Micro-sized "pelmeni" - A universal microencapsulation approach overview; Materials & Design; Vol. 202

Manylion Llyfryddiaeth
Parent link:Materials & Design
Vol. 202.— 2021.— [109527, 24 p.]
Awdur Corfforaethol: Национальный исследовательский Томский политехнический университет Инженерная школа ядерных технологий Лаборатория плазменных гибридных систем
Awduron Eraill: Kudryavtseva V. L. Valeriya Lvovna, Boi S. Stefania, Read J. E. Jordan, Gould J. David, Szewczyk P. K. Piotr, Stachewicz U. Urszula, Kiryukhin M. V. Maxim, Pastorino L. Laura, Sukhorukov G. B. Gleb Borisovich
Crynodeb:Title screen
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 ?m 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.
Iaith:Saesneg
Cyhoeddwyd: 2021
Pynciau:
Mynediad Ar-lein:https://doi.org/10.1016/j.matdes.2021.109527
Fformat: Electronig Pennod Llyfr
KOHA link:https://koha.lib.tpu.ru/cgi-bin/koha/opac-detail.pl?biblionumber=668648

MARC

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330 |a 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 ?m 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. 
461 |t Materials & Design 
463 |t Vol. 202  |v [109527, 24 p.]  |d 2021 
610 1 |a электронный ресурс 
610 1 |a труды учёных ТПУ 
610 1 |a drug delivery 
610 1 |a polymer capsules 
610 1 |a microprinting 
610 1 |a polylactic acid 
610 1 |a soft lithography 
610 1 |a layer-by-layer capsules 
610 1 |a полимолочная кислота 
610 1 |a инкапсуляция 
701 1 |a Kudryavtseva  |b V. L.  |c physicist  |c Engineer of Tomsk Polytechnic University  |f 1993-  |g Valeriya Lvovna  |3 (RuTPU)RU\TPU\pers\38564 
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701 1 |a Read  |b J. E.  |g Jordan 
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701 1 |a Stachewicz  |b U.  |g Urszula 
701 1 |a Kiryukhin  |b M. V.  |g Maxim 
701 1 |a Pastorino  |b L.  |g Laura 
701 1 |a Sukhorukov  |b G. B.  |c chemist  |c The Head of the Laboratory of Tomsk Polytechnic University, Candidate of physical and mathematical sciences  |f 1969-  |g Gleb Borisovich  |3 (RuTPU)RU\TPU\pers\37353 
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