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Microfluidic Actuation via 3D-Printed Molds toward Multiplex Biosensing of Cell Apoptosis.
Dang, Bac Van; Hassanzadeh-Barforoushi, Amin; Syed, Maira Shakeel; Yang, Danting; Kim, Sung-Jin; Taylor, Robert A; Liu, Guo-Jun; Liu, Guozhen; Barber, Tracie.
Afiliación
  • Dang BV; School of Mechanical and Manufacturing Engineering, Faculty of Engineering , The University of New South Wales , Sydney , New South Wales 2052 , Australia.
  • Hassanzadeh-Barforoushi A; School of Mechanical and Manufacturing Engineering, Faculty of Engineering , The University of New South Wales , Sydney , New South Wales 2052 , Australia.
  • Syed MS; Cancer Division , Garvan Institute of Medical Research/the Kinghorn Cancer Centre , Sydney , New South Wales 2010 , Australia.
  • Yang D; School of Mechanical and Manufacturing Engineering, Faculty of Engineering , The University of New South Wales , Sydney , New South Wales 2052 , Australia.
  • Kim SJ; Graduate School of Biomedical Engineering, ARC Centre of Excellence in Nanoscale BioPhotonics, Australian Centre for NanoMedicine, Faculty of Engineering , The University of New South Wales , Sydney , New South Wales 2052 , Australia.
  • Taylor RA; Department of Preventative Medicine, Zhejiang Provincial Key Laboratory of Pathological and Physiological Technology , Medical School of Ningbo University , Ningbo , Zhejiang 315211 , China.
  • Liu GJ; Department of Mechanical Engineering , Konkuk University , Seoul , 05029 , Republic of Korea.
  • Liu G; School of Mechanical and Manufacturing Engineering, Faculty of Engineering , The University of New South Wales , Sydney , New South Wales 2052 , Australia.
  • Barber T; Australian Nuclear Science and Technology Organisation , New Illawarra Road , Lucas Heights , New South Wales 2234 , Australia.
ACS Sens ; 4(8): 2181-2189, 2019 08 23.
Article en En | MEDLINE | ID: mdl-31321976
Multiplexed analysis of biochemical analytes such as proteins, enzymes, and immune products using a microfluidic device has the potential to cut assay time, reduce sample volume, realize high-throughput, and decrease experimental error without compromising sensitivity. Despite these huge benefits, the need for expensive specialized equipment and the complex photolithography fabrication process for the multiplexed devices have, to date, prevented widespread adoption of microfluidic systems. Here, we present a simple method to fabricate a new microfluidic-based multiplexed biosensing device by taking advantage of 3D-printing. The device is an integration of normally closed (NC) microfluidic valving units which offer superior operational flexibility by using PDMS membrane (E ∼ 1-2 MPa) and require minimized energy input (1-5 kPa). To systematically engineer the device, we first report on the geometrical and operational analysis of a single 3D-printed valving unit. Based on the characterization, we introduce a full prototype multiplexed chip comprising several microfluidic valves. The prototype offers-for the first time in a 3D-printed microfluidic device-the capability of on-demand performce of both a sequential and a parallel biochemical assay. As a proof of concept, our device has been used to simultaneously measure the apoptotic activity of 5 different members of the caspase protease enzyme family. In summary, the 3D-printed valving system showcased in this study overcomes traditional bottlenecks of microfabrication, enabling a new class of sophisticated liquid manipulation required in performing multiplexed sensing for biochemical assays.
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Texto completo: 1 Bases de datos: MEDLINE Asunto principal: Técnicas Biosensibles / Apoptosis / Técnicas Analíticas Microfluídicas / Técnicas Electroquímicas / Impresión Tridimensional Límite: Humans Idioma: En Revista: ACS Sens Año: 2019 Tipo del documento: Article País de afiliación: Australia

Texto completo: 1 Bases de datos: MEDLINE Asunto principal: Técnicas Biosensibles / Apoptosis / Técnicas Analíticas Microfluídicas / Técnicas Electroquímicas / Impresión Tridimensional Límite: Humans Idioma: En Revista: ACS Sens Año: 2019 Tipo del documento: Article País de afiliación: Australia