active site of IN and may have potential implications for the design of second generation diketoacid-containing class of inhibitors.
AuthorsYa-Qiu Long, Xiao-Hua Jiang, Raveendra Dayam, Tino Sanchez, Robert Shoemaker, Shizuko Sei, Nouri Neamati
JournalJournal of medicinal chemistry (J Med Chem) Vol. 47 Issue 10 Pg. 2561-73 (May 06 2004) ISSN: 0022-2623 [Print] United States
PMID15115398 (Publication Type: Journal Article, Research Support, Non-U.S. Gov't, Research Support, U.S. Gov't, P.H.S.)
Chemical References
  • Chelating Agents
  • Keto Acids
  • HIV Integrase
  • Magnesium
Topics
  • Binding Sites
  • Cell Line
  • Chelating Agents (chemical synthesis, chemistry, pharmacology)
  • Crystallography, X-Ray
  • Dimerization
  • Drug Design
  • HIV Integrase (chemistry, metabolism)
  • HIV-1 (chemistry, drug effects)
  • Humans
  • Keto Acids (chemical synthesis, chemistry, pharmacology)
  • Magnesium (chemistry, metabolism)
  • Models, Molecular
  • Molecular Conformation
  • Structure-Activity Relationship
  • Virus Replication

Join CureHunter, for free Research Interface BASIC access!

Take advantage of free CureHunter research engine access to explore the best drug and treatment options for any disease. Find out why thousands of doctors, pharma researchers and patient activists around the world use CureHunter every day.
Realize the full power of the drug-disease research graph!


Choose Username:
Email:
Password:
Verify Password:
Enter Code Shown: