High Density 3D Printed Microfluidics for Cell-Based Biomedical Applications

Information

  • Research Project
  • 10113852
  • ApplicationId
    10113852
  • Core Project Number
    R15GM123405
  • Full Project Number
    2R15GM123405-02
  • Serial Number
    123405
  • FOA Number
    PAR-18-714
  • Sub Project Id
  • Project Start Date
    9/15/2017 - 7 years ago
  • Project End Date
    8/31/2023 - a year ago
  • Program Officer Name
    SAMMAK, PAUL J
  • Budget Start Date
    9/15/2020 - 4 years ago
  • Budget End Date
    8/31/2023 - a year ago
  • Fiscal Year
    2020
  • Support Year
    02
  • Suffix
  • Award Notice Date
    9/15/2020 - 4 years ago
Organizations

High Density 3D Printed Microfluidics for Cell-Based Biomedical Applications

Project Summary Microfluidics (lab-on-a-chip) is a promising technology for an extremely broad range of biomedical applications including drug discovery; tissue engineering; point-of-care diagnostics; and cancer screening based on rare cell detection, protein, DNA, or micro-RNA biomarkers, and circulating exosomes. This proposal aims to revolutionize the biomedical microfluidic ecosystem by developing 3D printing to routinely create very small, densely integrated microfluidic devices for the biomedical sciences. Such devices are not possible with conventional microfluidic fabrication techniques, which typically rely on careful alignment and bonding of a handful of individually fabricated layers, each of which has a 2D component layout. In contrast, 3D printing permits all 3 dimensions of the device volume to be fully utilized for component placement and channel routing, offering the opportunity for dense component integration and small device volume. Moreover, short print times enable fast fabrication and test cycles to dramatically speed device development. This proposal intends to initiate a virtuous cycle in which 3D printed microfluidics becomes a disruptive tool for biomedical innovation, which should have a substantial impact on human health. To date, the key inhibiting factor for 3D printing has been the inability of commercial 3D printers and resins to fabricate the requisite microvoids that comprise microfluidic structures. Our results from the previous grant period demonstrate that with the custom 3D printer and resin formulations we have designed and optimized, we can 3D print microfluidic devices with channels as small as 18 µm x 20 µm, valves only 150 µm in diameter, highly integrated pumps and mixers, and high density (88/mm2) chip-to-chip interconnections containing integrated microgaskets. Moreover, we have developed a new, inexpensive, open-source, biocompatible resin suitable for cell-based work. Aim 1 of this proposal will focus on developing new tools for higher resolution 3D printing of microfluidic devices to generate novel, previously unobtainable structures and properties. Aim 2 will develop devices with high resolution porous membranes and functionalizble resin formulations. Aim 3 will develop and validate device performance using a direct cell-based chemotactic migration assay. In short, in this proposal we will leverage and extend our 3D printer and resin technologies to innovatively reduce fluidic feature sizes to ~3 µm and create functionalizable, porous membranes for cell-based adhesion and migration assays in devices with 3D geometries that are printed in 15 minutes.

IC Name
NATIONAL INSTITUTE OF GENERAL MEDICAL SCIENCES
  • Activity
    R15
  • Administering IC
    GM
  • Application Type
    2
  • Direct Cost Amount
    299989
  • Indirect Cost Amount
    122245
  • Total Cost
    422234
  • Sub Project Total Cost
  • ARRA Funded
    False
  • CFDA Code
    859
  • Ed Inst. Type
    BIOMED ENGR/COL ENGR/ENGR STA
  • Funding ICs
    NIGMS:422234\
  • Funding Mechanism
    Non-SBIR/STTR RPGs
  • Study Section
    ZRG1
  • Study Section Name
    Special Emphasis Panel
  • Organization Name
    BRIGHAM YOUNG UNIVERSITY
  • Organization Department
    ENGINEERING (ALL TYPES)
  • Organization DUNS
    009094012
  • Organization City
    PROVO
  • Organization State
    UT
  • Organization Country
    UNITED STATES
  • Organization Zip Code
    846021001
  • Organization District
    UNITED STATES