Cargando…

Silica-Lipid Hybrid Microparticles as Efficient Vehicles 
for Enhanced Stability and Bioaccessibility of Curcumin

Curcumin is an active ingredient with multiple functions, but its application is often restricted due to its poor water solubility, weak stability, and consequently low bioaccessibility. Based on this, the aim of this work is to develop a new vehicle to overcome these restrictions. Here we developed...

Descripción completa

Detalles Bibliográficos
Autores principales: Ma, Yudi, Wang, Qiang, Wang, Dantong, Huang, Juan, Sun, Rui, Mao, Xinyu, Tian, Yuan, Xia, Qiang
Formato: Online Artículo Texto
Lenguaje:English
Publicado: University of Zagreb Faculty of Food Technology and Biotechnology 2019
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6902299/
https://www.ncbi.nlm.nih.gov/pubmed/31866745
http://dx.doi.org/10.17113/ftb.57.03.19.6035
_version_ 1783477637671288832
author Ma, Yudi
Wang, Qiang
Wang, Dantong
Huang, Juan
Sun, Rui
Mao, Xinyu
Tian, Yuan
Xia, Qiang
author_facet Ma, Yudi
Wang, Qiang
Wang, Dantong
Huang, Juan
Sun, Rui
Mao, Xinyu
Tian, Yuan
Xia, Qiang
author_sort Ma, Yudi
collection PubMed
description Curcumin is an active ingredient with multiple functions, but its application is often restricted due to its poor water solubility, weak stability, and consequently low bioaccessibility. Based on this, the aim of this work is to develop a new vehicle to overcome these restrictions. Here we developed a curcumin-loaded nanoemulsion and then curcumin-loaded silica-lipid hybrid microparticles through emulsification and vacuum drying, respectively. The loading of curcumin in the nanoemulsion and microparticles was (0.30±0.02) and (0.67±0.02) %, respectively. FTIR and XRD analyses of microparticles revealed that curcumin was encapsulated in porous, amorphous silica. In vitro antioxidant activities showed that the encapsulation would not affect the antioxidant activity of curcumin. In vitro simulated digestion indicated that nanoemulsion and microparticles had higher curcumin bioaccessibility than the control group. The storage stability of microparticles remained the same during 6 weeks in the dark at 4, 25 and 40 °C. Moreover, the microparticles had a better chemical stability than nanoemulsion under the light. The cell viability was over 80% when the concentration of nanocarriers was less than 45 μg/mL. Hence, the microparticles could be a promising means to load curcumin and improve its solubility, light stability and bioaccessibility.
format Online
Article
Text
id pubmed-6902299
institution National Center for Biotechnology Information
language English
publishDate 2019
publisher University of Zagreb Faculty of Food Technology and Biotechnology
record_format MEDLINE/PubMed
spelling pubmed-69022992019-12-20 Silica-Lipid Hybrid Microparticles as Efficient Vehicles 
for Enhanced Stability and Bioaccessibility of Curcumin Ma, Yudi Wang, Qiang Wang, Dantong Huang, Juan Sun, Rui Mao, Xinyu Tian, Yuan Xia, Qiang Food Technol Biotechnol Original Scientific Papers Curcumin is an active ingredient with multiple functions, but its application is often restricted due to its poor water solubility, weak stability, and consequently low bioaccessibility. Based on this, the aim of this work is to develop a new vehicle to overcome these restrictions. Here we developed a curcumin-loaded nanoemulsion and then curcumin-loaded silica-lipid hybrid microparticles through emulsification and vacuum drying, respectively. The loading of curcumin in the nanoemulsion and microparticles was (0.30±0.02) and (0.67±0.02) %, respectively. FTIR and XRD analyses of microparticles revealed that curcumin was encapsulated in porous, amorphous silica. In vitro antioxidant activities showed that the encapsulation would not affect the antioxidant activity of curcumin. In vitro simulated digestion indicated that nanoemulsion and microparticles had higher curcumin bioaccessibility than the control group. The storage stability of microparticles remained the same during 6 weeks in the dark at 4, 25 and 40 °C. Moreover, the microparticles had a better chemical stability than nanoemulsion under the light. The cell viability was over 80% when the concentration of nanocarriers was less than 45 μg/mL. Hence, the microparticles could be a promising means to load curcumin and improve its solubility, light stability and bioaccessibility. University of Zagreb Faculty of Food Technology and Biotechnology 2019-09 /pmc/articles/PMC6902299/ /pubmed/31866745 http://dx.doi.org/10.17113/ftb.57.03.19.6035 Text en http://creativecommons.org/licenses/by/4.0/ This is an open-access article distributed under the terms of the Creative Commons Attribution (CC BY) 4.0 License, which permits unrestricted use, distribution, and reproduction in any medium, provided the original work is properly cited.
spellingShingle Original Scientific Papers
Ma, Yudi
Wang, Qiang
Wang, Dantong
Huang, Juan
Sun, Rui
Mao, Xinyu
Tian, Yuan
Xia, Qiang
Silica-Lipid Hybrid Microparticles as Efficient Vehicles 
for Enhanced Stability and Bioaccessibility of Curcumin
title Silica-Lipid Hybrid Microparticles as Efficient Vehicles 
for Enhanced Stability and Bioaccessibility of Curcumin
title_full Silica-Lipid Hybrid Microparticles as Efficient Vehicles 
for Enhanced Stability and Bioaccessibility of Curcumin
title_fullStr Silica-Lipid Hybrid Microparticles as Efficient Vehicles 
for Enhanced Stability and Bioaccessibility of Curcumin
title_full_unstemmed Silica-Lipid Hybrid Microparticles as Efficient Vehicles 
for Enhanced Stability and Bioaccessibility of Curcumin
title_short Silica-Lipid Hybrid Microparticles as Efficient Vehicles 
for Enhanced Stability and Bioaccessibility of Curcumin
title_sort silica-lipid hybrid microparticles as efficient vehicles 
for enhanced stability and bioaccessibility of curcumin
topic Original Scientific Papers
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6902299/
https://www.ncbi.nlm.nih.gov/pubmed/31866745
http://dx.doi.org/10.17113/ftb.57.03.19.6035
work_keys_str_mv AT mayudi silicalipidhybridmicroparticlesasefficientvehiclesforenhancedstabilityandbioaccessibilityofcurcumin
AT wangqiang silicalipidhybridmicroparticlesasefficientvehiclesforenhancedstabilityandbioaccessibilityofcurcumin
AT wangdantong silicalipidhybridmicroparticlesasefficientvehiclesforenhancedstabilityandbioaccessibilityofcurcumin
AT huangjuan silicalipidhybridmicroparticlesasefficientvehiclesforenhancedstabilityandbioaccessibilityofcurcumin
AT sunrui silicalipidhybridmicroparticlesasefficientvehiclesforenhancedstabilityandbioaccessibilityofcurcumin
AT maoxinyu silicalipidhybridmicroparticlesasefficientvehiclesforenhancedstabilityandbioaccessibilityofcurcumin
AT tianyuan silicalipidhybridmicroparticlesasefficientvehiclesforenhancedstabilityandbioaccessibilityofcurcumin
AT xiaqiang silicalipidhybridmicroparticlesasefficientvehiclesforenhancedstabilityandbioaccessibilityofcurcumin