Cargando…

Surface Permeability of Membrane and Catalytic Performance Based on Redox-Responsive of Hybrid Hollow Polymeric Microcapsules

“Smart” polymeric microcapsules with excellent permeability of membranes have drawn considerable attention in scientific and industrial research such as drug delivery carriers, microreactors, and artificial organelles. In this work, hybrid hollow polymeric microcapsules (HPs) containing redox-active...

Descripción completa

Detalles Bibliográficos
Autores principales: Wu, Guangyu, Wang, Jingyi, Liu, Qi, Lu, Ran, Wei, Yuhan, Cheng, Feng, Han, Jiangang, Xing, Weinan, Huang, Yudong
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2021
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7866142/
https://www.ncbi.nlm.nih.gov/pubmed/33530499
http://dx.doi.org/10.3390/molecules26030633
_version_ 1783648012177768448
author Wu, Guangyu
Wang, Jingyi
Liu, Qi
Lu, Ran
Wei, Yuhan
Cheng, Feng
Han, Jiangang
Xing, Weinan
Huang, Yudong
author_facet Wu, Guangyu
Wang, Jingyi
Liu, Qi
Lu, Ran
Wei, Yuhan
Cheng, Feng
Han, Jiangang
Xing, Weinan
Huang, Yudong
author_sort Wu, Guangyu
collection PubMed
description “Smart” polymeric microcapsules with excellent permeability of membranes have drawn considerable attention in scientific and industrial research such as drug delivery carriers, microreactors, and artificial organelles. In this work, hybrid hollow polymeric microcapsules (HPs) containing redox-active gold-sulfide bond were prepared with bovine serum albumin, inorganic metal cluster (AuNCs), and poly(N-isopropylacrylamide) conjugates by using Pickering emulsion method. HPs were transferred from water-in-oil to water-in-water by adding PEGbis(N-succinimidylsuccinate). To achieve redox-responsive membrane, the Au-S bond units incorporated into the microcapsules’ membranes, allowed us to explore the effects of a new stimuli, that is, the redox Au-S bond breaking on the microcapsules’ membranes. The permeability of these hybrid hollow polymeric microcapsules could be sensitively tuned via adding environment-friendly hydrogen peroxide (H(2)O(2)), resulting from a fast fracture of Au-S bond. Meanwhile, AuNCs and conjugates could depart from the microcapsules, and enhance the permeability of the membrane. Based on the excellent permeability of the membrane, phosphatase was encapsuled into HPs and p-nitrophenyl phosphate as a substrate. After adding 1 × 10(−2) and 1 × 10(−4) M H(2)O(2), the catalytic efficiency was nearly 4.06 and 2.22 times higher than that of HPs in the absence of H(2)O(2), respectively. Hence, the unique redox-responsive HPs have potential applications in biocatalytic reaction, drug delivery, and materials as well as in bioscience.
format Online
Article
Text
id pubmed-7866142
institution National Center for Biotechnology Information
language English
publishDate 2021
publisher MDPI
record_format MEDLINE/PubMed
spelling pubmed-78661422021-02-07 Surface Permeability of Membrane and Catalytic Performance Based on Redox-Responsive of Hybrid Hollow Polymeric Microcapsules Wu, Guangyu Wang, Jingyi Liu, Qi Lu, Ran Wei, Yuhan Cheng, Feng Han, Jiangang Xing, Weinan Huang, Yudong Molecules Communication “Smart” polymeric microcapsules with excellent permeability of membranes have drawn considerable attention in scientific and industrial research such as drug delivery carriers, microreactors, and artificial organelles. In this work, hybrid hollow polymeric microcapsules (HPs) containing redox-active gold-sulfide bond were prepared with bovine serum albumin, inorganic metal cluster (AuNCs), and poly(N-isopropylacrylamide) conjugates by using Pickering emulsion