Mathematical determination of the HIV-1 matrix shell structure and its impact on the biology of HIV-1.

Since its discovery in the early 1980s, there has been significant progress in understanding the biology of type 1 human immunodeficiency virus (HIV-1). Structural biologists have made tremendous contributions to this challenge, guiding the development of current therapeutic strategies. Despite our...

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Main Authors: Weijie Sun, Eduardo Reyes-Serratos, David Barilla, Joy Ramielle L Santos, Mattéa Bujold, Sean Graves, Marcelo Marcet-Palacios
Format: Article
Language:English
Published: Public Library of Science (PLoS) 2019-01-01
Series:PLoS ONE
Online Access:https://doi.org/10.1371/journal.pone.0224965
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spelling doaj-e273a86251944a3586963e1ebe05b09e2021-03-03T21:15:25ZengPublic Library of Science (PLoS)PLoS ONE1932-62032019-01-011411e022496510.1371/journal.pone.0224965Mathematical determination of the HIV-1 matrix shell structure and its impact on the biology of HIV-1.Weijie SunEduardo Reyes-SerratosDavid BarillaJoy Ramielle L SantosMattéa BujoldSean GravesMarcelo Marcet-PalaciosSince its discovery in the early 1980s, there has been significant progress in understanding the biology of type 1 human immunodeficiency virus (HIV-1). Structural biologists have made tremendous contributions to this challenge, guiding the development of current therapeutic strategies. Despite our efforts, there are unresolved structural features of the virus and consequently, significant knowledge gaps in our understanding. The superstructure of the HIV-1 matrix (MA) shell has not been elucidated. Evidence by various high-resolution microscopy techniques support a model composed of MA trimers arranged in a hexameric configuration consisting of 6 MA trimers forming a hexagon. In this manuscript we review the mathematical limitations of this model and propose a new model consisting of a 6-lune hosohedra structure, which aligns with available structural evidence. We used geometric and rotational matrix computation methods to construct our model and predict a new mechanism for viral entry that explains the increase in particle size observed during CD4 receptor engagement and the most common HIV-1 ellipsoidal shapes observed in cryo-EM tomograms. A better understanding of the HIV-1 MA shell structure is a key step towards better models for viral assembly, maturation and entry. Our new model will facilitate efforts to improve understanding of the biology of HIV-1.https://doi.org/10.1371/journal.pone.0224965
collection DOAJ
language English
format Article
sources DOAJ
author Weijie Sun
Eduardo Reyes-Serratos
David Barilla
Joy Ramielle L Santos
Mattéa Bujold
Sean Graves
Marcelo Marcet-Palacios
spellingShingle Weijie Sun
Eduardo Reyes-Serratos
David Barilla
Joy Ramielle L Santos
Mattéa Bujold
Sean Graves
Marcelo Marcet-Palacios
Mathematical determination of the HIV-1 matrix shell structure and its impact on the biology of HIV-1.
PLoS ONE
author_facet Weijie Sun
Eduardo Reyes-Serratos
David Barilla
Joy Ramielle L Santos
Mattéa Bujold
Sean Graves
Marcelo Marcet-Palacios
author_sort Weijie Sun
title Mathematical determination of the HIV-1 matrix shell structure and its impact on the biology of HIV-1.
title_short Mathematical determination of the HIV-1 matrix shell structure and its impact on the biology of HIV-1.
title_full Mathematical determination of the HIV-1 matrix shell structure and its impact on the biology of HIV-1.
title_fullStr Mathematical determination of the HIV-1 matrix shell structure and its impact on the biology of HIV-1.
title_full_unstemmed Mathematical determination of the HIV-1 matrix shell structure and its impact on the biology of HIV-1.
title_sort mathematical determination of the hiv-1 matrix shell structure and its impact on the biology of hiv-1.
publisher Public Library of Science (PLoS)
series PLoS ONE
issn 1932-6203
publishDate 2019-01-01
description Since its discovery in the early 1980s, there has been significant progress in understanding the biology of type 1 human immunodeficiency virus (HIV-1). Structural biologists have made tremendous contributions to this challenge, guiding the development of current therapeutic strategies. Despite our efforts, there are unresolved structural features of the virus and consequently, significant knowledge gaps in our understanding. The superstructure of the HIV-1 matrix (MA) shell has not been elucidated. Evidence by various high-resolution microscopy techniques support a model composed of MA trimers arranged in a hexameric configuration consisting of 6 MA trimers forming a hexagon. In this manuscript we review the mathematical limitations of this model and propose a new model consisting of a 6-lune hosohedra structure, which aligns with available structural evidence. We used geometric and rotational matrix computation methods to construct our model and predict a new mechanism for viral entry that explains the increase in particle size observed during CD4 receptor engagement and the most common HIV-1 ellipsoidal shapes observed in cryo-EM tomograms. A better understanding of the HIV-1 MA shell structure is a key step towards better models for viral assembly, maturation and entry. Our new model will facilitate efforts to improve understanding of the biology of HIV-1.
url https://doi.org/10.1371/journal.pone.0224965
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