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1. Drug resistance conferred by mutations outside the active site through alterations in the dynamic and structural ensemble of HIV-1 protease.

2. Testing the substrate-envelope hypothesis with designed pairs of compounds.

3. Efficient Computation of Small-Molecule Configurational Binding Entropy and Free Energy Changes by Ensemble Enumeration.

4. Substrate envelope-designed potent HIV-1 protease inhibitors to avoid drug resistance.

5. Structural and thermodynamic basis of amprenavir/darunavir and atazanavir resistance in HIV-1 protease with mutations at residue 50.

6. Extreme entropy-enthalpy compensation in a drug-resistant variant of HIV-1 protease.

7. Design, synthesis, and biological and structural evaluations of novel HIV-1 protease inhibitors to combat drug resistance.

8. Hydrophobic core flexibility modulates enzyme activity in HIV-1 protease.

9. TMC310911, a novel human immunodeficiency virus type 1 protease inhibitor, shows in vitro an improved resistance profile and higher genetic barrier to resistance compared with current protease inhibitors.

10. Structure-based design, synthesis, and structure-activity relationship studies of HIV-1 protease inhibitors incorporating phenyloxazolidinones.

11. Evaluating the substrate-envelope hypothesis: structural analysis of novel HIV-1 protease inhibitors designed to be robust against drug resistance.

12. Crystal structure of the APOBEC3G catalytic domain reveals potential oligomerization interfaces.

13. New approaches to HIV protease inhibitor drug design II: testing the substrate envelope hypothesis to avoid drug resistance and discover robust inhibitors.

14. HIV-1 protease inhibitors from inverse design in the substrate envelope exhibit subnanomolar binding to drug-resistant variants.

15. Specificity of translation for N-alkyl amino acids.

16. Design and synthesis of HIV-1 protease inhibitors incorporating oxazolidinones as P2/P2' ligands in pseudosymmetric dipeptide isosteres.

17. Crystal structure of lysine sulfonamide inhibitor reveals the displacement of the conserved flap water molecule in human immunodeficiency virus type 1 protease.

18. Design of mutation-resistant HIV protease inhibitors with the substrate envelope hypothesis.

19. Discovery of HIV-1 protease inhibitors with picomolar affinities incorporating N-aryl-oxazolidinone-5-carboxamides as novel P2 ligands.

20. Programming peptidomimetic syntheses by translating genetic codes designed de novo.

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