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A hybrid fluorescent nanofiber membrane integrated with microfluidic chips towards lung-on-a-chip applications.
Kanabekova, Perizat; Dauletkanov, Bereke; Bekezhankyzy, Zhibek; Toktarkan, Sultanali; Martin, Alma; Pham, Tri T; Kostas, Konstantinos; Kulsharova, Gulsim.
Afiliação
  • Kanabekova P; Department of Electrical and Computer Engineering, School of Engineering and Digital Sciences, Nazarbayev University, Astana 010000, Kazakhstan. Gulsim.kulsharova@nu.edu.kz.
  • Dauletkanov B; Department of Electrical and Computer Engineering, School of Engineering and Digital Sciences, Nazarbayev University, Astana 010000, Kazakhstan. Gulsim.kulsharova@nu.edu.kz.
  • Bekezhankyzy Z; Department of Electrical and Computer Engineering, School of Engineering and Digital Sciences, Nazarbayev University, Astana 010000, Kazakhstan. Gulsim.kulsharova@nu.edu.kz.
  • Toktarkan S; Department of Electrical and Computer Engineering, School of Engineering and Digital Sciences, Nazarbayev University, Astana 010000, Kazakhstan. Gulsim.kulsharova@nu.edu.kz.
  • Martin A; Department of Electrical and Computer Engineering, School of Engineering and Digital Sciences, Nazarbayev University, Astana 010000, Kazakhstan. Gulsim.kulsharova@nu.edu.kz.
  • Pham TT; Department of Biology, School of Sciences and Humanities, Nazarbayev University, Astana 010000, Kazakhstan.
  • Kostas K; Department of Mechanical and Aerospace Engineering, School of Engineering and Digital Sciences, Nazarbayev University, Astana 010000, Kazakhstan.
  • Kulsharova G; Department of Electrical and Computer Engineering, School of Engineering and Digital Sciences, Nazarbayev University, Astana 010000, Kazakhstan. Gulsim.kulsharova@nu.edu.kz.
Lab Chip ; 24(2): 224-233, 2024 01 17.
Article em En | MEDLINE | ID: mdl-38053518
ABSTRACT
Here, we report a fluorescent electrospun nanofiber membrane for integration into microfluidic devices towards lung-on-a-chip applications complemented with the results of computational fluid dynamics modelling. A proposed hybrid poly(ε-caprolactone) (PCL)-collagen membrane was developed, characterized, tested, and integrated into a prototype microfluidic chip for biocompatibility studies. The resulting membrane has a thickness of approximately 10 µm, can be adjusted for appropriate porosity, and offers excellent biocompatibility for mimicry of a basement membrane to be used in lung-on-a-chip device applications. Several membrane variations were synthesized and evaluated using SEM, FTIR, AFM, and high-resolution confocal fluorescence microscopy. A sample microfluidic chip made of cyclic olefin copolymer and polydimethylsiloxane was built and integrated with the developed PCL-collagen membrane for on-chip cell culture visualisation and biocompatibility studies. The sample chip design was modelled to determine the optimal fluidic conditions for using the membrane in the chip under fluidic conditions for future studies. The integration of the proposed membrane into microfluidic devices represents a novel strategy for improving lung-on-a-chip applications which can enhance laboratory recapitulation of the lung microenvironment.
Assuntos

Texto completo: 1 Bases de dados: MEDLINE Assunto principal: Microfluídica / Nanofibras Idioma: En Revista: Lab Chip Assunto da revista: BIOTECNOLOGIA / QUIMICA Ano de publicação: 2024 Tipo de documento: Article País de afiliação: Cazaquistão

Texto completo: 1 Bases de dados: MEDLINE Assunto principal: Microfluídica / Nanofibras Idioma: En Revista: Lab Chip Assunto da revista: BIOTECNOLOGIA / QUIMICA Ano de publicação: 2024 Tipo de documento: Article País de afiliação: Cazaquistão