method. HPs were transferred from water-in-oil to water-in-water by adding PEGbis(N-succinimidylsuccinate). To achieve redox-responsive membrane, the Au-S bond units incorporated into the microcapsules’ membranes, allowed us to explore the effects of a new stimuli, that is, the redox Au-S bond breaking on the microcapsules’ membranes. The permeability of these hybrid hollow polymeric microcapsules could be sensitively tuned via adding environment-friendly hydrogen peroxide (H(2)O(2)), resulting from a fast fracture of Au-S bond. Meanwhile, AuNCs and conjugates could depart from the microcapsules, and enhance the permeability of the membrane. Based on the excellent permeability of the membrane, phosphatase was encapsuled into HPs and p-nitrophenyl phosphate as a substrate. After adding 1 × 10(−2) and 1 × 10(−4) M H(2)O(2), the catalytic efficiency was nearly 4.06 and 2.22 times higher than that of HPs in the absence of H(2)O(2), respectively. Hence, the unique redox-responsive HPs have potential applications in biocatalytic reaction, drug delivery, and materials as well as in bioscience. MDPI 2021-01-26 /pmc/articles/PMC7866142/ /pubmed/33530499 http://dx.doi.org/10.3390/molecules26030633 Text en © 2021 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 Communication
Wu, Guangyu
Wang, Jingyi
Liu, Qi
Lu, Ran
Wei, Yuhan
Cheng, Feng
Han, Jiangang
Xing, Weinan
Huang, Yudong
Surface Permeability of Membrane and Catalytic Performance Based on Redox-Responsive of Hybrid Hollow Polymeric Microcapsules
title Surface Permeability of Membrane and Catalytic Performance Based on Redox-Responsive of Hybrid Hollow Polymeric Microcapsules
title_full Surface Permeability of Membrane and Catalytic Performance Based on Redox-Responsive of Hybrid Hollow Polymeric Microcapsules
title_fullStr Surface Permeability of Membrane and Catalytic Performance Based on Redox-Responsive of Hybrid Hollow Polymeric Microcapsules
title_full_unstemmed Surface Permeability of Membrane and Catalytic Performance Based on Redox-Responsive of Hybrid Hollow Polymeric Microcapsules
title_short Surface Permeability of Membrane and Catalytic Performance Based on Redox-Responsive of Hybrid Hollow Polymeric Microcapsules
title_sort surface permeability of membrane and catalytic performance based on redox-responsive of hybrid hollow polymeric microcapsules
topic Communication
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7866142/
https://www.ncbi.nlm.nih.gov/pubmed/33530499
http://dx.doi.org/10.3390/molecules26030633
work_keys_str_mv AT wuguangyu surfacepermeabilityofmembraneandcatalyticperformancebasedonredoxresponsiveofhybridhollowpolymericmicrocapsules
AT wangjingyi surfacepermeabilityofmembraneandcatalyticperformancebasedonredoxresponsiveofhybridhollowpolymericmicrocapsules
AT liuqi surfacepermeabilityofmembraneandcatalyticperformancebasedonredoxresponsiveofhybridhollowpolymericmicrocapsules
AT luran surfacepermeabilityofmembraneandcatalyticperformancebasedonredoxresponsiveofhybridhollowpolymericmicrocapsules
AT weiyuhan surfacepermeabilityofmembraneandcatalyticperformancebasedonredoxresponsiveofhybridhollowpolymericmicrocapsules
AT chengfeng surfacepermeabilityofmembraneandcatalyticperformancebasedonredoxresponsiveofhybridhollowpolymericmicrocapsules
AT hanjiangang surfacepermeabilityofmembraneandcatalyticperformancebasedonredoxresponsiveofhybridhollowpolymericmicrocapsules
AT xingweinan surfacepermeabilityofmembraneandcatalyticperformancebasedonredoxresponsiveofhybridhollowpolymericmicrocapsules
AT huangyudong surfacepermeabilityofmembraneandcatalyticperformancebasedonredoxresponsiveofhybridhollowpolymericmicrocapsules