Literature DB >> 24997121

Crystal structure of an antiviral ankyrin targeting the HIV-1 capsid and molecular modeling of the ankyrin-capsid complex.

Warachai Praditwongwan1, Phimonphan Chuankhayan, Somphot Saoin, Tanchanok Wisitponchai, Vannajan Sanghiran Lee, Sawitree Nangola, Saw See Hong, Philippe Minard, Pierre Boulanger, Chun-Jung Chen, Chatchai Tayapiwatana.   

Abstract

Ankyrins are cellular repeat proteins, which can be genetically modified to randomize amino-acid residues located at defined positions in each repeat unit, and thus create a potential binding surface adaptable to macromolecular ligands. From a phage-display library of artificial ankyrins, we have isolated Ank(GAG)1D4, a trimodular ankyrin which binds to the HIV-1 capsid protein N-terminal domain (NTD(CA)) and has an antiviral effect at the late steps of the virus life cycle. In this study, the determinants of the Ank(GAG)1D4-NTD(CA) interaction were analyzed using peptide scanning in competition ELISA, capsid mutagenesis, ankyrin crystallography and molecular modeling. We determined the Ank(GAG)1D4 structure at 2.2 Å resolution, and used the crystal structure in molecular docking with a homology model of HIV-1 capsid. Our results indicated that NTD(CA) alpha-helices H1 and H7 could mediate the formation of the capsid-Ank(GAG)1D4 binary complex, but the interaction involving H7 was predicted to be more stable than with H1. Arginine-18 (R18) in H1, and R132 and R143 in H7 were found to be the key players of the Ank(GAG)1D4-NTD(CA) interaction. This was confirmed by R-to-A mutagenesis of NTD(CA), and by sequence analysis of trimodular ankyrins negative for capsid binding. In Ank(GAG)1D4, major interactors common to H1 and H7 were found to be S45, Y56, R89, K122 and K123. Collectively, our ankyrin-capsid binding analysis implied a significant degree of flexibility within the NTD(CA) domain of the HIV-1 capsid protein, and provided some clues for the design of new antivirals targeting the capsid protein and viral assembly.

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Year:  2014        PMID: 24997121     DOI: 10.1007/s10822-014-9772-9

Source DB:  PubMed          Journal:  J Comput Aided Mol Des        ISSN: 0920-654X            Impact factor:   3.686


  72 in total

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Authors:  Nicole Monroe; Gaby Sennhauser; Markus A Seeger; Christophe Briand; Markus G Grütter
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Authors:  J M Saint-Remy
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5.  Structure of a monomeric mutant of the HIV-1 capsid protein.

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Journal:  Biochemistry       Date:  2011-10-13       Impact factor: 3.162

6.  Structural and functional analysis of phosphorylation-specific binders of the kinase ERK from designed ankyrin repeat protein libraries.

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Journal:  Proc Natl Acad Sci U S A       Date:  2012-07-27       Impact factor: 11.205

7.  Structure of full-length HIV-1 CA: a model for the mature capsid lattice.

Authors:  Barbie K Ganser-Pornillos; Anchi Cheng; Mark Yeager
Journal:  Cell       Date:  2007-10-05       Impact factor: 41.582

8.  Antiviral activity of recombinant ankyrin targeted to the capsid domain of HIV-1 Gag polyprotein.

Authors:  Sawitree Nangola; Agathe Urvoas; Marie Valerio-Lepiniec; Wannisa Khamaikawin; Supachai Sakkhachornphop; Saw-See Hong; Pierre Boulanger; Philippe Minard; Chatchai Tayapiwatana
Journal:  Retrovirology       Date:  2012-02-20       Impact factor: 4.602

9.  The inhibition of assembly of HIV-1 virus-like particles by 3-O-(3',3'-dimethylsuccinyl) betulinic acid (DSB) is counteracted by Vif and requires its Zinc-binding domain.

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Journal:  Virol J       Date:  2008-12-23       Impact factor: 4.099

10.  Visualization of a missing link in retrovirus capsid assembly.

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  5 in total

1.  AnkPlex: algorithmic structure for refinement of near-native ankyrin-protein docking.

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Journal:  BMC Bioinformatics       Date:  2017-04-19       Impact factor: 3.169

2.  Broad-Spectrum Antiviral Activity of an Ankyrin Repeat Protein on Viral Assembly against Chimeric NL4-3 Viruses Carrying Gag/PR Derived from Circulating Strains among Northern Thai Patients.

Authors:  Supachai Sakkhachornphop; Sudarat Hadpech; Tanchanok Wisitponchai; Chansunee Panto; Doungnapa Kantamala; Utaiwan Utaipat; Jutarat Praparattanapan; Wilai Kotarathitithum; Sineenart Taejaroenkul; Umpa Yasamut; Koollawat Chupradit; Sutpirat Moonmuang; Vannajan Sanghiran Lee; Khuanchai Suparatpinyo; Chatchai Tayapiwatana
Journal:  Viruses       Date:  2018-11-13       Impact factor: 5.048

3.  Performance of Affinity-Improved DARPin Targeting HIV Capsid Domain in Interference of Viral Progeny Production.

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Journal:  Biomolecules       Date:  2021-09-30

Review 4.  Targeting the Virus Capsid as a Tool to Fight RNA Viruses.

Authors:  Lucie Hozáková; Barbora Vokatá; Tomáš Ruml; Pavel Ulbrich
Journal:  Viruses       Date:  2022-01-18       Impact factor: 5.048

5.  Combined Antiviral Therapy Using Designed Molecular Scaffolds Targeting Two Distinct Viral Functions, HIV-1 Genome Integration and Capsid Assembly.

Authors:  Wannisa Khamaikawin; Somphot Saoin; Sawitree Nangola; Koollawat Chupradit; Supachai Sakkhachornphop; Sudarat Hadpech; Nattawat Onlamoon; Aftab A Ansari; Siddappa N Byrareddy; Pierre Boulanger; Saw-See Hong; Bruce E Torbett; Chatchai Tayapiwatana
Journal:  Mol Ther Nucleic Acids       Date:  2015-08-25       Impact factor: 10.183

  5 in total

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