Topographical and physicochemical modification of material surface to enable patterning of living cells

被引:145
作者
Jung, DR [1 ]
Kapur, R [1 ]
Adams, T [1 ]
Giuliano, KA [1 ]
Mrksich, M [1 ]
Craighead, HG [1 ]
Taylor, DL [1 ]
机构
[1] Cellom Inc, Pittsburgh, PA 15238 USA
关键词
cell patterning; contact guidance; drug discovery; high-content screening; surface modification; cell-based sensors;
D O I
10.1080/20013891081700
中图分类号
Q81 [生物工程学(生物技术)]; Q93 [微生物学];
学科分类号
071005 ; 0836 ; 090102 ; 100705 ;
摘要
Precise control of the architecture of multiple cells in culture and in vivo via precise engineering of the material surface properties is described as cell patterning. Substrate patterning by control of the surface physicochemical and topographic features enables selective localization and phenotypic and genotypic control of living cells. In culture, control over spatial and temporal dynamics of cells and heterotypic interactions draws inspiration from in vivo embryogenesis and haptotaxis. Patterned arrays of single or multiple cell types in culture serve as model systems for exploration of cell-cell and cell-matrix interactions. More recently, the patterned arrays and assemblies of tissues have found practical applications in the fields of Biosensors and cell-based assays for Drug Discovery. Although the field of cell patterning has its origins early in this century, an improved understanding of cell-substrate interactions and the use of microfabrication techniques borrowed from the microelectronics industry have enabled significant recent progress. This review presents the important early discoveries and emphasizes results of recent state-of-the-art cell patterning methods. The review concludes by illustrating the growing impact of cell patterning in the areas of bioelectronic devices and cell-based assays for drug discovery.
引用
收藏
页码:111 / 154
页数:44
相关论文
共 272 条
  • [11] Modular concept of a laboratory on a chip for chemical and biochemical analysis
    Blankenstein, G
    Larsen, UD
    [J]. BIOSENSORS & BIOELECTRONICS, 1998, 13 (3-4) : 427 - 438
  • [12] Neural cell pattern formation on glass and oxidized silicon surfaces modified with poly(N-isopropylacrylamide)
    Bohanon, T
    Elender, G
    Knoll, W
    Koberle, P
    Lee, JS
    Offenhausser, A
    Ringsdorf, H
    Sackmann, E
    Simon, J
    Tovar, G
    Winnik, FM
    [J]. JOURNAL OF BIOMATERIALS SCIENCE-POLYMER EDITION, 1996, 8 (01) : 19 - 39
  • [13] A FLEXIBLE PERFORATED MICROELECTRODE ARRAY FOR EXTENDED NEURAL RECORDINGS
    BOPPART, SA
    WHEELER, BC
    WALLACE, CS
    [J]. IEEE TRANSACTIONS ON BIOMEDICAL ENGINEERING, 1992, 39 (01) : 37 - 42
  • [14] Borkholder D, 1998, THESIS STANFORD U
  • [15] The neuron-transistor junction: Linking equivalent electric circuit models to microscopic descriptions
    Bove, M
    Martinoia, S
    Grattarola, M
    Ricci, D
    [J]. THIN SOLID FILMS, 1996, 284 : 772 - 775
  • [16] Microstamp patterns of biomolecules for high-resolution neuronal networks
    Branch, DW
    Corey, JM
    Weyhenmeyer, JA
    Brewer, GJ
    Wheeler, BC
    [J]. MEDICAL & BIOLOGICAL ENGINEERING & COMPUTING, 1998, 36 (01) : 135 - 141
  • [17] BRANCH DW, 2000, IN PRESS IEEE T BIOM
  • [18] AXONAL GROWTH IN RESPONSE TO EXPERIMENTALLY APPLIED MECHANICAL TENSION
    BRAY, D
    [J]. DEVELOPMENTAL BIOLOGY, 1984, 102 (02) : 379 - 389
  • [19] ADVANTAGES OF USING MICROFABRICATED EXTRACELLULAR ELECTRODES FOR IN-VITRO NEURONAL RECORDING
    BRECKENRIDGE, LJ
    WILSON, RJA
    CONNOLLY, P
    CURTIS, ASG
    DOW, JAT
    BLACKSHAW, SE
    WILKINSON, CDW
    [J]. JOURNAL OF NEUROSCIENCE RESEARCH, 1995, 42 (02) : 266 - 276
  • [20] MICROPATTERNING PROTEINS AND SYNTHETIC PEPTIDES ON SOLID SUPPORTS - A NOVEL APPLICATION FOR MICROELECTRONICS FABRICATION TECHNOLOGY
    BRITLAND, S
    PEREZARNAUD, E
    CLARK, P
    MCGINN, B
    CONNOLLY, P
    MOORES, G
    [J]. BIOTECHNOLOGY PROGRESS, 1992, 8 (02) : 155 - 160