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Model of a Putative Pore: The Pentameric α-Helical Bundle of SARS Coronavirus E Protein in Lipid Bilayers

The coronavirus responsible for the severe acute respiratory syndrome contains a small envelope protein, E, with putative involvement in host apoptosis and virus morphogenesis. To perform these functions, it has been suggested that protein E can form a membrane destabilizing transmembrane (TM) hairp...

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Detalles Bibliográficos
Autores principales: Torres, Jaume, Parthasarathy, Krupakar, Lin, Xin, Saravanan, Rathi, Kukol, Andreas, Liu, Ding Xiang
Formato: Texto
Lenguaje:English
Publicado: Biophysical Society 2006
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC1563757/
https://www.ncbi.nlm.nih.gov/pubmed/16698774
http://dx.doi.org/10.1529/biophysj.105.080119
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author Torres, Jaume
Parthasarathy, Krupakar
Lin, Xin
Saravanan, Rathi
Kukol, Andreas
Liu, Ding Xiang
author_facet Torres, Jaume
Parthasarathy, Krupakar
Lin, Xin
Saravanan, Rathi
Kukol, Andreas
Liu, Ding Xiang
author_sort Torres, Jaume
collection PubMed
description The coronavirus responsible for the severe acute respiratory syndrome contains a small envelope protein, E, with putative involvement in host apoptosis and virus morphogenesis. To perform these functions, it has been suggested that protein E can form a membrane destabilizing transmembrane (TM) hairpin, or homooligomerize to form a TM pore. Indeed, in a recent study we reported that the α-helical putative transmembrane domain of E protein (ETM) forms several SDS-resistant TM interactions: a dimer, a trimer, and two pentameric forms. Further, these interactions were found to be evolutionarily conserved. Herein, we have studied multiple isotopically labeled ETM peptides reconstituted in model lipid bilayers, using the orientational parameters derived from infrared dichroic data. We show that the topology of ETM is consistent with a regular TM α-helix. Further, the orientational parameters obtained unequivocally correspond to a homopentameric model, by comparison with previous predictions. We have independently confirmed that the full polypeptide of E protein can also aggregate as pentamers after expression in Escherichia coli. This interaction must be stabilized, at least partially, at the TM domain. The model we report for this pentameric α-helical bundle may explain some of the permabilizing properties of protein E, and should be the basis of mutagenesis efforts in future functional studies.
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spelling pubmed-15637572007-08-01 Model of a Putative Pore: The Pentameric α-Helical Bundle of SARS Coronavirus E Protein in Lipid Bilayers Torres, Jaume Parthasarathy, Krupakar Lin, Xin Saravanan, Rathi Kukol, Andreas Liu, Ding Xiang Biophys J Proteins The coronavirus responsible for the severe acute respiratory syndrome contains a small envelope protein, E, with putative involvement in host apoptosis and virus morphogenesis. To perform these functions, it has been suggested that protein E can form a membrane destabilizing transmembrane (TM) hairpin, or homooligomerize to form a TM pore. Indeed, in a recent study we reported that the α-helical putative transmembrane domain of E protein (ETM) forms several SDS-resistant TM interactions: a dimer, a trimer, and two pentameric forms. Further, these interactions were found to be evolutionarily conserved. Herein, we have studied multiple isotopically labeled ETM peptides reconstituted in model lipid bilayers, using the orientational parameters derived from infrared dichroic data. We show that the topology of ETM is consistent with a regular TM α-helix. Further, the orientational parameters obtained unequivocally correspond to a homopentameric model, by comparison with previous predictions. We have independently confirmed that the full polypeptide of E protein can also aggregate as pentamers after expression in Escherichia coli. This interaction must be stabilized, at least partially, at the TM domain. The model we report for this pentameric α-helical bundle may explain some of the permabilizing properties of protein E, and should be the basis of mutagenesis efforts in future functional studies. Biophysical Society 2006-08-01 2006-05-12 /pmc/articles/PMC1563757/ /pubmed/16698774 http://dx.doi.org/10.1529/biophysj.105.080119 Text en Copyright © 2006, Biophysical Society
spellingShingle Proteins
Torres, Jaume
Parthasarathy, Krupakar
Lin, Xin
Saravanan, Rathi
Kukol, Andreas
Liu, Ding Xiang
Model of a Putative Pore: The Pentameric α-Helical Bundle of SARS Coronavirus E Protein in Lipid Bilayers
title Model of a Putative Pore: The Pentameric α-Helical Bundle of SARS Coronavirus E Protein in Lipid Bilayers
title_full Model of a Putative Pore: The Pentameric α-Helical Bundle of SARS Coronavirus E Protein in Lipid Bilayers
title_fullStr Model of a Putative Pore: The Pentameric α-Helical Bundle of SARS Coronavirus E Protein in Lipid Bilayers
title_full_unstemmed Model of a Putative Pore: The Pentameric α-Helical Bundle of SARS Coronavirus E Protein in Lipid Bilayers
title_short Model of a Putative Pore: The Pentameric α-Helical Bundle of SARS Coronavirus E Protein in Lipid Bilayers
title_sort model of a putative pore: the pentameric α-helical bundle of sars coronavirus e protein in lipid bilayers
topic Proteins
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC1563757/
https://www.ncbi.nlm.nih.gov/pubmed/16698774
http://dx.doi.org/10.1529/biophysj.105.080119
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