Cargando…

Novel Druggable Hot Spots in Avian Influenza Neuraminidase H5N1 Revealed by Computational Solvent Mapping of a Reduced and Representative Receptor Ensemble

The influenza virus subtype H5N1 has raised concerns of a possible human pandemic threat because of its high virulence and mutation rate. Although several approved anti-influenza drugs effectively target the neuraminidase, some strains have already acquired resistance to the currently available anti...

Descripción completa

Detalles Bibliográficos
Autores principales: Landon, Melissa R, Amaro, Rommie E, Baron, Riccardo, Ngan, Chi Ho, Ozonoff, David, Andrew McCammon, J, Vajda, Sandor
Formato: Texto
Lenguaje:English
Publicado: Blackwell Publishing Ltd 2008
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC2438278/
https://www.ncbi.nlm.nih.gov/pubmed/18205727
http://dx.doi.org/10.1111/j.1747-0285.2007.00614.x
_version_ 1782156501752741888
author Landon, Melissa R
Amaro, Rommie E
Baron, Riccardo
Ngan, Chi Ho
Ozonoff, David
Andrew McCammon, J
Vajda, Sandor
author_facet Landon, Melissa R
Amaro, Rommie E
Baron, Riccardo
Ngan, Chi Ho
Ozonoff, David
Andrew McCammon, J
Vajda, Sandor
author_sort Landon, Melissa R
collection PubMed
description The influenza virus subtype H5N1 has raised concerns of a possible human pandemic threat because of its high virulence and mutation rate. Although several approved anti-influenza drugs effectively target the neuraminidase, some strains have already acquired resistance to the currently available anti-influenza drugs. In this study, we present the synergistic application of extended explicit solvent molecular dynamics (MD) and computational solvent mapping (CS-Map) to identify putative ‘hot spots’ within flexible binding regions of N1 neuraminidase. Using representative conformations of the N1 binding region extracted from a clustering analysis of four concatenated 40-ns MD simulations, CS-Map was utilized to assess the ability of small, solvent-sized molecules to bind within close proximity to the sialic acid binding region. Mapping analyses of the dominant MD conformations reveal the presence of additional hot spot regions in the 150- and 430-loop regions. Our hot spot analysis provides further support for the feasibility of developing high-affinity inhibitors capable of binding these regions, which appear to be unique to the N1 strain.
format Text
id pubmed-2438278
institution National Center for Biotechnology Information
language English
publishDate 2008
publisher Blackwell Publishing Ltd
record_format MEDLINE/PubMed
spelling pubmed-24382782008-06-26 Novel Druggable Hot Spots in Avian Influenza Neuraminidase H5N1 Revealed by Computational Solvent Mapping of a Reduced and Representative Receptor Ensemble Landon, Melissa R Amaro, Rommie E Baron, Riccardo Ngan, Chi Ho Ozonoff, David Andrew McCammon, J Vajda, Sandor Chem Biol Drug Des Research Articles The influenza virus subtype H5N1 has raised concerns of a possible human pandemic threat because of its high virulence and mutation rate. Although several approved anti-influenza drugs effectively target the neuraminidase, some strains have already acquired resistance to the currently available anti-influenza drugs. In this study, we present the synergistic application of extended explicit solvent molecular dynamics (MD) and computational solvent mapping (CS-Map) to identify putative ‘hot spots’ within flexible binding regions of N1 neuraminidase. Using representative conformations of the N1 binding region extracted from a clustering analysis of four concatenated 40-ns MD simulations, CS-Map was utilized to assess the ability of small, solvent-sized molecules to bind within close proximity to the sialic acid binding region. Mapping analyses of the dominant MD conformations reveal the presence of additional hot spot regions in the 150- and 430-loop regions. Our hot spot analysis provides further support for the feasibility of developing high-affinity inhibitors capable of binding these regions, which appear to be unique to the N1 strain. Blackwell Publishing Ltd 2008-02 /pmc/articles/PMC2438278/ /pubmed/18205727 http://dx.doi.org/10.1111/j.1747-0285.2007.00614.x Text en © 2008 The Authors Journal compilation 2008 Blackwell Munksgaard
spellingShingle Research Articles
Landon, Melissa R
Amaro, Rommie E
Baron, Riccardo
Ngan, Chi Ho
Ozonoff, David
Andrew McCammon, J
Vajda, Sandor
Novel Druggable Hot Spots in Avian Influenza Neuraminidase H5N1 Revealed by Computational Solvent Mapping of a Reduced and Representative Receptor Ensemble
title Novel Druggable Hot Spots in Avian Influenza Neuraminidase H5N1 Revealed by Computational Solvent Mapping of a Reduced and Representative Receptor Ensemble
title_full Novel Druggable Hot Spots in Avian Influenza Neuraminidase H5N1 Revealed by Computational Solvent Mapping of a Reduced and Representative Receptor Ensemble
title_fullStr Novel Druggable Hot Spots in Avian Influenza Neuraminidase H5N1 Revealed by Computational Solvent Mapping of a Reduced and Representative Receptor Ensemble
title_full_unstemmed Novel Druggable Hot Spots in Avian Influenza Neuraminidase H5N1 Revealed by Computational Solvent Mapping of a Reduced and Representative Receptor Ensemble
title_short Novel Druggable Hot Spots in Avian Influenza Neuraminidase H5N1 Revealed by Computational Solvent Mapping of a Reduced and Representative Receptor Ensemble
title_sort novel druggable hot spots in avian influenza neuraminidase h5n1 revealed by computational solvent mapping of a reduced and representative receptor ensemble
topic Research Articles
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC2438278/
https://www.ncbi.nlm.nih.gov/pubmed/18205727
http://dx.doi.org/10.1111/j.1747-0285.2007.00614.x
work_keys_str_mv AT landonmelissar noveldruggablehotspotsinavianinfluenzaneuraminidaseh5n1revealedbycomputationalsolventmappingofareducedandrepresentativereceptorensemble
AT amarorommiee noveldruggablehotspotsinavianinfluenzaneuraminidaseh5n1revealedbycomputationalsolventmappingofareducedandrepresentativereceptorensemble
AT baronriccardo noveldruggablehotspotsinavianinfluenzaneuraminidaseh5n1revealedbycomputationalsolventmappingofareducedandrepresentativereceptorensemble
AT nganchiho noveldruggablehotspotsinavianinfluenzaneuraminidaseh5n1revealedbycomputationalsolventmappingofareducedandrepresentativereceptorensemble
AT ozonoffdavid noveldruggablehotspotsinavianinfluenzaneuraminidaseh5n1revealedbycomputationalsolventmappingofareducedandrepresentativereceptorensemble
AT andrewmccammonj noveldruggablehotspotsinavianinfluenzaneuraminidaseh5n1revealedbycomputationalsolventmappingofareducedandrepresentativereceptorensemble
AT vajdasandor noveldruggablehotspotsinavianinfluenzaneuraminidaseh5n1revealedbycomputationalsolventmappingofareducedandrepresentativereceptorensemble