Insert-based microfluidics for 3D cell culture with analysis

被引:0
|
作者
Chengpeng Chen
Alexandra D. Townsend
Elizabeth A. Hayter
Hannah M. Birk
Scott A. Sell
R. Scott Martin
机构
[1] Saint Louis University,Department of Chemistry
[2] Saint Louis University,Department of Biomedical Engineering
来源
关键词
Bioanalytical methods; Microfluidics; 3D printing; Cell systems; Single-cell analysis;
D O I
暂无
中图分类号
学科分类号
摘要
We present an insert-based approach to fabricate scalable and multiplexable microfluidic devices for 3D cell culture and integration with downstream detection modules. Laser-cut inserts with a layer of electrospun fibers are used as a scaffold for 3D cell culture, with the inserts being easily assembled in a 3D-printed fluidic device for flow-based studies. With this approach, the number and types of cells (on the inserts) in one fluidic device can be customized. Moreover, after an investigation (i.e., stimulation) under flowing conditions, the cell-laden inserts can be removed easily for subsequent studies including imaging and cell lysis. In this paper, we first discuss the fabrication of the device and characterization of the fibrous inserts. Two device designs containing two (channel width = 260 μm) and four (channel width = 180 μm) inserts, respectively, were used for different experiments in this study. Cell adhesion on the inserts with flowing media through the device was tested by culturing endothelial cells. Macrophages were cultured and stimulated under different conditions, the results of which indicate that the fibrous scaffolds under flow conditions result in dramatic effects on the amount and kinetics of TNF-α production (after LPS stimulation). Finally, we show that the cell module can be integrated with a downstream absorbance detection scheme. Overall, this technology represents a new and versatile way to culture cells in a more in vivo fashion for in vitro studies with online detection modules.
引用
收藏
页码:3025 / 3035
页数:10
相关论文
共 50 条
  • [1] Insert-based microfluidics for 3D cell culture with analysis
    Chen, Chengpeng
    Townsend, Alexandra D.
    Hayter, Elizabeth A.
    Birk, Hannah M.
    Sell, Scott A.
    Martin, R. Scott
    ANALYTICAL AND BIOANALYTICAL CHEMISTRY, 2018, 410 (12) : 3025 - 3035
  • [2] A Rapid Filter Insert-based 3D Culture System for Primary Prostate Cell Differentiation
    Tricoli, Lucas
    Berry, Deborah L.
    Albanese, Chris
    JOVE-JOURNAL OF VISUALIZED EXPERIMENTS, 2017, (120):
  • [3] Use of 3D printing and modular microfluidics to integrate cell culture, injections and electrochemical analysis
    Munshi, Akash S.
    Chen, Chengpeng
    Townsend, Alexandra D.
    Martin, R. Scott
    ANALYTICAL METHODS, 2018, 10 (27) : 3364 - 3374
  • [4] Droplet Microfluidics for Current Cancer Research: From Single-Cell Analysis to 3D Cell Culture
    Jiang, Lin
    Guo, Kefan
    Chen, Yao
    Xiang, Nan
    ACS BIOMATERIALS SCIENCE & ENGINEERING, 2024, 10 (03) : 1335 - 1354
  • [5] Automated Raman based cell sorting with 3D microfluidics
    Lyu, Yingkai
    Yuan, Xiaofei
    Glidle, Andrew
    Fu, Yuchen
    Furusho, Hitoshi
    Yang, Tianxin
    Yin, Huabing
    LAB ON A CHIP, 2020, 20 (22) : 4235 - 4245
  • [6] Analysis of 3D Cell Culture Models
    Larson, Brad
    Genetic Engineering and Biotechnology News, 2015, 35 (16): : 24 - 25
  • [7] Microfluidics-based 3D cell culture models: Utility in novel drug discovery and delivery research
    Gupta, Nilesh
    Liu, Jeffrey R.
    Patel, Brijeshkumar
    Solomon, Deepak E.
    Vaidya, Bhuvaneshwar
    Gupta, Vivek
    BIOENGINEERING & TRANSLATIONAL MEDICINE, 2016, 1 (01) : 63 - 81
  • [8] 3D printed microfluidics for cell biological applications
    Zhao, Liang
    Wang, Xiayan
    TRAC-TRENDS IN ANALYTICAL CHEMISTRY, 2023, 158
  • [9] Microfluidics meets 3D cancer cell migration
    Mehta, Pranav
    Rahman, Zaid
    ten Dijke, Peter
    Boukany, Pouyan E.
    TRENDS IN CANCER, 2022, 8 (08) : 683 - 697
  • [10] Biomaterial-based microfluidics for cell culture and analysis
    Ning, Ruizhi
    Wang, Feng
    Lin, Ling
    TRAC-TRENDS IN ANALYTICAL CHEMISTRY, 2016, 80 : 255 - 265