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The Roles of Electrostatic Interactions in Capsid Assembly Mechanisms of Giant Viruses

In the last three decades, many giant DNA viruses have been discovered. Giant viruses present a unique and essential research frontier for studies of self-assembly and regulation of supramolecular assemblies. The question on how these giant DNA viruses assemble thousands of proteins so accurately to...

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Autores principales: Xian, Yuejiao, Karki, Chitra B., Silva, Sebastian Miki, Li, Lin, Xiao, Chuan
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2019
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6514965/
https://www.ncbi.nlm.nih.gov/pubmed/30995716
http://dx.doi.org/10.3390/ijms20081876
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author Xian, Yuejiao
Karki, Chitra B.
Silva, Sebastian Miki
Li, Lin
Xiao, Chuan
author_facet Xian, Yuejiao
Karki, Chitra B.
Silva, Sebastian Miki
Li, Lin
Xiao, Chuan
author_sort Xian, Yuejiao
collection PubMed
description In the last three decades, many giant DNA viruses have been discovered. Giant viruses present a unique and essential research frontier for studies of self-assembly and regulation of supramolecular assemblies. The question on how these giant DNA viruses assemble thousands of proteins so accurately to form their protein shells, the capsids, remains largely unanswered. Revealing the mechanisms of giant virus assembly will help to discover the mysteries of many self-assembly biology problems. Paramecium bursaria Chlorella virus-1 (PBCV-1) is one of the most intensively studied giant viruses. Here, we implemented a multi-scale approach to investigate the interactions among PBCV-1 capsid building units called capsomers. Three binding modes with different strengths are found between capsomers around the relatively flat area of the virion surface at the icosahedral 2-fold axis. Furthermore, a capsomer structure manipulation package is developed to simulate the capsid assembly process. Using these tools, binding forces among capsomers were investigated and binding funnels were observed that were consistent with the final assembled capsid. In addition, total binding free energies of each binding mode were calculated. The results helped to explain previous experimental observations. Results and tools generated in this work established an initial computational approach to answer current unresolved questions regarding giant virus assembly mechanisms. Results will pave the way for studying more complicated process in other biomolecular structures.
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spelling pubmed-65149652019-05-30 The Roles of Electrostatic Interactions in Capsid Assembly Mechanisms of Giant Viruses Xian, Yuejiao Karki, Chitra B. Silva, Sebastian Miki Li, Lin Xiao, Chuan Int J Mol Sci Article In the last three decades, many giant DNA viruses have been discovered. Giant viruses present a unique and essential research frontier for studies of self-assembly and regulation of supramolecular assemblies. The question on how these giant DNA viruses assemble thousands of proteins so accurately to form their protein shells, the capsids, remains largely unanswered. Revealing the mechanisms of giant virus assembly will help to discover the mysteries of many self-assembly biology problems. Paramecium bursaria Chlorella virus-1 (PBCV-1) is one of the most intensively studied giant viruses. Here, we implemented a multi-scale approach to investigate the interactions among PBCV-1 capsid building units called capsomers. Three binding modes with different strengths are found between capsomers around the relatively flat area of the virion surface at the icosahedral 2-fold axis. Furthermore, a capsomer structure manipulation package is developed to simulate the capsid assembly process. Using these tools, binding forces among capsomers were investigated and binding funnels were observed that were consistent with the final assembled capsid. In addition, total binding free energies of each binding mode were calculated. The results helped to explain previous experimental observations. Results and tools generated in this work established an initial computational approach to answer current unresolved questions regarding giant virus assembly mechanisms. Results will pave the way for studying more complicated process in other biomolecular structures. MDPI 2019-04-16 /pmc/articles/PMC6514965/ /pubmed/30995716 http://dx.doi.org/10.3390/ijms20081876 Text en © 2019 by the authors. Licensee MDPI, Basel, Switzerland. This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution (CC BY) license (http://creativecommons.org/licenses/by/4.0/).
spellingShingle Article
Xian, Yuejiao
Karki, Chitra B.
Silva, Sebastian Miki
Li, Lin
Xiao, Chuan
The Roles of Electrostatic Interactions in Capsid Assembly Mechanisms of Giant Viruses
title The Roles of Electrostatic Interactions in Capsid Assembly Mechanisms of Giant Viruses
title_full The Roles of Electrostatic Interactions in Capsid Assembly Mechanisms of Giant Viruses
title_fullStr The Roles of Electrostatic Interactions in Capsid Assembly Mechanisms of Giant Viruses
title_full_unstemmed The Roles of Electrostatic Interactions in Capsid Assembly Mechanisms of Giant Viruses
title_short The Roles of Electrostatic Interactions in Capsid Assembly Mechanisms of Giant Viruses
title_sort roles of electrostatic interactions in capsid assembly mechanisms of giant viruses
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6514965/
https://www.ncbi.nlm.nih.gov/pubmed/30995716
http://dx.doi.org/10.3390/ijms20081876
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