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Green Synthesis of Low-Glycemic Amylose–Lipid Nanocomposites by High-Speed Homogenization and Formulation into Hydrogel

In this research, we focused on the production of amylose–lipid nanocomposite material (ALN) through a green synthesis technique utilizing high-speed homogenization. Our aim was to investigate this novel material’s distinctive physicochemical features and its potential applications as a low-glycemic...

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Autores principales: Khan, Nasir Mehmood, Uddin, Misbah, Falade, Ebenezer Ola, Khan, Farman Ali, Wang, Jian, Shafique, Muhammad, Alnemari, Reem M., Abduljabbar, Maram H., Ahmad, Shujaat
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2023
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10608987/
https://www.ncbi.nlm.nih.gov/pubmed/37894632
http://dx.doi.org/10.3390/molecules28207154
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author Khan, Nasir Mehmood
Uddin, Misbah
Falade, Ebenezer Ola
Khan, Farman Ali
Wang, Jian
Shafique, Muhammad
Alnemari, Reem M.
Abduljabbar, Maram H.
Ahmad, Shujaat
author_facet Khan, Nasir Mehmood
Uddin, Misbah
Falade, Ebenezer Ola
Khan, Farman Ali
Wang, Jian
Shafique, Muhammad
Alnemari, Reem M.
Abduljabbar, Maram H.
Ahmad, Shujaat
author_sort Khan, Nasir Mehmood
collection PubMed
description In this research, we focused on the production of amylose–lipid nanocomposite material (ALN) through a green synthesis technique utilizing high-speed homogenization. Our aim was to investigate this novel material’s distinctive physicochemical features and its potential applications as a low-glycemic gelling and functional food ingredient. The study begins with the formulation of the amylose–lipid nanomaterial from starch and fatty acid complexes, including stearic, palmitic, and lauric acids. Structural analysis reveals the presence of ester carbonyl functionalities, solid matrix structures, partial crystallinities, and remarkable thermal stability within the ALN. Notably, the ALN exhibits a significantly low glycemic index (GI, 40%) and elevated resistance starch (RS) values. The research extends to the formulation of ALN into nanocomposite hydrogels, enabling the evaluation of its anthocyanin absorption capacity. This analysis provides valuable insights into the rheological properties and viscoelastic behavior of the resulting hydrogels. Furthermore, the study investigates anthocyanin encapsulation and retention by ALN-based hydrogels, with a particular focus on the influence of pH and physical cross-link networks on the uptake capacity presenting stearic-acid (SA) hydrogel with the best absorption capacity. In conclusion, the green-synthesized (ALN) shows remarkable functional and structural properties. The produced ALN-based hydrogels are promising materials for a variety of applications, such as medicine administration, food packaging, and other industrial purposes.
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spelling pubmed-106089872023-10-28 Green Synthesis of Low-Glycemic Amylose–Lipid Nanocomposites by High-Speed Homogenization and Formulation into Hydrogel Khan, Nasir Mehmood Uddin, Misbah Falade, Ebenezer Ola Khan, Farman Ali Wang, Jian Shafique, Muhammad Alnemari, Reem M. Abduljabbar, Maram H. Ahmad, Shujaat Molecules Article In this research, we focused on the production of amylose–lipid nanocomposite material (ALN) through a green synthesis technique utilizing high-speed homogenization. Our aim was to investigate this novel material’s distinctive physicochemical features and its potential applications as a low-glycemic gelling and functional food ingredient. The study begins with the formulation of the amylose–lipid nanomaterial from starch and fatty acid complexes, including stearic, palmitic, and lauric acids. Structural analysis reveals the presence of ester carbonyl functionalities, solid matrix structures, partial crystallinities, and remarkable thermal stability within the ALN. Notably, the ALN exhibits a significantly low glycemic index (GI, 40%) and elevated resistance starch (RS) values. The research extends to the formulation of ALN into nanocomposite hydrogels, enabling the evaluation of its anthocyanin absorption capacity. This analysis provides valuable insights into the rheological properties and viscoelastic behavior of the resulting hydrogels. Furthermore, the study investigates anthocyanin encapsulation and retention by ALN-based hydrogels, with a particular focus on the influence of pH and physical cross-link networks on the uptake capacity presenting stearic-acid (SA) hydrogel with the best absorption capacity. In conclusion, the green-synthesized (ALN) shows remarkable functional and structural properties. The produced ALN-based hydrogels are promising materials for a variety of applications, such as medicine administration, food packaging, and other industrial purposes. MDPI 2023-10-18 /pmc/articles/PMC10608987/ /pubmed/37894632 http://dx.doi.org/10.3390/molecules28207154 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
Khan, Nasir Mehmood
Uddin, Misbah
Falade, Ebenezer Ola
Khan, Farman Ali
Wang, Jian
Shafique, Muhammad
Alnemari, Reem M.
Abduljabbar, Maram H.
Ahmad, Shujaat
Green Synthesis of Low-Glycemic Amylose–Lipid Nanocomposites by High-Speed Homogenization and Formulation into Hydrogel
title Green Synthesis of Low-Glycemic Amylose–Lipid Nanocomposites by High-Speed Homogenization and Formulation into Hydrogel
title_full Green Synthesis of Low-Glycemic Amylose–Lipid Nanocomposites by High-Speed Homogenization and Formulation into Hydrogel
title_fullStr Green Synthesis of Low-Glycemic Amylose–Lipid Nanocomposites by High-Speed Homogenization and Formulation into Hydrogel
title_full_unstemmed Green Synthesis of Low-Glycemic Amylose–Lipid Nanocomposites by High-Speed Homogenization and Formulation into Hydrogel
title_short Green Synthesis of Low-Glycemic Amylose–Lipid Nanocomposites by High-Speed Homogenization and Formulation into Hydrogel
title_sort green synthesis of low-glycemic amylose–lipid nanocomposites by high-speed homogenization and formulation into hydrogel
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10608987/
https://www.ncbi.nlm.nih.gov/pubmed/37894632
http://dx.doi.org/10.3390/molecules28207154
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