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The Interaction between Amyloid Prefibrillar Oligomers of Salmon Calcitonin and a Lipid-Raft Model: Molecular Mechanisms Leading to Membrane Damage, Ca(2+)-Influx and Neurotoxicity

To investigate the interaction between amyloid assemblies and “lipid-rafts”, we performed functional and structural experiments on salmon calcitonin (sCT) solutions rich in prefibrillar oligomers, proto- and mature-fibers interacting with liposomes made of monosialoganglioside-GM1 (4%), DPPC (48%) a...

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Autores principales: Diociaiuti, Marco, Bombelli, Cecilia, Zanetti-Polzi, Laura, Belfiore, Marcello, Fioravanti, Raoul, Macchia, Gianfranco, Giordani, Cristiano
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2019
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7022306/
https://www.ncbi.nlm.nih.gov/pubmed/31905804
http://dx.doi.org/10.3390/biom10010058
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author Diociaiuti, Marco
Bombelli, Cecilia
Zanetti-Polzi, Laura
Belfiore, Marcello
Fioravanti, Raoul
Macchia, Gianfranco
Giordani, Cristiano
author_facet Diociaiuti, Marco
Bombelli, Cecilia
Zanetti-Polzi, Laura
Belfiore, Marcello
Fioravanti, Raoul
Macchia, Gianfranco
Giordani, Cristiano
author_sort Diociaiuti, Marco
collection PubMed
description To investigate the interaction between amyloid assemblies and “lipid-rafts”, we performed functional and structural experiments on salmon calcitonin (sCT) solutions rich in prefibrillar oligomers, proto- and mature-fibers interacting with liposomes made of monosialoganglioside-GM1 (4%), DPPC (48%) and cholesterol (48%). To focus on the role played by electrostatic forces and considering that sCT is positive and GM1 is negative at physiologic pH, we compared results with those relative to GM1-free liposomes while, to assess membrane fluidity effects, with those relative to cholesterol-free liposomes. We investigated functional effects by evaluating Ca(2+)-influx in liposomes and viability of HT22-DIFF neurons. Only neurotoxic solutions rich in unstructured prefibrillar oligomers were able to induce Ca(2+)-influx in the “lipid-rafts” model, suggesting that the two phenomena were correlated. Thus, we investigated protein conformation and membrane modifications occurring during the interaction: circular dichroism showed that “lipid-rafts” fostered the formation of β-structures and energy filtered-transmission electron microscopy that prefibrillar oligomers formed pores, similar to Aβ did. We speculate that electrostatic forces between the positive prefibrillar oligomers and the negative GM1 drive the initial binding while the hydrophobic profile and flexibility of prefibrillar oligomers, together with the membrane fluidity, are responsible for the subsequent pore formation leading to Ca(2+)-influx and neurotoxicity.
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spelling pubmed-70223062020-03-09 The Interaction between Amyloid Prefibrillar Oligomers of Salmon Calcitonin and a Lipid-Raft Model: Molecular Mechanisms Leading to Membrane Damage, Ca(2+)-Influx and Neurotoxicity Diociaiuti, Marco Bombelli, Cecilia Zanetti-Polzi, Laura Belfiore, Marcello Fioravanti, Raoul Macchia, Gianfranco Giordani, Cristiano Biomolecules Article To investigate the interaction between amyloid assemblies and “lipid-rafts”, we performed functional and structural experiments on salmon calcitonin (sCT) solutions rich in prefibrillar oligomers, proto- and mature-fibers interacting with liposomes made of monosialoganglioside-GM1 (4%), DPPC (48%) and cholesterol (48%). To focus on the role played by electrostatic forces and considering that sCT is positive and GM1 is negative at physiologic pH, we compared results with those relative to GM1-free liposomes while, to assess membrane fluidity effects, with those relative to cholesterol-free liposomes. We investigated functional effects by evaluating Ca(2+)-influx in liposomes and viability of HT22-DIFF neurons. Only neurotoxic solutions rich in unstructured prefibrillar oligomers were able to induce Ca(2+)-influx in the “lipid-rafts” model, suggesting that the two phenomena were correlated. Thus, we investigated protein conformation and membrane modifications occurring during the interaction: circular dichroism showed that “lipid-rafts” fostered the formation of β-structures and energy filtered-transmission electron microscopy that prefibrillar oligomers formed pores, similar to Aβ did. We speculate that electrostatic forces between the positive prefibrillar oligomers and the negative GM1 drive the initial binding while the hydrophobic profile and flexibility of prefibrillar oligomers, together with the membrane fluidity, are responsible for the subsequent pore formation leading to Ca(2+)-influx and neurotoxicity. MDPI 2019-12-29 /pmc/articles/PMC7022306/ /pubmed/31905804 http://dx.doi.org/10.3390/biom10010058 Text en © 2019 by the authors. 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 (http://creativecommons.org/licenses/by/4.0/).
spellingShingle Article
Diociaiuti, Marco
Bombelli, Cecilia
Zanetti-Polzi, Laura
Belfiore, Marcello
Fioravanti, Raoul
Macchia, Gianfranco
Giordani, Cristiano
The Interaction between Amyloid Prefibrillar Oligomers of Salmon Calcitonin and a Lipid-Raft Model: Molecular Mechanisms Leading to Membrane Damage, Ca(2+)-Influx and Neurotoxicity
title The Interaction between Amyloid Prefibrillar Oligomers of Salmon Calcitonin and a Lipid-Raft Model: Molecular Mechanisms Leading to Membrane Damage, Ca(2+)-Influx and Neurotoxicity
title_full The Interaction between Amyloid Prefibrillar Oligomers of Salmon Calcitonin and a Lipid-Raft Model: Molecular Mechanisms Leading to Membrane Damage, Ca(2+)-Influx and Neurotoxicity
title_fullStr The Interaction between Amyloid Prefibrillar Oligomers of Salmon Calcitonin and a Lipid-Raft Model: Molecular Mechanisms Leading to Membrane Damage, Ca(2+)-Influx and Neurotoxicity
title_full_unstemmed The Interaction between Amyloid Prefibrillar Oligomers of Salmon Calcitonin and a Lipid-Raft Model: Molecular Mechanisms Leading to Membrane Damage, Ca(2+)-Influx and Neurotoxicity
title_short The Interaction between Amyloid Prefibrillar Oligomers of Salmon Calcitonin and a Lipid-Raft Model: Molecular Mechanisms Leading to Membrane Damage, Ca(2+)-Influx and Neurotoxicity
title_sort interaction between amyloid prefibrillar oligomers of salmon calcitonin and a lipid-raft model: molecular mechanisms leading to membrane damage, ca(2+)-influx and neurotoxicity
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7022306/
https://www.ncbi.nlm.nih.gov/pubmed/31905804
http://dx.doi.org/10.3390/biom10010058
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