High Throughput Screening System for Screening of 3D Cell Cultures

被引:0
|
作者
Gallert, C. [1 ]
Lehmann, R. [2 ]
Roddelkopf, T. [2 ]
Junginger, S. [3 ]
Thurow, K. [1 ]
机构
[1] Univ Rostock, Ctr Life Sci Automat Celisca, D-18119 Rostock, Germany
[2] Univ Rostock, Ctr Life Sci Automat, D-18119 Rostock, Germany
[3] Univ Rostock, Inst Automat, D-18119 Rostock, Germany
关键词
High Throughput Screening System; automated drug screening; life science automation (LSA); 3D cell cultures;
D O I
暂无
中图分类号
TH7 [仪器、仪表];
学科分类号
0804 ; 080401 ; 081102 ;
摘要
Cancer is always an intensively studied field due to an increasing number of incidences. Therapeutic strategies are often associated with negative side effects, which should be minimized. Therefore, natural drugs provide an interesting prospect for cancer therapy by less toxic adverse effects. To test a high number of drugs, automation offers a good approach for the realization of a higher sample throughput. This paper presents a High Throughput Screening System to investigate the effect of different drugs on 3D cell cultures (celisca, Rostock, Germany). We used 3D cell cultures because of their higher similarity to physiological conditions due to the structure. Referring to the High Throughput Screening system, the arrangement is equipped with specific devices to perform a high throughput drug screening. Here, the instrumentation and possibilities of data measurement are described. In conclusion, this screening system could be used in industry for a drug screening in a high throughput manner, which is based on 3D cell cultures.
引用
收藏
页码:1302 / 1307
页数:6
相关论文
共 50 条
  • [21] 3D bioprinting for high-throughput screening: Drug screening, disease modeling, and precision medicine applications
    Mazzocchi, Andrea
    Soker, Shay
    Skardal, Aleksander
    APPLIED PHYSICS REVIEWS, 2019, 6 (01):
  • [22] High-Throughput 3D Imaging Flow Cytometry of Suspended Adherent 3D Cell Cultures
    Yamashita, Minato
    Tamamitsu, Miu
    Kirisako, Hiromi
    Goda, Yuki
    Chen, Xiaoyao
    Hattori, Kazuki
    Ota, Sadao
    SMALL METHODS, 2024, 8 (08)
  • [23] A simple, reliable method for high-throughput screening for diabetes drugs using 3D β-cell spheroids
    Amin, Jesal
    Ramachandran, Karthik
    Williams, S. Janette
    Lee, Annie
    Novikova, Lesya
    Stehno-Bittel, Lisa
    JOURNAL OF PHARMACOLOGICAL AND TOXICOLOGICAL METHODS, 2016, 82 : 83 - 89
  • [24] Lab-made 3D printed stoppers as high-throughput cell migration screening tool
    Acosta, Silvina
    Canclini, Lucia
    Galarraga, Carlos
    Justet, Cristian
    Alem, Diego
    SLAS TECHNOLOGY, 2022, 27 (01): : 39 - 43
  • [25] 3D Microtissues for Injectable Regenerative Therapy and High-throughput Drug Screening
    Li, Yaqian
    Yan, Xiaojun
    Liu, Wei
    Zhou, Lyu
    You, Zhifeng
    Du, Yanan
    JOVE-JOURNAL OF VISUALIZED EXPERIMENTS, 2017, (128):
  • [26] 3D high throughput screening and profiling of embryoid bodies in thermoformed microwell plates
    Vrij, E. J.
    Espinoza, S.
    Heilig, M.
    Kolew, A.
    Schneider, M.
    van Blitterswijk, C. A.
    Truckenmuller, R. K.
    Rivron, N. C.
    LAB ON A CHIP, 2016, 16 (04) : 734 - 742
  • [27] 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
  • [28] Biomimetic 3D Tissue Models for Advanced High-Throughput Drug Screening
    Nam, Ki-Hwan
    Smith, Alec S. T.
    Lone, Saifullah
    Kwon, Sunghoon
    Kim, Deok-Ho
    JALA, 2015, 20 (03): : 201 - 215
  • [29] High-throughput 3D tissue culture for prostate cancer drug screening
    Katarzyna, Futrega
    Chambers, Karen
    Lott, William
    Clements, Judith
    Russell, Pamela
    Doran, Michael
    BJU INTERNATIONAL, 2013, 112 : 35 - 35
  • [30] Automating a Magnetic 3D Spheroid Model Technology for High-Throughput Screening
    Baillargeon, Pierre
    Shumate, Justin
    Hou, Shurong
    Fernandez-Vega, Virneliz
    Marques, Nicholas
    Souza, Glauco
    Seldin, Jan
    Spicer, Timothy P.
    Scampavia, Louis
    SLAS TECHNOLOGY, 2019, 24 (04): : 420 - 428