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Facile Fabrication of Natural Polyelectrolyte-Nanoclay Composites: Halloysite Nanotubes, Nucleotides and DNA Study

Complexation of biopolymers with halloysite nanotubes (HNTs) can greatly affect their applicability as materials building blocks. Here we have performed a systematic investigation of fabrication of halloysite nanotubes complexes with nucleotides and genomic DNA. The binding of DNA and various nucleo...

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Autores principales: Batasheva, Svetlana, Kryuchkova, Marina, Fakhrullin, Ramil, Cavallaro, Giuseppe, Lazzara, Giuseppe, Akhatova, Farida, Nigamatzyanova, Läysän, Evtugyn, Vladimir, Rozhina, Elvira, Fakhrullin, Rawil
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2020
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7436255/
https://www.ncbi.nlm.nih.gov/pubmed/32759785
http://dx.doi.org/10.3390/molecules25153557
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author Batasheva, Svetlana
Kryuchkova, Marina
Fakhrullin, Ramil
Cavallaro, Giuseppe
Lazzara, Giuseppe
Akhatova, Farida
Nigamatzyanova, Läysän
Evtugyn, Vladimir
Rozhina, Elvira
Fakhrullin, Rawil
author_facet Batasheva, Svetlana
Kryuchkova, Marina
Fakhrullin, Ramil
Cavallaro, Giuseppe
Lazzara, Giuseppe
Akhatova, Farida
Nigamatzyanova, Läysän
Evtugyn, Vladimir
Rozhina, Elvira
Fakhrullin, Rawil
author_sort Batasheva, Svetlana
collection PubMed
description Complexation of biopolymers with halloysite nanotubes (HNTs) can greatly affect their applicability as materials building blocks. Here we have performed a systematic investigation of fabrication of halloysite nanotubes complexes with nucleotides and genomic DNA. The binding of DNA and various nucleotide species (polyAU, UMP Na(2), ADP Na(3), dATP Na, AMP, uridine, ATP Mg) by halloysite nanotubes was tested using UV-spectroscopy. The study revealed that binding of different nucleotides to the nanoclay varied but was low both in the presence and absence of MgCl(2), while MgCl(2) facilitated significantly the binding of longer molecules such as DNA and polyAU. Modification of the nanotubes with DNA and nucleotide species was further confirmed by measurements of ζ-potentials. DNA-Mg-modified nanotubes were characterized using transmission electron (TEM), atomic force (AFM) and hyperspectral microscopies. Thermogravimetric analysis corroborated the sorption of DNA by the nanotubes, and the presence of DNA on the nanotube surface was indicated by changes in the surface adhesion force measured by AFM. DNA bound by halloysite in the presence of MgCl(2) could be partially released after addition of phosphate buffered saline. DNA binding and release from halloysite nanotubes was tested in the range of MgCl(2) concentrations (10–100 mM). Even low MgCl(2) concentrations significantly increased DNA sorption to halloysite, and the binding was leveled off at about 60 mM. DNA-Mg-modified halloysite nanotubes were used for obtaining a regular pattern on a glass surface by evaporation induced self-assembly process. The obtained spiral-like pattern was highly stable and resisted dissolution after water addition. Our results encompassing modification of non-toxic clay nanotubes with a natural polyanion DNA will find applications for construction of gene delivery vehicles and for halloysite self-assembly on various surfaces (such as skin or hair).
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spelling pubmed-74362552020-08-24 Facile Fabrication of Natural Polyelectrolyte-Nanoclay Composites: Halloysite Nanotubes, Nucleotides and DNA Study Batasheva, Svetlana Kryuchkova, Marina Fakhrullin, Ramil Cavallaro, Giuseppe Lazzara, Giuseppe Akhatova, Farida Nigamatzyanova, Läysän Evtugyn, Vladimir Rozhina, Elvira Fakhrullin, Rawil Molecules Article Complexation of biopolymers with halloysite nanotubes (HNTs) can greatly affect their applicability as materials building blocks. Here we have performed a systematic investigation of fabrication of halloysite nanotubes complexes with nucleotides and genomic DNA. The binding of DNA and various nucleotide species (polyAU, UMP Na(2), ADP Na(3), dATP Na, AMP, uridine, ATP Mg) by halloysite nanotubes was tested using UV-spectroscopy. The study revealed that binding of different nucleotides to the nanoclay varied but was low both in the presence and absence of MgCl(2), while MgCl(2) facilitated significantly the binding of longer molecules such as DNA and polyAU. Modification of the nanotubes with DNA and nucleotide species was further confirmed by measurements of ζ-potentials. DNA-Mg-modified nanotubes were characterized using transmission electron (TEM), atomic force (AFM) and hyperspectral microscopies. Thermogravimetric analysis corroborated the sorption of DNA by the nanotubes, and the presence of DNA on the nanotube surface was indicated by changes in the surface adhesion force measured by AFM. DNA bound by halloysite in the presence of MgCl(2) could be partially released after addition of phosphate buffered saline. DNA binding and release from halloysite nanotubes was tested in the range of MgCl(2) concentrations (10–100 mM). Even low MgCl(2) concentrations significantly increased DNA sorption to halloysite, and the binding was leveled off at about 60 mM. DNA-Mg-modified halloysite nanotubes were used for obtaining a regular pattern on a glass surface by evaporation induced self-assembly process. The obtained spiral-like pattern was highly stable and resisted dissolution after water addition. Our results encompassing modification of non-toxic clay nanotubes with a natural polyanion DNA will find applications for construction of gene delivery vehicles and for halloysite self-assembly on various surfaces (such as skin or hair). MDPI 2020-08-04 /pmc/articles/PMC7436255/ /pubmed/32759785 http://dx.doi.org/10.3390/molecules25153557 Text en © 2020 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
Batasheva, Svetlana
Kryuchkova, Marina
Fakhrullin, Ramil
Cavallaro, Giuseppe
Lazzara, Giuseppe
Akhatova, Farida
Nigamatzyanova, Läysän
Evtugyn, Vladimir
Rozhina, Elvira
Fakhrullin, Rawil
Facile Fabrication of Natural Polyelectrolyte-Nanoclay Composites: Halloysite Nanotubes, Nucleotides and DNA Study
title Facile Fabrication of Natural Polyelectrolyte-Nanoclay Composites: Halloysite Nanotubes, Nucleotides and DNA Study
title_full Facile Fabrication of Natural Polyelectrolyte-Nanoclay Composites: Halloysite Nanotubes, Nucleotides and DNA Study
title_fullStr Facile Fabrication of Natural Polyelectrolyte-Nanoclay Composites: Halloysite Nanotubes, Nucleotides and DNA Study
title_full_unstemmed Facile Fabrication of Natural Polyelectrolyte-Nanoclay Composites: Halloysite Nanotubes, Nucleotides and DNA Study
title_short Facile Fabrication of Natural Polyelectrolyte-Nanoclay Composites: Halloysite Nanotubes, Nucleotides and DNA Study
title_sort facile fabrication of natural polyelectrolyte-nanoclay composites: halloysite nanotubes, nucleotides and dna study
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7436255/
https://www.ncbi.nlm.nih.gov/pubmed/32759785
http://dx.doi.org/10.3390/molecules25153557
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