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Probing the Residual Structure in Avian Prion Hexarepeats by CD, NMR and MD Techniques

Many proteins perform essential biological functions by means of regions that lacking specific organized structure exist as an ensemble of interconverting transient conformers. The characterization of such regions, including the description of their structural propensities, number of conformations a...

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Autores principales: Russo, Luigi, Raiola, Luca, Campitiello, Maria Anna, Magrì, Antonio, Fattorusso, Roberto, Malgieri, Gaetano, Pappalardo, Giuseppe, La Mendola, Diego, Isernia, Carla
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2013
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6270093/
https://www.ncbi.nlm.nih.gov/pubmed/24043142
http://dx.doi.org/10.3390/molecules180911467
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author Russo, Luigi
Raiola, Luca
Campitiello, Maria Anna
Magrì, Antonio
Fattorusso, Roberto
Malgieri, Gaetano
Pappalardo, Giuseppe
La Mendola, Diego
Isernia, Carla
author_facet Russo, Luigi
Raiola, Luca
Campitiello, Maria Anna
Magrì, Antonio
Fattorusso, Roberto
Malgieri, Gaetano
Pappalardo, Giuseppe
La Mendola, Diego
Isernia, Carla
author_sort Russo, Luigi
collection PubMed
description Many proteins perform essential biological functions by means of regions that lacking specific organized structure exist as an ensemble of interconverting transient conformers. The characterization of such regions, including the description of their structural propensities, number of conformations and relative populations can provide useful insights. Prion diseases result from the conversion of a normal glycoprotein into a misfolded pathogenic isoform. The structures of mammal and chicken prion proteins show a similar fold with a globular domain and a flexible N-terminal portion that contains different repeated regions: octarepeats (PHGGGWGQ) in mammals and hexarepeats (PHNPGY) in chickens. The higher number of prolines in the hexarepeat region suggests that this region may retain a significant amount of residual secondary structure. Here, we report the CD, NMR and MD characterization of a peptide (2-HexaPY) composed of two hexarepeats. We combine experimental NMR data and MD to investigate at atomic level its ensemble-averaged structural properties, demonstrating how each residue of both repeats has a different quantified PPII propensity that shows a periodicity along the sequence. This feature explains the absence of cooperativity to stabilize a PPII conformation. Nonetheless, such residual structure can play a role in nucleating local structural transitions as well as modulating intra-molecular or inter-molecular interactions.
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spelling pubmed-62700932018-12-18 Probing the Residual Structure in Avian Prion Hexarepeats by CD, NMR and MD Techniques Russo, Luigi Raiola, Luca Campitiello, Maria Anna Magrì, Antonio Fattorusso, Roberto Malgieri, Gaetano Pappalardo, Giuseppe La Mendola, Diego Isernia, Carla Molecules Article Many proteins perform essential biological functions by means of regions that lacking specific organized structure exist as an ensemble of interconverting transient conformers. The characterization of such regions, including the description of their structural propensities, number of conformations and relative populations can provide useful insights. Prion diseases result from the conversion of a normal glycoprotein into a misfolded pathogenic isoform. The structures of mammal and chicken prion proteins show a similar fold with a globular domain and a flexible N-terminal portion that contains different repeated regions: octarepeats (PHGGGWGQ) in mammals and hexarepeats (PHNPGY) in chickens. The higher number of prolines in the hexarepeat region suggests that this region may retain a significant amount of residual secondary structure. Here, we report the CD, NMR and MD characterization of a peptide (2-HexaPY) composed of two hexarepeats. We combine experimental NMR data and MD to investigate at atomic level its ensemble-averaged structural properties, demonstrating how each residue of both repeats has a different quantified PPII propensity that shows a periodicity along the sequence. This feature explains the absence of cooperativity to stabilize a PPII conformation. Nonetheless, such residual structure can play a role in nucleating local structural transitions as well as modulating intra-molecular or inter-molecular interactions. MDPI 2013-09-16 /pmc/articles/PMC6270093/ /pubmed/24043142 http://dx.doi.org/10.3390/molecules180911467 Text en © 2013 by the authors; licensee MDPI, Basel, Switzerland. http://creativecommons.org/licenses/by/3.0/ This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution license (http://creativecommons.org/licenses/by/3.0/).
spellingShingle Article
Russo, Luigi
Raiola, Luca
Campitiello, Maria Anna
Magrì, Antonio
Fattorusso, Roberto
Malgieri, Gaetano
Pappalardo, Giuseppe
La Mendola, Diego
Isernia, Carla
Probing the Residual Structure in Avian Prion Hexarepeats by CD, NMR and MD Techniques
title Probing the Residual Structure in Avian Prion Hexarepeats by CD, NMR and MD Techniques
title_full Probing the Residual Structure in Avian Prion Hexarepeats by CD, NMR and MD Techniques
title_fullStr Probing the Residual Structure in Avian Prion Hexarepeats by CD, NMR and MD Techniques
title_full_unstemmed Probing the Residual Structure in Avian Prion Hexarepeats by CD, NMR and MD Techniques
title_short Probing the Residual Structure in Avian Prion Hexarepeats by CD, NMR and MD Techniques
title_sort probing the residual structure in avian prion hexarepeats by cd, nmr and md techniques
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6270093/
https://www.ncbi.nlm.nih.gov/pubmed/24043142
http://dx.doi.org/10.3390/molecules180911467
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