Microfluidic chip for spatially and temporally controlled biochemical gradient generation in standard cell-culture Petri dishes

被引:6
|
作者
Sahai, Ranjana [1 ,2 ,3 ]
Cecchini, Marco [1 ,2 ]
Klingauf, Mirko [1 ,2 ]
Ferrari, Aldo [1 ,2 ,4 ]
Martino, Chiara [5 ,6 ]
Castrataro, Piero [5 ,6 ]
Lionetti, Vincenzo [7 ,8 ]
Menciassi, Arianna [5 ,6 ]
Beltram, Fabio [1 ,2 ,9 ]
机构
[1] CNR, NEST, Ist Nanosci, I-56127 Pisa, Italy
[2] Scuola Normale Super Pisa, I-56127 Pisa, Italy
[3] Harvard Univ, Microrobot Lab, Cambridge, MA 02138 USA
[4] ETH, Zurich, CH, Switzerland
[5] Scuola Super Sant Anna, CRIM Lab, Pisa, Italy
[6] Italian Inst Technol Network, Genoa, Italy
[7] Scuola Super Sant Anna, Sect Med, I-56124 Pisa, Italy
[8] CNR, Fdn G Monasterio Reg Toscana, I-56124 Pisa, Italy
[9] Ctr Nanotechnol Innovat, IIT NEST, I-56127 Pisa, Italy
关键词
Gradient generator; Microfluidics; Cell migration; Neutrophils; Multilayer soft lithography; PDMS; QUANTITATIVE-ANALYSIS; LEUKOCYTE ADHESION; IN-VIVO; MIGRATION; CHEMOTAXIS; INTERLEUKIN-8; NEUTROPHILS; CHANNEL; SYSTEMS; DEVICE;
D O I
10.1007/s10404-011-0841-2
中图分类号
TB3 [工程材料学];
学科分类号
0805 ; 080502 ;
摘要
This paper reports the development, modeling, and testing of an original microfluidic chip capable of generating both time-evolving and spatially varying gradients in standard Petri dishes. It consists of three sets of five independently controlled parallel channels, and its architecture allows the generation of complex gradient profiles that can be flexibly positioned and dynamically altered in an open cell-chamber environment. A detailed fabrication protocol for the production of these chips using multilayer soft lithography is reported. A comprehensive computational model is also presented based on COMSOL Multiphysics software that includes both diffusion and advection of the fluid as it exits the microchannels. The results of the simulation are successfully applied to model single-channel experiments. The chip is then tested in multi-channel mode, and its ability to produce complex spatially varied concentration profiles is demonstrated. The achievement of steady state of the gradient profile in less than 5 min also allows for the dynamic variation of the profile. Finally, we apply the present chip architecture to investigate the migration of mouse neutrophils in an Interleukin-8 gradient. We report quantitatively on cell migration driven by Interleukin-8 gradient and provide migration speed distribution.
引用
收藏
页码:763 / 771
页数:9
相关论文
共 25 条
  • [1] Microfluidic chip for spatially and temporally controlled biochemical gradient generation in standard cell-culture Petri dishes
    Ranjana Sahai
    Marco Cecchini
    Mirko Klingauf
    Aldo Ferrari
    Chiara Martino
    Piero Castrataro
    Vincenzo Lionetti
    Arianna Menciassi
    Fabio Beltram
    [J]. Microfluidics and Nanofluidics, 2011, 11 : 763 - 771
  • [2] A completely automated, microfluidic cell-culture chip
    Griffiths, Jennifer
    [J]. ANALYTICAL CHEMISTRY, 2007, 79 (23) : 8829 - 8829
  • [3] Spatio-temporally controlled transfection of nucleic acid payloads in cell-culture
    Jain, Tilak
    Muthuswamy, Jit
    [J]. 2007 3rd International IEEE/EMBS Conference on Neural Engineering, Vols 1 and 2, 2007, : 284 - 286
  • [4] Generation of nitric oxide gradients in microfluidic devices for cell culture using spatially controlled chemical reactions
    Chen, Ying-Hua
    Peng, Chien-Chung
    Cheng, Yung-Ju
    Wu, Jin-Gen
    Tung, Yi-Chung
    [J]. BIOMICROFLUIDICS, 2013, 7 (06):
  • [5] Generation of concentration gradient by controlled flow distribution and diffusive mixing in a microfluidic chip
    Yang, MS
    Yang, J
    Li, CW
    Zhao, JL
    [J]. LAB ON A CHIP, 2002, 2 (03): : 158 - 163
  • [6] A novel microfluidic platform with stable concentration gradient for on chip cell culture and screening assays
    Xu, Bi-Yi
    Hu, Shan-Wen
    Qian, Guang-Sheng
    Xu, Jing-Juan
    Chen, Hong-Yuan
    [J]. LAB ON A CHIP, 2013, 13 (18) : 3714 - 3720
  • [7] On-chip gradient generation in 256 microfluidic cell cultures: simulation and experimental validation
    Somaweera, Himali
    Haputhanthri, Shehan O.
    Ibraguimov, Akif
    Pappas, Dimitri
    [J]. ANALYST, 2015, 140 (15) : 5029 - 5038
  • [8] Microfluidic Generation of Gradient Hydrogels to Modulate Hematopoietic Stem Cell Culture Environment
    Mahadik, Bhushan P.
    Wheeler, Tobias D.
    Skertich, Luke J.
    Kenis, Paul J. A.
    Harley, Brendan A. C.
    [J]. ADVANCED HEALTHCARE MATERIALS, 2014, 3 (03) : 449 - 458
  • [9] Development of microfluidic chip with adjustable concentration and pressure gradient for 3D cell culture
    Lu, Si-Yuan
    Cai, Shao-Xi
    Dai, Xiao-Zhen
    Chen, Si-Jia
    Song, Zhen
    [J]. Yiyong Shengwu Lixue/Journal of Medical Biomechanics, 2011, 26 (04): : 335 - 340
  • [10] Study on Drug Resistance to Tumor Cell in Oxygen Gradient and Co-culture Microfluidic Chip
    Sun, Wei
    Chen, Yu-Qing
    Wang, Ming-Fang
    Wang, Yue-Rong
    Zhang, Min
    Zhang, Hong-Yang
    Hu, Ping
    [J]. CHINESE JOURNAL OF ANALYTICAL CHEMISTRY, 2020, 48 (02) : 180 - 186