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
  • [21] A novel method for high-throughput drug screening in 3D tumor organoids
    Phan, Nhan
    Huang, Jessica
    Eisenberg, David
    Memarzadeh, Sanaz
    Soragni, Alice
    CANCER RESEARCH, 2017, 77
  • [22] 3D bioprinting of functional tissue models for personalized drug screening and in vitro disease modeling
    Ma, Xuanyi
    Liu, Justin
    Zhu, Wei
    Tang, Min
    Lawrence, Natalie
    Yu, Claire
    Gou, Maling
    Chen, Shaochen
    ADVANCED DRUG DELIVERY REVIEWS, 2018, 132 : 235 - 251
  • [23] HUMAN IN VITRO 3D NASH MODEL FOR HIGH-THROUGHPUT DRUG EFFICACY
    Strobel, Simon
    Kostadinova, Radina
    Rupp, Jana
    Fiaschetti, Katia
    Pajak, Agnieszka
    Sanchez, Katarzyna
    Wolf, Armin
    Thoma, Eva
    HEPATOLOGY, 2020, 72 : 333A - 333A
  • [24] High-throughput microfluidic platform for culture of 3D kidney tissue models
    Lanz, H. L.
    Vormann, M.
    van den Heuvel, A.
    Ng, C. P.
    van Vught, R.
    Trietsch, S. J. T.
    Joore, J.
    Vulto, P.
    TOXICOLOGY LETTERS, 2016, 259 : S11 - S11
  • [25] High-throughput microfluidic platform for culture of 3D kidney tissue models
    Vormann, M. K.
    Trietsch, S. J.
    Vught, R. V.
    Joore, J.
    Vulto, P.
    Lanz, H.
    TOXICOLOGY LETTERS, 2016, 258 : S157 - S157
  • [26] Tissue-engineered disease models
    不详
    NATURE BIOMEDICAL ENGINEERING, 2018, 2 (12): : 879 - 880
  • [27] Tissue-engineered disease models
    Nature Biomedical Engineering, 2018, 2 : 879 - 880
  • [28] 3D iPSCs model of the human brain for high-throughput in vitro neurotoxicity screening
    Chiang, Chiwan
    Nicholas, Arnaud
    Wilschut, Karlijn J.
    van Vught, Remko
    Lanz, Henriette
    Trietsch, Sebastiaan J.
    Westerink, Remco
    Joore, Jos
    Vulto, Paul
    JOURNAL OF PHARMACOLOGICAL AND TOXICOLOGICAL METHODS, 2018, 93 : 133 - 133
  • [29] Arbitrarily Accessible 3D Microfluidic Device for Combinatorial High-Throughput Drug Screening
    Chen, Zhuofa
    Li, Weizhi
    Choi, Gihoon
    Yang, Xiaonan
    Miao, Jun
    Cui, Liwang
    Guan, Weihua
    SENSORS, 2016, 16 (10)
  • [30] Bionic 3D spheroids biosensor chips for high-throughput and dynamic drug screening
    Qian Wu
    Xinwei Wei
    Yuxiang Pan
    Yingchang Zou
    Ning Hu
    Ping Wang
    Biomedical Microdevices, 2018, 20