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Viral Capsid Change upon Encapsulation of Double-Stranded DNA into an Infectious Hypodermal and Hematopoietic Necrosis Virus-like Particle

In this study, we aimed to encapsulate the sizable double-stranded DNA (dsDNA, 3.9 kbp) into a small-sized infectious hypodermal and hematopoietic necrosis virus-like particle (IHHNV-VLP; T = 1) and compared the changes in capsid structure between dsDNA-filled VLP and empty VLP. Based on our encapsu...

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Autores principales: Weerachatyanukul, Wattana, Kiatmetha, Pauline, Raksat, Ponlawoot, Boonkua, Supawich, Thongsum, Orawan, Jariyapong, Pitchanee, Chotwiwatthanakun, Charoonroj, Ounjai, Puey, Metlagel, Zoltan
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2022
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9867196/
https://www.ncbi.nlm.nih.gov/pubmed/36680151
http://dx.doi.org/10.3390/v15010110
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author Weerachatyanukul, Wattana
Kiatmetha, Pauline
Raksat, Ponlawoot
Boonkua, Supawich
Thongsum, Orawan
Jariyapong, Pitchanee
Chotwiwatthanakun, Charoonroj
Ounjai, Puey
Metlagel, Zoltan
author_facet Weerachatyanukul, Wattana
Kiatmetha, Pauline
Raksat, Ponlawoot
Boonkua, Supawich
Thongsum, Orawan
Jariyapong, Pitchanee
Chotwiwatthanakun, Charoonroj
Ounjai, Puey
Metlagel, Zoltan
author_sort Weerachatyanukul, Wattana
collection PubMed
description In this study, we aimed to encapsulate the sizable double-stranded DNA (dsDNA, 3.9 kbp) into a small-sized infectious hypodermal and hematopoietic necrosis virus-like particle (IHHNV-VLP; T = 1) and compared the changes in capsid structure between dsDNA-filled VLP and empty VLP. Based on our encapsulation protocol, IHHNV-VLP was able to load dsDNA at an efficiency of 30–40% (w/w) into its cavity. Structural analysis revealed two subclasses of IHHNV-VLP, so-called empty and dsDNA-filled VLPs. The three-dimensional (3D) structure of the empty VLP produced in E. coli was similar to that of the empty IHHNV-VLP produced in Sf9 insect cells. The size of the dsDNA-filled VLP was slightly bigger (50 Å) than its empty VLP counterpart; however, the capsid structure was drastically altered. The capsid was about 1.5-fold thicker due to the thickening of the capsid interior, presumably from DNA–capsid interaction evident from capsid protrusions or nodules on the interior surface. In addition, the morphological changes of the capsid exterior were particularly observed in the vicinity of the five-fold axes, where the counter-clockwise twisting of the “tripod” structure at the vertex of the five-fold channel was evident, resulting in a widening of the channel’s opening. Whether these capsid changes are similar to virion capsid maturation in the host cells remains to be investigated. Nevertheless, the ability of IHHNV-VLP to encapsulate the sizable dsDNA has opened up the opportunity to package a dsDNA vector that can insert exogenous genes and target susceptible shrimp cells in order to halt viral infection.
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spelling pubmed-98671962023-01-22 Viral Capsid Change upon Encapsulation of Double-Stranded DNA into an Infectious Hypodermal and Hematopoietic Necrosis Virus-like Particle Weerachatyanukul, Wattana Kiatmetha, Pauline Raksat, Ponlawoot Boonkua, Supawich Thongsum, Orawan Jariyapong, Pitchanee Chotwiwatthanakun, Charoonroj Ounjai, Puey Metlagel, Zoltan Viruses Article In this study, we aimed to encapsulate the sizable double-stranded DNA (dsDNA, 3.9 kbp) into a small-sized infectious hypodermal and hematopoietic necrosis virus-like particle (IHHNV-VLP; T = 1) and compared the changes in capsid structure between dsDNA-filled VLP and empty VLP. Based on our encapsulation protocol, IHHNV-VLP was able to load dsDNA at an efficiency of 30–40% (w/w) into its cavity. Structural analysis revealed two subclasses of IHHNV-VLP, so-called empty and dsDNA-filled VLPs. The three-dimensional (3D) structure of the empty VLP produced in E. coli was similar to that of the empty IHHNV-VLP produced in Sf9 insect cells. The size of the dsDNA-filled VLP was slightly bigger (50 Å) than its empty VLP counterpart; however, the capsid structure was drastically altered. The capsid was about 1.5-fold thicker due to the thickening of the capsid interior, presumably from DNA–capsid interaction evident from capsid protrusions or nodules on the interior surface. In addition, the morphological changes of the capsid exterior were particularly observed in the vicinity of the five-fold axes, where the counter-clockwise twisting of the “tripod” structure at the vertex of the five-fold channel was evident, resulting in a widening of the channel’s opening. Whether these capsid changes are similar to virion capsid maturation in the host cells remains to be investigated. Nevertheless, the ability of IHHNV-VLP to encapsulate the sizable dsDNA has opened up the opportunity to package a dsDNA vector that can insert exogenous genes and target susceptible shrimp cells in order to halt viral infection. MDPI 2022-12-30 /pmc/articles/PMC9867196/ /pubmed/36680151 http://dx.doi.org/10.3390/v15010110 Text en © 2022 by the authors. https://creativecommons.org/licenses/by/4.0/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 (https://creativecommons.org/licenses/by/4.0/).
spellingShingle Article
Weerachatyanukul, Wattana
Kiatmetha, Pauline
Raksat, Ponlawoot
Boonkua, Supawich
Thongsum, Orawan
Jariyapong, Pitchanee
Chotwiwatthanakun, Charoonroj
Ounjai, Puey
Metlagel, Zoltan
Viral Capsid Change upon Encapsulation of Double-Stranded DNA into an Infectious Hypodermal and Hematopoietic Necrosis Virus-like Particle
title Viral Capsid Change upon Encapsulation of Double-Stranded DNA into an Infectious Hypodermal and Hematopoietic Necrosis Virus-like Particle
title_full Viral Capsid Change upon Encapsulation of Double-Stranded DNA into an Infectious Hypodermal and Hematopoietic Necrosis Virus-like Particle
title_fullStr Viral Capsid Change upon Encapsulation of Double-Stranded DNA into an Infectious Hypodermal and Hematopoietic Necrosis Virus-like Particle
title_full_unstemmed Viral Capsid Change upon Encapsulation of Double-Stranded DNA into an Infectious Hypodermal and Hematopoietic Necrosis Virus-like Particle
title_short Viral Capsid Change upon Encapsulation of Double-Stranded DNA into an Infectious Hypodermal and Hematopoietic Necrosis Virus-like Particle
title_sort viral capsid change upon encapsulation of double-stranded dna into an infectious hypodermal and hematopoietic necrosis virus-like particle
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9867196/
https://www.ncbi.nlm.nih.gov/pubmed/36680151
http://dx.doi.org/10.3390/v15010110
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