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Spectroscopic and Microestructural Evidence for T-2 Toxin Adsorption Mechanism by Natural Bentonite Modified with Organic Cations

Aluminosilicates are adsorbents able to bind mycotoxins, and their chemical modification increases their affinity to adsorb low-polarity mycotoxins. To further investigate if the inclusion of salts in bentonite modifies its adsorptive capacity, we studied T-2 toxin adsorption in natural bentonite (N...

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Autores principales: García-García, Fernando Abiram, Cristiani-Urbina, Eliseo, Morales-Barrera, Liliana, Rodríguez-Peña, Olga Nelly, Hernández-Portilla, Luis Barbo, Flores-Ortíz, Cesar Mateo
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2023
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10467078/
https://www.ncbi.nlm.nih.gov/pubmed/37505739
http://dx.doi.org/10.3390/toxins15070470
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author García-García, Fernando Abiram
Cristiani-Urbina, Eliseo
Morales-Barrera, Liliana
Rodríguez-Peña, Olga Nelly
Hernández-Portilla, Luis Barbo
Flores-Ortíz, Cesar Mateo
author_facet García-García, Fernando Abiram
Cristiani-Urbina, Eliseo
Morales-Barrera, Liliana
Rodríguez-Peña, Olga Nelly
Hernández-Portilla, Luis Barbo
Flores-Ortíz, Cesar Mateo
author_sort García-García, Fernando Abiram
collection PubMed
description Aluminosilicates are adsorbents able to bind mycotoxins, and their chemical modification increases their affinity to adsorb low-polarity mycotoxins. To further investigate if the inclusion of salts in bentonite modifies its adsorptive capacity, we studied T-2 toxin adsorption in natural bentonite (NB) and when modified with quaternary ammonium salts differing in polarity and chain length: myristyl trimethyl ammonium bromide (B14), cetyl trimethyl ammonium bromide (B16) and benzyl dimethyl stearyl ammonium chloride (B18). The results showed that quaternary salts made bentonite: displace monovalent (Na(+1), K(+1)) and divalent (Mg(+2), Ca(+2)) ions; reduce its porosity; change its compaction and structure, becoming more crystalline and ordered; and modify the charge balance of sheets. T-2 adsorption was higher in all modified materials compared to NB (p ≤ 0.0001), and B16 (42.96%) better adsorbed T-2 compared to B18 (35.80%; p = 0.0066). B14 (38.40%) showed no differences compared to B16 and B18 (p > 0.05). We described the T-2 adsorption mechanism in B16, in which hydrogen bond interactions, Van der Waals forces and the replacement of the salt by T-2 were found. Our results showed that interaction types due to the inclusion in B16 might be more important than the hydrocarbon chain length to improve the adsorptive capacity of bentonite.
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spelling pubmed-104670782023-08-31 Spectroscopic and Microestructural Evidence for T-2 Toxin Adsorption Mechanism by Natural Bentonite Modified with Organic Cations García-García, Fernando Abiram Cristiani-Urbina, Eliseo Morales-Barrera, Liliana Rodríguez-Peña, Olga Nelly Hernández-Portilla, Luis Barbo Flores-Ortíz, Cesar Mateo Toxins (Basel) Article Aluminosilicates are adsorbents able to bind mycotoxins, and their chemical modification increases their affinity to adsorb low-polarity mycotoxins. To further investigate if the inclusion of salts in bentonite modifies its adsorptive capacity, we studied T-2 toxin adsorption in natural bentonite (NB) and when modified with quaternary ammonium salts differing in polarity and chain length: myristyl trimethyl ammonium bromide (B14), cetyl trimethyl ammonium bromide (B16) and benzyl dimethyl stearyl ammonium chloride (B18). The results showed that quaternary salts made bentonite: displace monovalent (Na(+1), K(+1)) and divalent (Mg(+2), Ca(+2)) ions; reduce its porosity; change its compaction and structure, becoming more crystalline and ordered; and modify the charge balance of sheets. T-2 adsorption was higher in all modified materials compared to NB (p ≤ 0.0001), and B16 (42.96%) better adsorbed T-2 compared to B18 (35.80%; p = 0.0066). B14 (38.40%) showed no differences compared to B16 and B18 (p > 0.05). We described the T-2 adsorption mechanism in B16, in which hydrogen bond interactions, Van der Waals forces and the replacement of the salt by T-2 were found. Our results showed that interaction types due to the inclusion in B16 might be more important than the hydrocarbon chain length to improve the adsorptive capacity of bentonite. MDPI 2023-07-21 /pmc/articles/PMC10467078/ /pubmed/37505739 http://dx.doi.org/10.3390/toxins15070470 Text en © 2023 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
García-García, Fernando Abiram
Cristiani-Urbina, Eliseo
Morales-Barrera, Liliana
Rodríguez-Peña, Olga Nelly
Hernández-Portilla, Luis Barbo
Flores-Ortíz, Cesar Mateo
Spectroscopic and Microestructural Evidence for T-2 Toxin Adsorption Mechanism by Natural Bentonite Modified with Organic Cations
title Spectroscopic and Microestructural Evidence for T-2 Toxin Adsorption Mechanism by Natural Bentonite Modified with Organic Cations
title_full Spectroscopic and Microestructural Evidence for T-2 Toxin Adsorption Mechanism by Natural Bentonite Modified with Organic Cations
title_fullStr Spectroscopic and Microestructural Evidence for T-2 Toxin Adsorption Mechanism by Natural Bentonite Modified with Organic Cations
title_full_unstemmed Spectroscopic and Microestructural Evidence for T-2 Toxin Adsorption Mechanism by Natural Bentonite Modified with Organic Cations
title_short Spectroscopic and Microestructural Evidence for T-2 Toxin Adsorption Mechanism by Natural Bentonite Modified with Organic Cations
title_sort spectroscopic and microestructural evidence for t-2 toxin adsorption mechanism by natural bentonite modified with organic cations
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10467078/
https://www.ncbi.nlm.nih.gov/pubmed/37505739
http://dx.doi.org/10.3390/toxins15070470
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