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On the Dependence of Prion and Amyloid Structure on the Folding Environment

Currently available analyses of amyloid proteins reveal the necessity of the existence of radical structural changes in amyloid transformation processes. The analysis carried out in this paper based on the model called fuzzy oil drop (FOD) and its modified form (FOD-M) allows quantifying the role of...

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Autores principales: Roterman, Irena, Stapor, Katarzyna, Gądek, Krzysztof, Gubała, Tomasz, Nowakowski, Piotr, Fabian, Piotr, Konieczny, Leszek
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2021
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8707753/
https://www.ncbi.nlm.nih.gov/pubmed/34948291
http://dx.doi.org/10.3390/ijms222413494
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author Roterman, Irena
Stapor, Katarzyna
Gądek, Krzysztof
Gubała, Tomasz
Nowakowski, Piotr
Fabian, Piotr
Konieczny, Leszek
author_facet Roterman, Irena
Stapor, Katarzyna
Gądek, Krzysztof
Gubała, Tomasz
Nowakowski, Piotr
Fabian, Piotr
Konieczny, Leszek
author_sort Roterman, Irena
collection PubMed
description Currently available analyses of amyloid proteins reveal the necessity of the existence of radical structural changes in amyloid transformation processes. The analysis carried out in this paper based on the model called fuzzy oil drop (FOD) and its modified form (FOD-M) allows quantifying the role of the environment, particularly including the aquatic environment. The starting point and basis for the present presentation is the statement about the presence of two fundamentally different methods of organizing polypeptides into ordered conformations—globular proteins and amyloids. The present study shows the source of the differences between these two paths resulting from the specificity of the external force field coming from the environment, including the aquatic and hydrophobic one. The water environment expressed in the fuzzy oil drop model using the 3D Gauss function directs the folding process towards the construction of a micelle-like system with a hydrophobic core in the central part and the exposure of polarity on the surface. The hydrophobicity distribution of membrane proteins has the opposite characteristic: Exposure of hydrophobicity at the surface of the membrane protein with an often polar center (as in the case of ion channels) is expected. The structure of most proteins is influenced by a more or less modified force field generated by water through the appropriate presence of a non-polar (membrane-like) environment. The determination of the proportion of a factor different from polar water enables the assessment of the protein status by indicating factors favoring the structure it represents.
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spelling pubmed-87077532021-12-25 On the Dependence of Prion and Amyloid Structure on the Folding Environment Roterman, Irena Stapor, Katarzyna Gądek, Krzysztof Gubała, Tomasz Nowakowski, Piotr Fabian, Piotr Konieczny, Leszek Int J Mol Sci Article Currently available analyses of amyloid proteins reveal the necessity of the existence of radical structural changes in amyloid transformation processes. The analysis carried out in this paper based on the model called fuzzy oil drop (FOD) and its modified form (FOD-M) allows quantifying the role of the environment, particularly including the aquatic environment. The starting point and basis for the present presentation is the statement about the presence of two fundamentally different methods of organizing polypeptides into ordered conformations—globular proteins and amyloids. The present study shows the source of the differences between these two paths resulting from the specificity of the external force field coming from the environment, including the aquatic and hydrophobic one. The water environment expressed in the fuzzy oil drop model using the 3D Gauss function directs the folding process towards the construction of a micelle-like system with a hydrophobic core in the central part and the exposure of polarity on the surface. The hydrophobicity distribution of membrane proteins has the opposite characteristic: Exposure of hydrophobicity at the surface of the membrane protein with an often polar center (as in the case of ion channels) is expected. The structure of most proteins is influenced by a more or less modified force field generated by water through the appropriate presence of a non-polar (membrane-like) environment. The determination of the proportion of a factor different from polar water enables the assessment of the protein status by indicating factors favoring the structure it represents. MDPI 2021-12-16 /pmc/articles/PMC8707753/ /pubmed/34948291 http://dx.doi.org/10.3390/ijms222413494 Text en © 2021 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
Roterman, Irena
Stapor, Katarzyna
Gądek, Krzysztof
Gubała, Tomasz
Nowakowski, Piotr
Fabian, Piotr
Konieczny, Leszek
On the Dependence of Prion and Amyloid Structure on the Folding Environment
title On the Dependence of Prion and Amyloid Structure on the Folding Environment
title_full On the Dependence of Prion and Amyloid Structure on the Folding Environment
title_fullStr On the Dependence of Prion and Amyloid Structure on the Folding Environment
title_full_unstemmed On the Dependence of Prion and Amyloid Structure on the Folding Environment
title_short On the Dependence of Prion and Amyloid Structure on the Folding Environment
title_sort on the dependence of prion and amyloid structure on the folding environment
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8707753/
https://www.ncbi.nlm.nih.gov/pubmed/34948291
http://dx.doi.org/10.3390/ijms222413494
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