Micro-sized 'pelmeni' - A universal microencapsulation approach overview

Microcapsules of customized shapes offer significant advantages over spherical ones, including enhanced internalization by host cells, improved flow characteristics, and higher packing capacity. In our work, we propose a method for defined-shape polymer capsules fabrication inspired by a traditional...

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Main Authors: Valeriya Kudryavtseva, Stefania Boi, Jordan Read, David Gould, Piotr K. Szewczyk, Urszula Stachewicz, Maxim V. Kiryukhin, Laura Pastorino, Gleb B. Sukhorukov
Format: Article
Language:English
Published: Elsevier 2021-04-01
Series:Materials & Design
Subjects:
Online Access:http://www.sciencedirect.com/science/article/pii/S0264127521000800
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spelling doaj-3c59aea83ff544ecaeeab2d4e9ce59482021-03-17T05:16:54ZengElsevierMaterials & Design0264-12752021-04-01202109527Micro-sized 'pelmeni' - A universal microencapsulation approach overviewValeriya Kudryavtseva0Stefania Boi1Jordan Read2David Gould3Piotr K. Szewczyk4Urszula Stachewicz5Maxim V. Kiryukhin6Laura Pastorino7Gleb B. Sukhorukov8Nanoforce, School of Engineering and Materials Science, Queen Mary University of London, Mile End Road, London E1 4NS, UK; National Research Tomsk Polytechnic University, 30 Lenin Avenue, Tomsk 634050, RussiaDepartment of Informatics, Bioengineering, Robotics and Systems Engineering, University of Genoa, Via Opera pia 13, 16145 Genoa, ItalyBiochemical Pharmacology, William Harvey Research Institute, Queen Mary University of London, EC1M 6BQ London, United KingdomBiochemical Pharmacology, William Harvey Research Institute, Queen Mary University of London, EC1M 6BQ London, United KingdomFaculty of Metals Engineering and Industrial Computer Science, AGH University of Science and Technology, Adama Mickiewicza 30 Avenue, 30-059 Krakow, PolandFaculty of Metals Engineering and Industrial Computer Science, AGH University of Science and Technology, Adama Mickiewicza 30 Avenue, 30-059 Krakow, PolandSingapore Institute of Food and Biotechnology Innovation, Agency for Science, Technology and Research (A-STAR), 31 Biopolis Way, #01-02 Nanos, Singapore 138669, Singapore; Institute of Materials Research and Engineering, Agency for Science, Technology and Research (A-STAR), 2 Fusionopolis Way, Innovis, #08-03, Singapore 138634, SingaporeDepartment of Informatics, Bioengineering, Robotics and Systems Engineering, University of Genoa, Via Opera pia 13, 16145 Genoa, ItalyNanoforce, School of Engineering and Materials Science, Queen Mary University of London, Mile End Road, London E1 4NS, UK; Skolkovo Institute of Science and Technology, Bolshoy Boulevard 30, bld. 1, Moscow 143025, Russia; Corresponding author at: Nanoforce, School of Engineering and Materials Science, Queen Mary University of London, Mile End Road, London E1 4NS, UK.Microcapsules of customized shapes offer significant advantages over spherical ones, including enhanced internalization by host cells, improved flow characteristics, and higher packing capacity. In our work, we propose a method for defined-shape polymer capsules fabrication inspired by a traditional “pelmeni” (dumplings) making process. The proposed method is based on soft lithography technique. Two different approaches were demonstrated resulting in polyelectrolyte multilayer and poly(lactic acid) (PLA) capsules both showing monodisperse size and shape distribution with about 7 μm long torpedo-like shape. The PLA capsules are described in terms of their morphology, loading of model cargo molecules, cell cytotoxicity and cell uptake. Carboxyfluorescein, FeCl2 ground crystals and Fe3O4 nanopowder were used as model cargoes for microcapsules. Capsules demonstrate core-shell structure, high loading capacity, hydrophilic molecules retention and internalization by cells without causing toxic effects. The loading efficiency of model cargo in PLA capsules was more than 80 wt%, resulting in about 40 pg of carboxyfluorescein inside each capsule. Proposed method allows unique advantages compared with alternative microencapsulation techniques, such as precise control over capsules' geometry, flexibility for the choice of active cargoes, regardless of their solubility and molecular weight and potential for triggered release mechanism.http://www.sciencedirect.com/science/article/pii/S0264127521000800Drug deliveryPolymer capsulesMicroprintingPolylactic acidSoft lithographyLayer-by-layer capsules
collection DOAJ
language English
format Article
sources DOAJ
author Valeriya Kudryavtseva
Stefania Boi
Jordan Read
David Gould
Piotr K. Szewczyk
Urszula Stachewicz
Maxim V. Kiryukhin
Laura Pastorino
Gleb B. Sukhorukov
spellingShingle Valeriya Kudryavtseva
Stefania Boi
Jordan Read
David Gould
Piotr K. Szewczyk
Urszula Stachewicz
Maxim V. Kiryukhin
Laura Pastorino
Gleb B. Sukhorukov
Micro-sized 'pelmeni' - A universal microencapsulation approach overview
Materials & Design
Drug delivery
Polymer capsules
Microprinting
Polylactic acid
Soft lithography
Layer-by-layer capsules
author_facet Valeriya Kudryavtseva
Stefania Boi
Jordan Read
David Gould
Piotr K. Szewczyk
Urszula Stachewicz
Maxim V. Kiryukhin
Laura Pastorino
Gleb B. Sukhorukov
author_sort Valeriya Kudryavtseva
title Micro-sized 'pelmeni' - A universal microencapsulation approach overview
title_short Micro-sized 'pelmeni' - A universal microencapsulation approach overview
title_full Micro-sized 'pelmeni' - A universal microencapsulation approach overview
title_fullStr Micro-sized 'pelmeni' - A universal microencapsulation approach overview
title_full_unstemmed Micro-sized 'pelmeni' - A universal microencapsulation approach overview
title_sort micro-sized 'pelmeni' - a universal microencapsulation approach overview
publisher Elsevier
series Materials & Design
issn 0264-1275
publishDate 2021-04-01
description Microcapsules of customized shapes offer significant advantages over spherical ones, including enhanced internalization by host cells, improved flow characteristics, and higher packing capacity. In our work, we propose a method for defined-shape polymer capsules fabrication inspired by a traditional “pelmeni” (dumplings) making process. The proposed method is based on soft lithography technique. Two different approaches were demonstrated resulting in polyelectrolyte multilayer and poly(lactic acid) (PLA) capsules both showing monodisperse size and shape distribution with about 7 μm long torpedo-like shape. The PLA capsules are described in terms of their morphology, loading of model cargo molecules, cell cytotoxicity and cell uptake. Carboxyfluorescein, FeCl2 ground crystals and Fe3O4 nanopowder were used as model cargoes for microcapsules. Capsules demonstrate core-shell structure, high loading capacity, hydrophilic molecules retention and internalization by cells without causing toxic effects. The loading efficiency of model cargo in PLA capsules was more than 80 wt%, resulting in about 40 pg of carboxyfluorescein inside each capsule. Proposed method allows unique advantages compared with alternative microencapsulation techniques, such as precise control over capsules' geometry, flexibility for the choice of active cargoes, regardless of their solubility and molecular weight and potential for triggered release mechanism.
topic Drug delivery
Polymer capsules
Microprinting
Polylactic acid
Soft lithography
Layer-by-layer capsules
url http://www.sciencedirect.com/science/article/pii/S0264127521000800
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