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Alteration of Biomolecular Conformation by Aluminum-Implications for Protein Misfolding Disease

The natural element aluminum possesses a number of unique biochemical and biophysical properties that make this highly neurotoxic species deleterious towards the structural integrity, conformation, reactivity and stability of several important biomolecules. These include aluminum’s (i) small ionic s...

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Autores principales: Zhao, Yuhai, Pogue, Aileen I., Alexandrov, Peter N., Butler, Leslie G., Li, Wenhong, Jaber, Vivian R., Lukiw, Walter J.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2022
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9412470/
https://www.ncbi.nlm.nih.gov/pubmed/36014365
http://dx.doi.org/10.3390/molecules27165123
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author Zhao, Yuhai
Pogue, Aileen I.
Alexandrov, Peter N.
Butler, Leslie G.
Li, Wenhong
Jaber, Vivian R.
Lukiw, Walter J.
author_facet Zhao, Yuhai
Pogue, Aileen I.
Alexandrov, Peter N.
Butler, Leslie G.
Li, Wenhong
Jaber, Vivian R.
Lukiw, Walter J.
author_sort Zhao, Yuhai
collection PubMed
description The natural element aluminum possesses a number of unique biochemical and biophysical properties that make this highly neurotoxic species deleterious towards the structural integrity, conformation, reactivity and stability of several important biomolecules. These include aluminum’s (i) small ionic size and highly electrophilic nature, having the highest charge density of any metallic cation with a Z(2)/r of 18 (ionic charge +3, radius 0.5 nm); (ii) inclination to form extremely stable electrostatic bonds with a tendency towards covalency; (iii) ability to interact irreversibly and/or significantly slow down the exchange-rates of complex aluminum–biomolecular interactions; (iv) extremely dense electropositive charge with one of the highest known affinities for oxygen-donor ligands such as phosphate; (v) presence as the most abundant metal in the Earth’s biosphere and general bioavailability in drinking water, food, medicines, consumer products, groundwater and atmospheric dust; and (vi) abundance as one of the most commonly encountered intracellular and extracellular metallotoxins. Despite aluminum’s prevalence and abundance in the biosphere it is remarkably well-tolerated by all plant and animal species; no organism is known to utilize aluminum metabolically; however, a biological role for aluminum has been assigned in the compaction of chromatin. In this Communication, several examples are given where aluminum has been shown to irreversibly perturb and/or stabilize the natural conformation of biomolecules known to be important in energy metabolism, gene expression, cellular homeostasis and pathological signaling in neurological disease. Several neurodegenerative disorders that include the tauopathies, Alzheimer’s disease and multiple prion disorders involve the altered conformation of naturally occurring cellular proteins. Based on the data currently available we speculate that one way aluminum contributes to neurological disease is to induce the misfolding of naturally occurring proteins into altered pathological configurations that contribute to the neurodegenerative disease process.
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spelling pubmed-94124702022-08-27 Alteration of Biomolecular Conformation by Aluminum-Implications for Protein Misfolding Disease Zhao, Yuhai Pogue, Aileen I. Alexandrov, Peter N. Butler, Leslie G. Li, Wenhong Jaber, Vivian R. Lukiw, Walter J. Molecules Communication The natural element aluminum possesses a number of unique biochemical and biophysical properties that make this highly neurotoxic species deleterious towards the structural integrity, conformation, reactivity and stability of several important biomolecules. These include aluminum’s (i) small ionic size and highly electrophilic nature, having the highest charge density of any metallic cation with a Z(2)/r of 18 (ionic charge +3, radius 0.5 nm); (ii) inclination to form extremely stable electrostatic bonds with a tendency towards covalency; (iii) ability to interact irreversibly and/or significantly slow down the exchange-rates of complex aluminum–biomolecular interactions; (iv) extremely dense electropositive charge with one of the highest known affinities for oxygen-donor ligands such as phosphate; (v) presence as the most abundant metal in the Earth’s biosphere and general bioavailability in drinking water, food, medicines, consumer products, groundwater and atmospheric dust; and (vi) abundance as one of the most commonly encountered intracellular and extracellular metallotoxins. Despite aluminum’s prevalence and abundance in the biosphere it is remarkably well-tolerated by all plant and animal species; no organism is known to utilize aluminum metabolically; however, a biological role for aluminum has been assigned in the compaction of chromatin. In this Communication, several examples are given where aluminum has been shown to irreversibly perturb and/or stabilize the natural conformation of biomolecules known to be important in energy metabolism, gene expression, cellular homeostasis and pathological signaling in neurological disease. Several neurodegenerative disorders that include the tauopathies, Alzheimer’s disease and multiple prion disorders involve the altered conformation of naturally occurring cellular proteins. Based on the data currently available we speculate that one way aluminum contributes to neurological disease is to induce the misfolding of naturally occurring proteins into altered pathological configurations that contribute to the neurodegenerative disease process. MDPI 2022-08-11 /pmc/articles/PMC9412470/ /pubmed/36014365 http://dx.doi.org/10.3390/molecules27165123 Text en © 2022 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 Communication
Zhao, Yuhai
Pogue, Aileen I.
Alexandrov, Peter N.
Butler, Leslie G.
Li, Wenhong
Jaber, Vivian R.
Lukiw, Walter J.
Alteration of Biomolecular Conformation by Aluminum-Implications for Protein Misfolding Disease
title Alteration of Biomolecular Conformation by Aluminum-Implications for Protein Misfolding Disease
title_full Alteration of Biomolecular Conformation by Aluminum-Implications for Protein Misfolding Disease
title_fullStr Alteration of Biomolecular Conformation by Aluminum-Implications for Protein Misfolding Disease
title_full_unstemmed Alteration of Biomolecular Conformation by Aluminum-Implications for Protein Misfolding Disease
title_short Alteration of Biomolecular Conformation by Aluminum-Implications for Protein Misfolding Disease
title_sort alteration of biomolecular conformation by aluminum-implications for protein misfolding disease
topic Communication
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9412470/
https://www.ncbi.nlm.nih.gov/pubmed/36014365
http://dx.doi.org/10.3390/molecules27165123
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