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Role of Electrostatic Interactions on Supramolecular Organization in Calf-Thymus DNA Solutions under Flow

Previous investigations were conducted on two concentrations of DNA solution: 4 mg/mL, for which it has been shown that no supramolecular organization is induced under flow at low shear rates; and 10 mg/mL, in which a liquid crystalline-type texture is formed under flow at low shear rates, attesting...

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Autores principales: Bravo-Anaya, L. Mónica, Roux, Denis C. D., Soltero Martínez, J. Félix Armando, Carvajal Ramos, Francisco, Pignon, Frédéric, Mannix, Oonagh, Rinaudo, Marguerite
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2018
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6290628/
https://www.ncbi.nlm.nih.gov/pubmed/30961129
http://dx.doi.org/10.3390/polym10111204
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author Bravo-Anaya, L. Mónica
Roux, Denis C. D.
Soltero Martínez, J. Félix Armando
Carvajal Ramos, Francisco
Pignon, Frédéric
Mannix, Oonagh
Rinaudo, Marguerite
author_facet Bravo-Anaya, L. Mónica
Roux, Denis C. D.
Soltero Martínez, J. Félix Armando
Carvajal Ramos, Francisco
Pignon, Frédéric
Mannix, Oonagh
Rinaudo, Marguerite
author_sort Bravo-Anaya, L. Mónica
collection PubMed
description Previous investigations were conducted on two concentrations of DNA solution: 4 mg/mL, for which it has been shown that no supramolecular organization is induced under flow at low shear rates; and 10 mg/mL, in which a liquid crystalline-type texture is formed under flow at low shear rates, attesting to an orientation of pre-organized chains. Rheological experiments are discussed and their results supported by small-angle X-ray scattering (SAXS) and flow birefringence visualization experiments. Scattering from polyelectrolytes has a characteristic signal, which is here observed in SAXS, showing a strong correlation peak between charged chains in water, for both concentrations. This peak is weaker in the presence of 0.01 M NaCl and suppressed in salt excess at 0.1 M NaCl. No plateau in the σ([Formula: see text]) plot was observed in analysis of rheological experiments on low DNA concentration (4 mg/mL). As typically observed in polyelectrolyte systems both the dynamic moduli and shear viscosity were higher in water as electrostatic forces dominate, than in the presence of salt, especially at low shear rates. The rheological results for concentrations of 0.01 M NaCl are lower than in water as expected due to partial screening of electrostatic repulsions. Rheological data for concentrations of 0.1 M NaCl are unexpected. Electrostatic forces are partially screened in the low salt concentration, leading to a drop in the rheological values. For high salt concentration there are no longer interchain repulsions and so steric interactions dominate within the entangled network leading to the subsequent increase in rheological parameters. Regardless of the solvent, at high shear rates the solutions are birefringent. In the 10 mg/mL case, under flow, textures are formed at relatively low shear rate before all the chains align going to a pseudonematic liquid crystalline phase at high shear rate. The electrostatic repulsion between semi-rigid chains induces a correlation between the chains leading to an electrostatic pseudo-gel in water and loosely in 0.01 M NaCl at low stress applied. To the best of our knowledge, this is the first time that such behavior is observed. In 0.1 M NaCl, DNA behavior resembles the corresponding neutral polymer as expected for polyelectrolyte in salt excess, exhibiting a yield stress. When texture appears in water and in 0.01 M NaCl, a critical transition is observed in rheological curves, where the viscosity decreases sharply at a given critical shear stress corresponding to a plateau in the σ([Formula: see text]) plot also observed in creep transient experiment.
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spelling pubmed-62906282019-04-02 Role of Electrostatic Interactions on Supramolecular Organization in Calf-Thymus DNA Solutions under Flow Bravo-Anaya, L. Mónica Roux, Denis C. D. Soltero Martínez, J. Félix Armando Carvajal Ramos, Francisco Pignon, Frédéric Mannix, Oonagh Rinaudo, Marguerite Polymers (Basel) Article Previous investigations were conducted on two concentrations of DNA solution: 4 mg/mL, for which it has been shown that no supramolecular organization is induced under flow at low shear rates; and 10 mg/mL, in which a liquid crystalline-type texture is formed under flow at low shear rates, attesting to an orientation of pre-organized chains. Rheological experiments are discussed and their results supported by small-angle X-ray scattering (SAXS) and flow birefringence visualization experiments. Scattering from polyelectrolytes has a characteristic signal, which is here observed in SAXS, showing a strong correlation peak between charged chains in water, for both concentrations. This peak is weaker in the presence of 0.01 M NaCl and suppressed in salt excess at 0.1 M NaCl. No plateau in the σ([Formula: see text]) plot was observed in analysis of rheological experiments on low DNA concentration (4 mg/mL). As typically observed in polyelectrolyte systems both the dynamic moduli and shear viscosity were higher in water as electrostatic forces dominate, than in the presence of salt, especially at low shear rates. The rheological results for concentrations of 0.01 M NaCl are lower than in water as expected due to partial screening of electrostatic repulsions. Rheological data for concentrations of 0.1 M NaCl are unexpected. Electrostatic forces are partially screened in the low salt concentration, leading to a drop in the rheological values. For high salt concentration there are no longer interchain repulsions and so steric interactions dominate within the entangled network leading to the subsequent increase in rheological parameters. Regardless of the solvent, at high shear rates the solutions are birefringent. In the 10 mg/mL case, under flow, textures are formed at relatively low shear rate before all the chains align going to a pseudonematic liquid crystalline phase at high shear rate. The electrostatic repulsion between semi-rigid chains induces a correlation between the chains leading to an electrostatic pseudo-gel in water and loosely in 0.01 M NaCl at low stress applied. To the best of our knowledge, this is the first time that such behavior is observed. In 0.1 M NaCl, DNA behavior resembles the corresponding neutral polymer as expected for polyelectrolyte in salt excess, exhibiting a yield stress. When texture appears in water and in 0.01 M NaCl, a critical transition is observed in rheological curves, where the viscosity decreases sharply at a given critical shear stress corresponding to a plateau in the σ([Formula: see text]) plot also observed in creep transient experiment. MDPI 2018-10-28 /pmc/articles/PMC6290628/ /pubmed/30961129 http://dx.doi.org/10.3390/polym10111204 Text en © 2018 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
Bravo-Anaya, L. Mónica
Roux, Denis C. D.
Soltero Martínez, J. Félix Armando
Carvajal Ramos, Francisco
Pignon, Frédéric
Mannix, Oonagh
Rinaudo, Marguerite
Role of Electrostatic Interactions on Supramolecular Organization in Calf-Thymus DNA Solutions under Flow
title Role of Electrostatic Interactions on Supramolecular Organization in Calf-Thymus DNA Solutions under Flow
title_full Role of Electrostatic Interactions on Supramolecular Organization in Calf-Thymus DNA Solutions under Flow
title_fullStr Role of Electrostatic Interactions on Supramolecular Organization in Calf-Thymus DNA Solutions under Flow
title_full_unstemmed Role of Electrostatic Interactions on Supramolecular Organization in Calf-Thymus DNA Solutions under Flow
title_short Role of Electrostatic Interactions on Supramolecular Organization in Calf-Thymus DNA Solutions under Flow
title_sort role of electrostatic interactions on supramolecular organization in calf-thymus dna solutions under flow
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6290628/
https://www.ncbi.nlm.nih.gov/pubmed/30961129
http://dx.doi.org/10.3390/polym10111204
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