Tissue-Engineered 3D In Vitro Disease Models for High-Throughput Drug Screening

被引:0
|
作者
Gillian Huskin
Jun Chen
Trenton Davis
Ho-Wook Jun
机构
[1] The University of Alabama at Birmingham,Department of Biomedical Engineering
关键词
High-throughput screening assays; 3D cell culture; Hydrogels; Cancer; Cardiovascular diseases;
D O I
暂无
中图分类号
学科分类号
摘要
During high-throughput drug screening, in vitro models are fabricated and the effects of therapeutics on the models evaluated in high throughput—for example, with automated liquid handling systems and microplate reader-based high-throughput screening (HTS) assays. The most frequently-used model systems for HTS, 2D models, do not adequately model the in vivo 3D microenvironment—an important aspect of which is the extracellular matrix—and therefore, 2D models may not be appropriate for drug screening. Instead, tissue-engineered 3D models with extracellular matrix-mimicking components are destined to become the preferred in vitro systems for HTS. However, for 3D models, such as 3D cell-laden hydrogels and scaffolds, cell sheets, and spheroids as well as 3D microfluidic and organ-on-a-chip systems, to replace 2D models in HTS, they must be compatible with high-throughput fabrication schemes and evaluation methods. In this review, we summarize HTS in 2D models and discuss recent studies that have successfully demonstrated HTS-compatible 3D models of high-impact diseases, such as cancers or cardiovascular diseases.
引用
收藏
页码:523 / 538
页数:15
相关论文
共 50 条
  • [31] Bionic 3D spheroids biosensor chips for high-throughput and dynamic drug screening
    Wu, Qian
    Wei, Xinwei
    Pan, Yuxiang
    Zou, Yingchang
    Hu, Ning
    Wang, Ping
    BIOMEDICAL MICRODEVICES, 2018, 20 (04)
  • [32] High-throughput cell line panel drug screening in organoids and 3D systems
    Scales, Tim M.
    Rada-Kovacs, Anett
    Pemberton, Helen N.
    Wiggins, Ceri M.
    McCarthy, Nicola J.
    Little, Annette S.
    Sorrell, David A.
    CANCER RESEARCH, 2019, 79 (13)
  • [33] High-Throughput Imaging Assay for Drug Screening of 3D Prostate Cancer Organoids
    Choo, Nicholas
    Ramm, Susanne
    Luu, Jennii
    Winter, Jean M.
    Selth, Luke A.
    Dwyer, Amy R.
    Frydenberg, Mark
    Grummet, Jeremy
    Sandhu, Shahneen
    Hickey, Theresa E.
    Tilley, Wayne D.
    Taylor, Renea A.
    Risbridger, Gail P.
    Lawrence, Mitchell G.
    Simpson, Kaylene J.
    SLAS DISCOVERY, 2021, 26 (09) : 1107 - 1124
  • [34] Organotypic 3D decellularized matrix tumor spheroids for high-throughput drug screening
    Ferreira, Luis P.
    Gaspar, Vitor M.
    Mendes, Luis
    Duarte, Iola F.
    Mano, Joao F.
    BIOMATERIALS, 2021, 275
  • [35] 3D Tissue Engineered in Vitro Models of Cancer in Bone
    Sitarski, Anna M.
    Fairfield, Heather
    Falank, Carolyne
    Reagan, Michaela R.
    ACS BIOMATERIALS SCIENCE & ENGINEERING, 2018, 4 (02): : 324 - 336
  • [36] Validation of a high-throughput microtissue fabrication process for 3D assembly of tissue engineered cartilage constructs
    Schon, B. S.
    Schrobback, K.
    van der Ven, M.
    Stroebel, S.
    Hooper, G. J.
    Woodfield, T. B. F.
    CELL AND TISSUE RESEARCH, 2012, 347 (03) : 629 - 642
  • [37] Validation of a high-throughput microtissue fabrication process for 3D assembly of tissue engineered cartilage constructs
    B. S. Schon
    K. Schrobback
    M. van der Ven
    S. Stroebel
    G. J. Hooper
    T. B. F. Woodfield
    Cell and Tissue Research, 2012, 347 : 629 - 642
  • [38] High-throughput imaging: Focusing in on drug discovery in 3D
    Li, Linfeng
    Zhou, Qiong
    Voss, Ty C.
    Quick, Kevin L.
    LaBarbera, Daniel V.
    METHODS, 2016, 96 : 97 - 102
  • [39] Tissue-engineered kidney disease models
    DesRochers, Teresa M.
    Palma, Erica
    Kaplan, David L.
    ADVANCED DRUG DELIVERY REVIEWS, 2014, 69 : 67 - 80
  • [40] Tissue-engineered 3D tumor angiogenesis models: Potential technologies for anti-cancer drug discovery
    Chwalek, Karolina
    Bray, Laura J.
    Werner, Carsten
    ADVANCED DRUG DELIVERY REVIEWS, 2014, 79-80 : 30 - 39