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Microfluidic devices manufacturing with a stereolithographic printer for biological applications.
Carnero, Bastián; Bao-Varela, Carmen; Gómez-Varela, Ana Isabel; Álvarez, Ezequiel; Flores-Arias, María Teresa.
Afiliação
  • Carnero B; Photonics4Life Research Group, Applied Physics Department, Facultade de Física and Facultade de Óptica e Optometría, Universidade de Santiago de Compostela, Campus Vida, E-15782 Santiago de Compostela, Spain.
  • Bao-Varela C; Photonics4Life Research Group, Applied Physics Department, Facultade de Física and Facultade de Óptica e Optometría, Universidade de Santiago de Compostela, Campus Vida, E-15782 Santiago de Compostela, Spain.
  • Gómez-Varela AI; Photonics4Life Research Group, Applied Physics Department, Facultade de Física and Facultade de Óptica e Optometría, Universidade de Santiago de Compostela, Campus Vida, E-15782 Santiago de Compostela, Spain.
  • Álvarez E; Cardiology Group, Health Research Institute of Santiago de Compostela (IDIS), University Hospital of Santiago de Compostela (SERGAS), Trav. Choupana s/n, E-15706 Santiago de Compostela, Spain; Centro de Investigación Biomédica en Red de Enfermedades Cardiovasculares (CIBERCV), Madrid, Spain; Departm
  • Flores-Arias MT; Photonics4Life Research Group, Applied Physics Department, Facultade de Física and Facultade de Óptica e Optometría, Universidade de Santiago de Compostela, Campus Vida, E-15782 Santiago de Compostela, Spain. Electronic address: maite.flores@usc.es.
Mater Sci Eng C Mater Biol Appl ; 129: 112388, 2021 Oct.
Article em En | MEDLINE | ID: mdl-34579907
ABSTRACT
Stereolithographic printers have revolutionized many manufacturing processes with their capacity to easily produce highly detailed structures. In the field of microfluidics, this technique avoids the use of complex steps and equipment of the conventional technologies. The potential of low force stereolithography technology is analysed for the first time using a Form 3B printer and seven printing resins through the fabrication of microchannels and pillars. Manufacturing performance of internal and superficial channels and pillars is studied for the seven printing resins in different configurations. A complete characterization of printed structures is carried out by optical, confocal and SEM microscopy, and EDX analysis. Internal channels with unobstructed lumen are obtained for diameters and angles greater than 500 µm and 60°, respectively. Outward and inward superficial channels in the range of hundreds of microns can be fabricated with an accurate profile, printing them with a perpendicular orientation respect to the base, allowing a proper uncured resin evacuation. Outward channels are replicated by soft lithography using polydimethylsiloxane. Clear, Model and Tough resins show a good behaviour to be used as master, but Amber and Dental resins present a poor topology transference from the master to the replica. According to the needs of devices used for biological and biomedical research, transparency as well as superficial biocompatibility of some resins is evaluated. Human umbilical vein endothelial cells (HUVEC) adhesion is confirmed on Amber, Dental and Clear resins, but these cells were only able to grow and progress as a cell culture over the Amber resin. Therefore, Amber showed an adequate biocompatibility, in terms of cell adhesion and growth for HUVEC.
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Texto completo: 1 Base de dados: MEDLINE Assunto principal: Dispositivos Lab-On-A-Chip / Impressão Tridimensional Limite: Humans Idioma: En Ano de publicação: 2021 Tipo de documento: Article

Texto completo: 1 Base de dados: MEDLINE Assunto principal: Dispositivos Lab-On-A-Chip / Impressão Tridimensional Limite: Humans Idioma: En Ano de publicação: 2021 Tipo de documento: Article