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Polylactic acid nano- and microchamber arrays for encapsulation of small hydrophilic molecules featuring drug release via high intensity focused ultrasound.
Gai, Meiyu; Frueh, Johannes; Tao, Tianyi; Petrov, Arseniy V; Petrov, Vladimir V; Shesterikov, Evgeniy V; Tverdokhlebov, Sergei I; Sukhorukov, Gleb B.
Afiliação
  • Gai M; Queen Mary University of London, School of Engineering and Materials Science, Mile End, Eng, 215, London E1 4NS, UK. g.sukhorukov@qmul.ac.uk.
  • Frueh J; Micro/Nano Technology Research Centre, Harbin Institute of Technology, Yikuang Street 2, Harbin 150080, China. johannes.frueh@hit.edu.cn.
  • Tao T; Queen Mary University of London, School of Engineering and Materials Science, Mile End, Eng, 215, London E1 4NS, UK. g.sukhorukov@qmul.ac.uk.
  • Petrov AV; Remote Controlled Theranostic Systems Lab, Educational Research Institute of Nanostructures and Biosystems, Saratov State University, 83 Astrakhanskaya Street, Saratov 410012, Russia.
  • Petrov VV; Remote Controlled Theranostic Systems Lab, Educational Research Institute of Nanostructures and Biosystems, Saratov State University, 83 Astrakhanskaya Street, Saratov 410012, Russia.
  • Shesterikov EV; Experimental Physics Department, Tomsk Polytechnic University, 30 Lenin Avenue, 634050 Tomsk, Russia.
  • Tverdokhlebov SI; Experimental Physics Department, Tomsk Polytechnic University, 30 Lenin Avenue, 634050 Tomsk, Russia.
  • Sukhorukov GB; Queen Mary University of London, School of Engineering and Materials Science, Mile End, Eng, 215, London E1 4NS, UK. g.sukhorukov@qmul.ac.uk and Remote Controlled Theranostic Systems Lab, Educational Research Institute of Nanostructures and Biosystems, Saratov State University, 83 Astrakhanskaya Str
Nanoscale ; 9(21): 7063-7070, 2017 Jun 01.
Article em En | MEDLINE | ID: mdl-28513733
Long term encapsulation combined with spatiotemporal release for a precisely defined quantity of small hydrophilic molecules on demand remains a challenge in various fields ranging from medical drug delivery, controlled release of catalysts to industrial anti-corrosion systems. Free-standing individually sealed polylactic acid (PLA) nano- and microchamber arrays were produced by one-step dip-coating a PDMS stamp into PLA solution for 5 s followed by drying under ambient conditions. The wall thickness of these hydrophobic nano-microchambers is tunable from 150 nm to 7 µm by varying the PLA solution concentration. Furthermore, small hydrophilic molecules were successfully in situ precipitated within individual microchambers in the course of solvent evaporation after sonicating the PLA@PDMS stamp to remove air-bubbles and to load the active substance containing solvent. The cargo capacity of single chambers was determined to be in the range of several picograms, while it amounts to several micrograms per cm2. Two different methods for sealing chambers were compared: microcontact printing versus dip-coating whereby microcontact printing onto a flat PLA sheet allows for entrapment of micro-air-bubbles enabling microchambers with both ultrasound responsiveness and reduced permeability. Cargo release triggered by external high intensity focused ultrasound (HIFU) stimuli is demonstrated by experiment and compared with numerical simulations.

Texto completo: 1 Coleções: 01-internacional Base de dados: MEDLINE Idioma: En Revista: Nanoscale Ano de publicação: 2017 Tipo de documento: Article País de publicação: Reino Unido

Texto completo: 1 Coleções: 01-internacional Base de dados: MEDLINE Idioma: En Revista: Nanoscale Ano de publicação: 2017 Tipo de documento: Article País de publicação: Reino Unido