Destabilizing polymorphism in cervid prion protein hydrophobic core determines prion conformation and conversion efficiency.

Prion diseases are infectious neurodegenerative disorders of humans and animals caused by misfolded forms of the cellular prion protein PrPC. Prions cause disease by converting PrPC into aggregation-prone PrPSc. Chronic wasting disease (CWD) is the most contagious prion disease with substantial late...

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Main Authors: Samia Hannaoui, Sara Amidian, Yo Ching Cheng, Camilo Duque Velásquez, Lyudmyla Dorosh, Sampson Law, Glenn Telling, Maria Stepanova, Debbie McKenzie, Holger Wille, Sabine Gilch
Format: Article
Language:English
Published: Public Library of Science (PLoS) 2017-08-01
Series:PLoS Pathogens
Online Access:http://europepmc.org/articles/PMC5568445?pdf=render
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spelling doaj-7f66ff8478464b97a4e5b9a89aac04ff2020-11-25T01:13:56ZengPublic Library of Science (PLoS)PLoS Pathogens1553-73661553-73742017-08-01138e100655310.1371/journal.ppat.1006553Destabilizing polymorphism in cervid prion protein hydrophobic core determines prion conformation and conversion efficiency.Samia HannaouiSara AmidianYo Ching ChengCamilo Duque VelásquezLyudmyla DoroshSampson LawGlenn TellingMaria StepanovaDebbie McKenzieHolger WilleSabine GilchPrion diseases are infectious neurodegenerative disorders of humans and animals caused by misfolded forms of the cellular prion protein PrPC. Prions cause disease by converting PrPC into aggregation-prone PrPSc. Chronic wasting disease (CWD) is the most contagious prion disease with substantial lateral transmission, affecting free-ranging and farmed cervids. Although the PrP primary structure is highly conserved among cervids, the disease phenotype can be modulated by species-specific polymorphisms in the prion protein gene. How the resulting amino-acid substitutions impact PrPC and PrPSc structure and propagation is poorly understood. We investigated the effects of the cervid 116A>G substitution, located in the most conserved PrP domain, on PrPC structure and conversion and on 116AG-prion conformation and infectivity. Molecular dynamics simulations revealed structural de-stabilization of 116G-PrP, which enhanced its in vitro conversion efficiency when used as recombinant PrP substrate in real-time quaking-induced conversion (RT-QuIC). We demonstrate that 116AG-prions are conformationally less stable, show lower activity as a seed in RT-QuIC and exhibit reduced infectivity in vitro and in vivo. Infectivity of 116AG-prions was significantly enhanced upon secondary passage in mice, yet conformational features were retained. These findings indicate that structurally de-stabilized PrPC is readily convertible by cervid prions of different genetic background and results in a prion conformation adaptable to cervid wild-type PrP. Conformation is an important criterion when assessing transmission barrier, and conformational variants can target a different host range. Therefore, a thorough analysis of CWD isolates and re-assessment of species-barriers is important in order to fully exclude a zoonotic potential of CWD.http://europepmc.org/articles/PMC5568445?pdf=render
collection DOAJ
language English
format Article
sources DOAJ
author Samia Hannaoui
Sara Amidian
Yo Ching Cheng
Camilo Duque Velásquez
Lyudmyla Dorosh
Sampson Law
Glenn Telling
Maria Stepanova
Debbie McKenzie
Holger Wille
Sabine Gilch
spellingShingle Samia Hannaoui
Sara Amidian
Yo Ching Cheng
Camilo Duque Velásquez
Lyudmyla Dorosh
Sampson Law
Glenn Telling
Maria Stepanova
Debbie McKenzie
Holger Wille
Sabine Gilch
Destabilizing polymorphism in cervid prion protein hydrophobic core determines prion conformation and conversion efficiency.
PLoS Pathogens
author_facet Samia Hannaoui
Sara Amidian
Yo Ching Cheng
Camilo Duque Velásquez
Lyudmyla Dorosh
Sampson Law
Glenn Telling
Maria Stepanova
Debbie McKenzie
Holger Wille
Sabine Gilch
author_sort Samia Hannaoui
title Destabilizing polymorphism in cervid prion protein hydrophobic core determines prion conformation and conversion efficiency.
title_short Destabilizing polymorphism in cervid prion protein hydrophobic core determines prion conformation and conversion efficiency.
title_full Destabilizing polymorphism in cervid prion protein hydrophobic core determines prion conformation and conversion efficiency.
title_fullStr Destabilizing polymorphism in cervid prion protein hydrophobic core determines prion conformation and conversion efficiency.
title_full_unstemmed Destabilizing polymorphism in cervid prion protein hydrophobic core determines prion conformation and conversion efficiency.
title_sort destabilizing polymorphism in cervid prion protein hydrophobic core determines prion conformation and conversion efficiency.
publisher Public Library of Science (PLoS)
series PLoS Pathogens
issn 1553-7366
1553-7374
publishDate 2017-08-01
description Prion diseases are infectious neurodegenerative disorders of humans and animals caused by misfolded forms of the cellular prion protein PrPC. Prions cause disease by converting PrPC into aggregation-prone PrPSc. Chronic wasting disease (CWD) is the most contagious prion disease with substantial lateral transmission, affecting free-ranging and farmed cervids. Although the PrP primary structure is highly conserved among cervids, the disease phenotype can be modulated by species-specific polymorphisms in the prion protein gene. How the resulting amino-acid substitutions impact PrPC and PrPSc structure and propagation is poorly understood. We investigated the effects of the cervid 116A>G substitution, located in the most conserved PrP domain, on PrPC structure and conversion and on 116AG-prion conformation and infectivity. Molecular dynamics simulations revealed structural de-stabilization of 116G-PrP, which enhanced its in vitro conversion efficiency when used as recombinant PrP substrate in real-time quaking-induced conversion (RT-QuIC). We demonstrate that 116AG-prions are conformationally less stable, show lower activity as a seed in RT-QuIC and exhibit reduced infectivity in vitro and in vivo. Infectivity of 116AG-prions was significantly enhanced upon secondary passage in mice, yet conformational features were retained. These findings indicate that structurally de-stabilized PrPC is readily convertible by cervid prions of different genetic background and results in a prion conformation adaptable to cervid wild-type PrP. Conformation is an important criterion when assessing transmission barrier, and conformational variants can target a different host range. Therefore, a thorough analysis of CWD isolates and re-assessment of species-barriers is important in order to fully exclude a zoonotic potential of CWD.
url http://europepmc.org/articles/PMC5568445?pdf=render
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