Design of microdevices for long-term live cell imaging

被引:8
|
作者
Chen, Huaying [1 ,2 ]
Rosengarten, Gary [3 ]
Li, Musen [2 ]
Nordon, Robert E. [1 ]
机构
[1] Univ New S Wales, Grad Sch Biomed Engn, Sydney, NSW 2052, Australia
[2] Shandong Univ, Sch Mat Sci & Engn, Jinan 250100, Peoples R China
[3] Univ New S Wales, Sch Mfg & Mech Engn, Sydney, NSW 2052, Australia
关键词
MICROFLUIDIC CHANNELS; CULTURE ARRAY; SHEAR-STRESS; DOCKING; FLOW; SYSTEMS; DEVICE; VALVES; WELL;
D O I
10.1088/0960-1317/22/6/065033
中图分类号
TM [电工技术]; TN [电子技术、通信技术];
学科分类号
0808 ; 0809 ;
摘要
Advances in fluorescent live cell imaging provide high-content information that relates a cell's life events to its ancestors. An important requirement to track clonal growth and development is the retention of motile cells derived from an ancestor within the same microscopic field of view for days to weeks, while recording fluorescence images and controlling the mechanical and biochemical microenvironments that regulate cell growth and differentiation. The aim of this study was to design a microwell device for long-term, time-lapse imaging of motile cells with the specific requirements of (a) inoculating devices with an average of one cell per well and (b) retaining progeny of cells within a single microscopic field of view for extended growth periods. A two-layer PDMS microwell culture device consisting of a parallel-plate flow cell bonded on top of a microwell array was developed for cell capture and clonal culture. Cell deposition statistics were related to microwell geometry (plate separation and well depth) and the Reynolds number. Computational fluid dynamics was used to simulate flow in the microdevices as well as cell-fluid interactions. Analysis of the forces acting upon a cell was used to predict cell docking zones, which were confirmed by experimental observations. Cell-fluid dynamic interactions are important considerations for design of microdevices for long-term, live cell imaging. The analysis of force and torque balance provides a reasonable approximation for cell displacement forces. It is computationally less intensive compared to simulation of cell trajectories, and can be applied to a wide range of microdevice geometries to predict the cell docking behavior.
引用
收藏
页数:11
相关论文
共 50 条
  • [31] Long-term Live Imaging Device for Improved Experimental Manipulation of Zebrafish Larvae
    Huemer, Kayla
    Squirrell, Jayne M.
    Swader, Robert
    Pelkey, Kirsten
    LeBert, Danny C.
    Huttenlocher, Anna
    Eliceiri, Kevin W.
    JOVE-JOURNAL OF VISUALIZED EXPERIMENTS, 2017, (128):
  • [32] Long-term culture and live-imaging for excised human skin tissue
    Tohgasaki, T.
    Sugimoto, Y.
    Sugimoto, T.
    Kimura, Y.
    Kondo, S.
    Suzuki, T.
    Takeda, A.
    JOURNAL OF INVESTIGATIVE DERMATOLOGY, 2024, 144 (08) : S124 - S124
  • [33] An electroporation cytometry system for long-term, live cell cycle analysis
    Nesmith, Thomas
    Vieira, Christian
    Rackus, Darius G.
    Gupta, Gagan D.
    BIOMICROFLUIDICS, 2024, 18 (04)
  • [34] Long-term live-cell imaging reveals new roles for Salmonella effector proteins SseG and SteA
    McQuate, Sarah E.
    Young, Alexandra M.
    Silva-Herzog, Eugenia
    Bunker, Eric
    Hernandez, Mateo
    de Chaumont, Fabrice
    Liu, Xuedong
    Detweiler, Corrella S.
    Palmer, Amy E.
    CELLULAR MICROBIOLOGY, 2017, 19 (01)
  • [35] A portable low-cost long-term live-cell imaging platform for biomedical research and education
    Walzik, Maria P.
    Vollmar, Verena
    Lachnit, Theresa
    Dietz, Helmut
    Haug, Susanne
    Bachmann, Holger
    Fath, Moritz
    Aschenbrenner, Daniel
    Mofrad, Sepideh Abolpour
    Friedrich, Oliver
    Gilbert, Daniel F.
    BIOSENSORS & BIOELECTRONICS, 2015, 64 : 639 - 649
  • [36] Super-photostable organic dye for long-term live-cell single-protein imaging
    Kim, Do-Hyeon
    Triet, Hong Minh
    Lee, Sun Hyeok
    Jazani, Sina
    Jang, Seongjae
    Abedi, Syed Ali Abbas
    Liu, Xiaogang
    Seo, Jongcheol
    Ha, Taekjip
    Chang, Young-Tae
    Ryu, Sung Ho
    NATURE METHODS, 2025, 22 (03) : 550 - 558
  • [37] Fabrication of Chitosan Nanoparticles with Aggregation-Induced Emission Characteristics and Their Applications in Long-Term Live Cell Imaging
    Li, Min
    Hong, Yuning
    Wang, Zhengke
    Chen, Sijie
    Gao, Meng
    Kwok, Ryan T. K.
    Qin, Wei
    Lam, Jacky W. Y.
    Zheng, Qichang
    Tang, Ben Zhong
    MACROMOLECULAR RAPID COMMUNICATIONS, 2013, 34 (09) : 767 - 771
  • [38] Characterizing UV-induced photodamage to improve long-term, dynamic live cell imaging with UV microscopy
    Gorti, Viswanath
    Robles, Francisco E.
    LABEL-FREE BIOMEDICAL IMAGING AND SENSING, LBIS 2024, 2024, 12854
  • [39] Long-term time-lapse live imaging reveals extensive cell migration during annelid regeneration
    Zattara, Eduardo E.
    Turlington, Kate W.
    Bely, Alexandra E.
    BMC DEVELOPMENTAL BIOLOGY, 2016, 16
  • [40] Long-term superresolution imaging and quantification of live-cell plasma membrane biophysical properties with smart exchangeable dyes
    Carravilla, Pablo
    Dasgupta, Anindita
    Zhurgenbayeva, Gaukhar
    Danylchuk, Dmytro I.
    Klymchenko, Andrey S.
    Sezgin, Erdinc
    Eggeling, Christian
    BIOPHYSICAL JOURNAL, 2022, 121 (03) : 34 - 34