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  4. Bioengineered 3D platform to explore cell-ECM interactions and drug resistance of epithelial ovarian cancer cells
 
research article

Bioengineered 3D platform to explore cell-ECM interactions and drug resistance of epithelial ovarian cancer cells

Loessner, Daniela
•
Stok, Kathryn S.
•
Lutolf, Matthias P.  
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2010
Biomaterials

The behaviour of cells cultured within three-dimensional (3D) structures rather than onto two-dimensional (2D) culture plastic more closely reflects their in vivo responses. Consequently, 3D culture systems are becoming crucial scientific tools in cancer cell research. We used a novel 3D culture concept to assess cell-matrix interactions implicated in carcinogenesis: a synthetic hydrogel matrix equipped with key biomimetic features, namely incorporated cell integrin-binding motifs (e.g. RGD peptides) and the ability of being degraded by cell-secreted proteases (e.g. matrix metalloproteases). As a cell model, we chose epithelial ovarian cancer, an aggressive disease typically diagnosed at an advanced stage when chemoresistance occurs. Both cell lines used (OV-MZ-6, SKOV-3) proliferated similarly in 2D, but not in 3D. Spheroid formation was observed exclusively in 3D when cells were embedded within hydrogels. By exploiting the design flexibility of the hydrogel characteristics, we showed that proliferation in 3D was dependent on cell-integrin engagement and the ability of cells to proteolytically remodel their extracellular microenvironment. Higher survival rates after exposure to the anti-cancer drug paclitaxel were observed in cell spheroids grown in hydrogels (40-60%) compared to cell monolayers in 2D (20%). Thus, 2D evaluation of chemosensitivity may not reflect pathophysiological events seen in patients. Because of the design flexibility of their characteristics and their stability in long-term cultures (28 days), these biomimetic hydrogels represent alternative culture systems for the increasing demand in cancer research for more versatile, physiologically relevant and reproducible 3D matrices. Copyright © 2010 Elsevier Ltd. All rights reserved.

  • Details
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Type
research article
DOI
10.1016/j.biomaterials.2010.07.064
Web of Science ID

WOS:000283112700041

Author(s)
Loessner, Daniela
Stok, Kathryn S.
Lutolf, Matthias P.  
Hutmacher, Dietmar W.
Clements, Judith A.
Rizzi, Simone C.
Date Issued

2010

Publisher

Elsevier

Published in
Biomaterials
Volume

31

Issue

32

Start page

8494

End page

8506

Subjects

Biomimetic material

•

Hydrogel

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Ecm

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Cell encapsulation

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Cell morphology

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Cell viability

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Multicellular Tumor Spheroids

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Extracellular Matrices

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3-Dimensional Culture

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In-Vitro

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Malignant Phenotype

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Mesothelial Cells

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Breast-Cancer

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Tissue

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Carcinoma

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Hydrogels

Editorial or Peer reviewed

REVIEWED

Written at

OTHER

EPFL units
UPLUT  
Available on Infoscience
August 28, 2010
Use this identifier to reference this record
https://infoscience.epfl.ch/handle/20.500.14299/52537
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