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A miniaturized 3D printed pressure regulator (µPR) for microfluidic cell culture applications.
Hsu, Meng-Chun; Mansouri, Mehran; Ahamed, Nuzhet N N; Larson, Stephen M; Joshi, Indranil M; Ahmed, Adeel; Borkholder, David A; Abhyankar, Vinay V.
Afiliação
  • Hsu MC; Department of Electrical Engineering, Rochester Institute of Technology, Rochester, NY, 14623, USA.
  • Mansouri M; Department of Biomedical Engineering, Rochester Institute of Technology, Rochester, NY, 14623, USA.
  • Ahamed NNN; Department of Biomedical Engineering, Rochester Institute of Technology, Rochester, NY, 14623, USA.
  • Larson SM; Department of Biomedical Engineering, Rochester Institute of Technology, Rochester, NY, 14623, USA.
  • Joshi IM; Department of Biomedical Engineering, Rochester Institute of Technology, Rochester, NY, 14623, USA.
  • Ahmed A; Department of Biomedical Engineering, Rochester Institute of Technology, Rochester, NY, 14623, USA.
  • Borkholder DA; Department of Biomedical Engineering, Rochester Institute of Technology, Rochester, NY, 14623, USA.
  • Abhyankar VV; Department of Electrical Engineering, Rochester Institute of Technology, Rochester, NY, 14623, USA.
Sci Rep ; 12(1): 10769, 2022 06 24.
Article em En | MEDLINE | ID: mdl-35750792
ABSTRACT
Well-defined fluid flows are the hallmark feature of microfluidic culture systems and enable precise control over biophysical and biochemical cues at the cellular scale. Microfluidic flow control is generally achieved using displacement-based (e.g., syringe or peristaltic pumps) or pressure-controlled techniques that provide numerous perfusion options, including constant, ramped, and pulsed flows. However, it can be challenging to integrate these large form-factor devices and accompanying peripherals into incubators or other confined environments. In addition, microfluidic culture studies are primarily carried out under constant perfusion conditions and more complex flow capabilities are often unused. Thus, there is a need for a simplified flow control platform that provides standard perfusion capabilities and can be easily integrated into incubated environments. To this end, we introduce a tunable, 3D printed micro pressure regulator (µPR) and show that it can provide robust flow control capabilities when combined with a battery-powered miniature air pump to support microfluidic applications. We detail the design and fabrication of the µPR and (i) demonstrate a tunable outlet pressure range relevant for microfluidic applications (1-10 kPa), (ii) highlight dynamic control capabilities in a microfluidic network, (iii) and maintain human umbilical vein endothelial cells (HUVECs) in a multi-compartment culture device under continuous perfusion conditions. We anticipate that our 3D printed fabrication approach and open-access designs will enable customized µPRs that can support a broad range of microfluidic applications.
Assuntos

Texto completo: 1 Coleções: 01-internacional Base de dados: MEDLINE Assunto principal: Técnicas de Cultura de Células / Microfluídica Limite: Humans Idioma: En Ano de publicação: 2022 Tipo de documento: Article

Texto completo: 1 Coleções: 01-internacional Base de dados: MEDLINE Assunto principal: Técnicas de Cultura de Células / Microfluídica Limite: Humans Idioma: En Ano de publicação: 2022 Tipo de documento: Article