Organically surface engineered mesoporous silica nanoparticles control the release of quercetin by pH stimuli

Controlling the premature release of hydrophobic drugs like quercetin over physiological conditions remains a challenge motivating the development of smart and responsive drug carriers in recent years. This present work reported a surface modification of mesoporous silica nanoparticles (MSN) by a fu...

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Main Authors: Saputra, Ozi Adi, Lestari, Windy Ayu, Kurniansyah, Viardi, Lestari, Witri Wahyu, Sugiura, Takashi, Mukti, Rino R., Martien, Ronny, Wibowo, Fajar Rakhman
Format: Article
Language:English
Published: Nature Research 2022
Subjects:
Online Access:https://repository.ugm.ac.id/283323/1/60_Organically%20surface%20engineered%20mesoporous%20silica%20nanoparticles%20control%20the%20release%20of%20quercetin%20by%20pH%20stimuli.pdf
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author Saputra, Ozi Adi
Lestari, Windy Ayu
Kurniansyah, Viardi
Lestari, Witri Wahyu
Sugiura, Takashi
Mukti, Rino R.
Martien, Ronny
Wibowo, Fajar Rakhman
author_facet Saputra, Ozi Adi
Lestari, Windy Ayu
Kurniansyah, Viardi
Lestari, Witri Wahyu
Sugiura, Takashi
Mukti, Rino R.
Martien, Ronny
Wibowo, Fajar Rakhman
author_sort Saputra, Ozi Adi
collection UGM
description Controlling the premature release of hydrophobic drugs like quercetin over physiological conditions remains a challenge motivating the development of smart and responsive drug carriers in recent years. This present work reported a surface modification of mesoporous silica nanoparticles (MSN) by a functional compound having both amines (as a positively charged group) and carboxylic (negatively charged group), namely 4-((2-aminoethyl)amino)-4-oxobut-2-enoic acid (AmEA) prepared via simple mechanochemistry approach. The impact of MSN surface modification on physical, textural, and morphological features was evaluated by TGA, N2 adsorption–desorption, PSA-zeta, SEM, and TEM. The BET surface area of AmEA-modified MSN (MSN-AmEA) was found to be 858.41 m2 g−1 with a pore size of 2.69 nm which could accommodate a high concentration of quercetin 118 higher than MSN. In addition, the colloidal stability of MSN-AmEA was greatly improved as indicated by high zeta potential especially at pH 4 compared to MSN. In contrast to MSN, MSN-AmEA has better in controlling quercetin release triggered by pH, thanks to the presence of the functional groups that have a pose-sensitive interaction hence it may fully control the quercetin release, as elaborated by the DFT study. Therefore, the controlled release of quercetin over MSN-AmEA verified its capability of acting as a smart drug delivery system. © 2022, The Author(s).
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spelling oai:generic.eprints.org:2833232023-11-20T06:09:59Z https://repository.ugm.ac.id/283323/ Organically surface engineered mesoporous silica nanoparticles control the release of quercetin by pH stimuli Saputra, Ozi Adi Lestari, Windy Ayu Kurniansyah, Viardi Lestari, Witri Wahyu Sugiura, Takashi Mukti, Rino R. Martien, Ronny Wibowo, Fajar Rakhman Analytical Chemistry Controlling the premature release of hydrophobic drugs like quercetin over physiological conditions remains a challenge motivating the development of smart and responsive drug carriers in recent years. This present work reported a surface modification of mesoporous silica nanoparticles (MSN) by a functional compound having both amines (as a positively charged group) and carboxylic (negatively charged group), namely 4-((2-aminoethyl)amino)-4-oxobut-2-enoic acid (AmEA) prepared via simple mechanochemistry approach. The impact of MSN surface modification on physical, textural, and morphological features was evaluated by TGA, N2 adsorption–desorption, PSA-zeta, SEM, and TEM. The BET surface area of AmEA-modified MSN (MSN-AmEA) was found to be 858.41 m2 g−1 with a pore size of 2.69 nm which could accommodate a high concentration of quercetin 118 higher than MSN. In addition, the colloidal stability of MSN-AmEA was greatly improved as indicated by high zeta potential especially at pH 4 compared to MSN. In contrast to MSN, MSN-AmEA has better in controlling quercetin release triggered by pH, thanks to the presence of the functional groups that have a pose-sensitive interaction hence it may fully control the quercetin release, as elaborated by the DFT study. Therefore, the controlled release of quercetin over MSN-AmEA verified its capability of acting as a smart drug delivery system. © 2022, The Author(s). Nature Research 2022 Article PeerReviewed application/pdf en https://repository.ugm.ac.id/283323/1/60_Organically%20surface%20engineered%20mesoporous%20silica%20nanoparticles%20control%20the%20release%20of%20quercetin%20by%20pH%20stimuli.pdf Saputra, Ozi Adi and Lestari, Windy Ayu and Kurniansyah, Viardi and Lestari, Witri Wahyu and Sugiura, Takashi and Mukti, Rino R. and Martien, Ronny and Wibowo, Fajar Rakhman (2022) Organically surface engineered mesoporous silica nanoparticles control the release of quercetin by pH stimuli. Scientific Reports, 12 (1). ISSN 20452322 https://www.scopus.com/inward/record.uri?eid=2-s2.0-85143055092&doi=10.1038%2fs41598-022-25095-4&partnerID=40&md5=48978461e4d9391af238b639f79e4eac
spellingShingle Analytical Chemistry
Saputra, Ozi Adi
Lestari, Windy Ayu
Kurniansyah, Viardi
Lestari, Witri Wahyu
Sugiura, Takashi
Mukti, Rino R.
Martien, Ronny
Wibowo, Fajar Rakhman
Organically surface engineered mesoporous silica nanoparticles control the release of quercetin by pH stimuli
title Organically surface engineered mesoporous silica nanoparticles control the release of quercetin by pH stimuli
title_full Organically surface engineered mesoporous silica nanoparticles control the release of quercetin by pH stimuli
title_fullStr Organically surface engineered mesoporous silica nanoparticles control the release of quercetin by pH stimuli
title_full_unstemmed Organically surface engineered mesoporous silica nanoparticles control the release of quercetin by pH stimuli
title_short Organically surface engineered mesoporous silica nanoparticles control the release of quercetin by pH stimuli
title_sort organically surface engineered mesoporous silica nanoparticles control the release of quercetin by ph stimuli
topic Analytical Chemistry
url https://repository.ugm.ac.id/283323/1/60_Organically%20surface%20engineered%20mesoporous%20silica%20nanoparticles%20control%20the%20release%20of%20quercetin%20by%20pH%20stimuli.pdf
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