Crystal structure of a complex of HIV‐1 protease with a dihydroxyethylene‐containing inhibitor: Comparisons with molecular modeling
- 1 August 1992
- journal article
- research article
- Published by Wiley in Protein Science
- Vol. 1 (8) , 1061-1072
- https://doi.org/10.1002/pro.5560010811
Abstract
The structure of a crystal complex of recombinant human immunodeficiency virus type 1 (HIV‐1) protease with a peptide‐mimetic inhibitor containing a dihydroxyethylene isostere insert replacing the scissile bond has been determined. The inhibitor is Noa‐His‐Hch[CH(OH)CH(OH)]Vam‐Ile‐Amp (U‐75875), and its Ki for inhibition of the HIV‐1 protease is R factor of 0.169 at 2.0 Å resolution by using restrained least‐squares procedures. Root mean square deviations from ideality are 0.02 Å and 2.4°, for bond lengths and angles, respectively. The bound inhibitor diastereomer has the R configurations at both of the hydroxyl chiral carbon atoms. One of the diol hydroxyl groups is positioned such that it forms hydrogen bonds with both the active site aspartates, whereas the other interacts with only one of them. Comparison of this X‐ray structure with a model‐built structure of the inhibitor, published earlier, reveals similar positioning of the backbone atoms and of the side‐chain atoms in the P2‐P2′ region, where the interaction with the protein is strongest. However, the X‐ray structure and the model differ considerably in the location of the P3 and P3′ end groups, and also in the positioning of the second of the two central hydroxyl groups. Reconstruction of the central portion of the model revealed the source of the hydroxyl discrepancy, which, when corrected, provided a P1‐P1′ geometry very close to that seen in the X‐ray structure.Keywords
This publication has 31 references indexed in Scilit:
- Crystal structure of rat trypsin-S195C at −150 °C: Analysis of low activity of recombinant and semisynthetic thiol proteasesJournal of Molecular Biology, 1991
- Comparison of inhibitor binding in HIV‐1 protease and in non‐viral aspartic proteases: the role of the flapFEBS Letters, 1990
- Design, Activity, and 2.8 Å Crystal Structure of a C 2 Symmetric Inhibitor Complexed to HIV-1 ProteaseScience, 1990
- Slow-cooling protocols for crystallographic refinement by simulated annealingActa Crystallographica Section A Foundations of Crystallography, 1990
- Macromodel—an integrated software system for modeling organic and bioorganic molecules using molecular mechanicsJournal of Computational Chemistry, 1990
- Rational Design of Peptide-Based HIV Proteinase InhibitorsScience, 1990
- Structure of Complex of Synthetic HIV-1 Protease with a Substrate-Based Inhibitor at 2.3 Å ResolutionScience, 1989
- Three-dimensional structure of aspartyl protease from human immunodeficiency virus HIV-1Nature, 1989
- Addition of symmetry-related contact restraints to PROTIN and PROLSQJournal of Applied Crystallography, 1987
- A new force field for molecular mechanical simulation of nucleic acids and proteinsJournal of the American Chemical Society, 1984