A User-Centric 3D-Printed Modular Peristaltic Pump for Microfluidic Perfusion Applications

被引:4
作者
Catano, Jorge A. [1 ,2 ]
Farthing, Steven [1 ]
Mascarenhas, Zeus [1 ]
Lake, Nathaniel [1 ]
Yarlagadda, Prasad K. D. V. [1 ,2 ,3 ]
Li, Zhiyong [1 ,2 ]
Toh, Yi-Chin [1 ,2 ,4 ,5 ]
机构
[1] Queensland Univ Technol, Sch Mech Med & Proc Engn, Brisbane 4000, Australia
[2] Queensland Univ Technol, Ctr Biomed Technol, Kelvin Grove 4059, Australia
[3] Univ Southern Queensland, Sch Engn, Springfield Central 4300, Australia
[4] Queensland Univ Technol, Max Planck Queensland Ctr MPQC, Mat Sci Extracellular Matr, Kelvin Grove 4059, Australia
[5] Queensland Univ Technol, Ctr Microbiome Res, Woolloongabba 4102, Australia
基金
澳大利亚研究理事会;
关键词
3D printing; modular; peristaltic pump; microfluidic perfusion; OSCILLATORY FLOW; DRIVEN; FABRICATION; MICROPUMP; CULTURE; SYSTEM;
D O I
10.3390/mi14050930
中图分类号
O65 [分析化学];
学科分类号
070302 ; 081704 ;
摘要
Microfluidic organ-on-a-chip (OoC) technology has enabled studies on dynamic physiological conditions as well as being deployed in drug testing applications. A microfluidic pump is an essential component to perform perfusion cell culture in OoC devices. However, it is challenging to have a single pump that can fulfil both the customization function needed to mimic a myriad of physiological flow rates and profiles found in vivo and multiplexing requirements (i.e., low cost, small footprint) for drug testing operations. The advent of 3D printing technology and open-source programmable electronic controllers presents an opportunity to democratize the fabrication of mini-peristaltic pumps suitable for microfluidic applications at a fraction of the cost of commercial microfluidic pumps. However, existing 3D-printed peristaltic pumps have mainly focused on demonstrating the feasibility of using 3D printing to fabricate the structural components of the pump and neglected user experience and customization capability. Here, we present a user-centric programmable 3D-printed mini-peristaltic pump with a compact design and low manufacturing cost (similar to USD 175) suitable for perfusion OoC culture applications. The pump consists of a user-friendly, wired electronic module that controls the operation of a peristaltic pump module. The peristaltic pump module comprises an air-sealed stepper motor connected to a 3D-printed peristaltic assembly, which can withstand the high-humidity environment of a cell culture incubator. We demonstrated that this pump allows users to either program the electronic module or use different-sized tubing to deliver a wide range of flow rates and flow profiles. The pump also has multiplexing capability as it can accommodate multiple tubing. The performance and user-friendliness of this low-cost, compact pump can be easily deployed for various OoC applications.
引用
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页数:17
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共 58 条
  • [1] Design and fabrication of a 3D printed miniature pump for integrated microfluidic applications
    Alam, Muhd Nazrul Hisham Zainal
    Hossain, Faruque
    Vale, Alexander
    Kouzani, Abbas
    [J]. INTERNATIONAL JOURNAL OF PRECISION ENGINEERING AND MANUFACTURING, 2017, 18 (09) : 1287 - 1296
  • [2] 3D-Printed Microfluidics
    Au, Anthony K.
    Huynh, Wilson
    Horowitz, Lisa F.
    Folch, Albert
    [J]. ANGEWANDTE CHEMIE-INTERNATIONAL EDITION, 2016, 55 (12) : 3862 - 3881
  • [3] Open-source, 3D-printed Peristaltic Pumps for Small Volume Point-of-Care Liquid Handling
    Behrens, Michael R.
    Fuller, Haley C.
    Swist, Emily R.
    Wu, Jingwen
    Islam, Md. Mydul
    Long, Zhicheng
    Ruder, Warren C.
    Steward, Robert, Jr.
    [J]. SCIENTIFIC REPORTS, 2020, 10 (01)
  • [4] Fabrication of a Hybrid Microfluidic System Incorporating both Lithographically Patterned Microchannels and a 3D Fiber-Formed Microfluidic Network
    Bellan, Leon M.
    Kniazeva, Tatiana
    Kim, Ernest S.
    Epshteyn, Alla A.
    Cropek, Donald M.
    Langer, Robert
    Borenstein, Jeffrey T.
    [J]. ADVANCED HEALTHCARE MATERIALS, 2012, 1 (02) : 164 - 167
  • [5] Microfluidic organs-on-chips
    Bhatia, Sangeeta N.
    Ingber, Donald E.
    [J]. NATURE BIOTECHNOLOGY, 2014, 32 (08) : 760 - 772
  • [6] The upcoming 3D-printing revolution in microfluidics
    Bhattacharjee, Nirveek
    Urrios, Arturo
    Kanga, Shawn
    Folch, Albert
    [J]. LAB ON A CHIP, 2016, 16 (10) : 1720 - 1742
  • [7] Pumps for microfluidic cell culture
    Byun, Chang Kyu
    Abi-Samra, Kameel
    Cho, Yoon-Kyoung
    Takayama, Shuichi
    [J]. ELECTROPHORESIS, 2014, 35 (2-3) : 245 - 257
  • [8] Mechanotransduction and endothelial cell homeostasis: the wisdom of the cell
    Chien, Shu
    [J]. AMERICAN JOURNAL OF PHYSIOLOGY-HEART AND CIRCULATORY PHYSIOLOGY, 2007, 292 (03): : H1209 - H1224
  • [9] Biomimetic Vasculatures by 3D-Printed Porous Molds
    Ching, Terry
    Vasudevan, Jyothsna
    Chang, Shu-Yung
    Tan, Hsih Yin
    Ranganath, Anupama Sargur
    Lim, Chwee Teck
    Fernandez, Javier G.
    Ng, Jun Jie
    Toh, Yi-Chin
    Hashimoto, Michinao
    [J]. SMALL, 2022, 18 (39)
  • [10] Highly-customizable 3D-printed peristaltic pump kit
    Ching, Terry
    Vasudevan, Jyothsna
    Tan, Hsih Yin
    Lim, Chwee Teck
    Fernandez, Javier
    Toh, Yi-Chin
    Hashimoto, Michinao
    [J]. HARDWAREX, 2021, 10