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The mechanisms of humic substances self-assembly with biological molecules: The case study of the prion protein

Humic substances (HS) are the largest constituent of soil organic matter and are considered as a key component of the terrestrial ecosystem. HS may facilitate the transport of organic and inorganic molecules, as well as the sorption interactions with environmentally relevant proteins such as prions....

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Autores principales: Giachin, Gabriele, Nepravishta, Ridvan, Mandaliti, Walter, Melino, Sonia, Margon, Alja, Scaini, Denis, Mazzei, Pierluigi, Piccolo, Alessandro, Legname, Giuseppe, Paci, Maurizio, Leita, Liviana
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Public Library of Science 2017
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5697873/
https://www.ncbi.nlm.nih.gov/pubmed/29161325
http://dx.doi.org/10.1371/journal.pone.0188308
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author Giachin, Gabriele
Nepravishta, Ridvan
Mandaliti, Walter
Melino, Sonia
Margon, Alja
Scaini, Denis
Mazzei, Pierluigi
Piccolo, Alessandro
Legname, Giuseppe
Paci, Maurizio
Leita, Liviana
author_facet Giachin, Gabriele
Nepravishta, Ridvan
Mandaliti, Walter
Melino, Sonia
Margon, Alja
Scaini, Denis
Mazzei, Pierluigi
Piccolo, Alessandro
Legname, Giuseppe
Paci, Maurizio
Leita, Liviana
author_sort Giachin, Gabriele
collection PubMed
description Humic substances (HS) are the largest constituent of soil organic matter and are considered as a key component of the terrestrial ecosystem. HS may facilitate the transport of organic and inorganic molecules, as well as the sorption interactions with environmentally relevant proteins such as prions. Prions enter the environment through shedding from live hosts, facilitating a sustained incidence of animal prion diseases such as Chronic Wasting Disease and scrapie in cervid and ovine populations, respectively. Changes in prion structure upon environmental exposure may be significant as they can affect prion infectivity and disease pathology. Despite its relevance, the mechanisms of prion interaction with HS are still not completely understood. The goal of this work is to advance a structural-level picture of the encapsulation of recombinant, non-infectious, prion protein (PrP) into different natural HS. We observed that PrP precipitation upon addition of HS is mainly driven by a mechanism of “salting-out” whereby PrP molecules are rapidly removed from the solution and aggregate in insoluble adducts with humic molecules. Importantly, this process does not alter the protein folding since insoluble PrP retains its α-helical content when in complex with HS. The observed ability of HS to promote PrP insolubilization without altering its secondary structure may have potential relevance in the context of “prion ecology”. These results suggest that soil organic matter interacts with prions possibly without altering the protein structures. This may facilitate prions preservation from biotic and abiotic degradation leading to their accumulation in the environment.
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spelling pubmed-56978732017-11-30 The mechanisms of humic substances self-assembly with biological molecules: The case study of the prion protein Giachin, Gabriele Nepravishta, Ridvan Mandaliti, Walter Melino, Sonia Margon, Alja Scaini, Denis Mazzei, Pierluigi Piccolo, Alessandro Legname, Giuseppe Paci, Maurizio Leita, Liviana PLoS One Research Article Humic substances (HS) are the largest constituent of soil organic matter and are considered as a key component of the terrestrial ecosystem. HS may facilitate the transport of organic and inorganic molecules, as well as the sorption interactions with environmentally relevant proteins such as prions. Prions enter the environment through shedding from live hosts, facilitating a sustained incidence of animal prion diseases such as Chronic Wasting Disease and scrapie in cervid and ovine populations, respectively. Changes in prion structure upon environmental exposure may be significant as they can affect prion infectivity and disease pathology. Despite its relevance, the mechanisms of prion interaction with HS are still not completely understood. The goal of this work is to advance a structural-level picture of the encapsulation of recombinant, non-infectious, prion protein (PrP) into different natural HS. We observed that PrP precipitation upon addition of HS is mainly driven by a mechanism of “salting-out” whereby PrP molecules are rapidly removed from the solution and aggregate in insoluble adducts with humic molecules. Importantly, this process does not alter the protein folding since insoluble PrP retains its α-helical content when in complex with HS. The observed ability of HS to promote PrP insolubilization without altering its secondary structure may have potential relevance in the context of “prion ecology”. These results suggest that soil organic matter interacts with prions possibly without altering the protein structures. This may facilitate prions preservation from biotic and abiotic degradation leading to their accumulation in the environment. Public Library of Science 2017-11-21 /pmc/articles/PMC5697873/ /pubmed/29161325 http://dx.doi.org/10.1371/journal.pone.0188308 Text en © 2017 Giachin et al http://creativecommons.org/licenses/by/4.0/ This is an open access article distributed under the terms of the Creative Commons Attribution License (http://creativecommons.org/licenses/by/4.0/) , which permits unrestricted use, distribution, and reproduction in any medium, provided the original author and source are credited.
spellingShingle Research Article
Giachin, Gabriele
Nepravishta, Ridvan
Mandaliti, Walter
Melino, Sonia
Margon, Alja
Scaini, Denis
Mazzei, Pierluigi
Piccolo, Alessandro
Legname, Giuseppe
Paci, Maurizio
Leita, Liviana
The mechanisms of humic substances self-assembly with biological molecules: The case study of the prion protein
title The mechanisms of humic substances self-assembly with biological molecules: The case study of the prion protein
title_full The mechanisms of humic substances self-assembly with biological molecules: The case study of the prion protein
title_fullStr The mechanisms of humic substances self-assembly with biological molecules: The case study of the prion protein
title_full_unstemmed The mechanisms of humic substances self-assembly with biological molecules: The case study of the prion protein
title_short The mechanisms of humic substances self-assembly with biological molecules: The case study of the prion protein
title_sort mechanisms of humic substances self-assembly with biological molecules: the case study of the prion protein
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5697873/
https://www.ncbi.nlm.nih.gov/pubmed/29161325
http://dx.doi.org/10.1371/journal.pone.0188308
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