In Vitro Models of Ovarian Cancer: Bridging the Gap between Pathophysiology and Mechanistic Models

被引:11
作者
Lopez, Elliot [1 ]
Kamboj, Sahil [2 ]
Chen, Changchong [1 ]
Wang, Zixu [1 ]
Kellouche, Sabrina [2 ]
Leroy-Dudal, Johanne [2 ]
Carreiras, Franck [2 ]
Lambert, Ambroise [2 ]
Aime, Carole [1 ]
机构
[1] PSL Univ, Sorbonne Univ, Ecole Normale Super, Dept Chim,PASTEUR,CNRS, F-75005 Paris, France
[2] CY Cergy Paris Univ, Inst Mat, Equipe Rech Relat Matrice Extracellulaire Cellules, ERRMECe,EA1391,Grp Matrice Extracelluaire & Mat,I, F-95031 Neuville Sur Oise, France
关键词
ovarian cancer; epithelial-to-mesenchymal transition; ascites; biological engineering; mechanotransduction; extracellular matrix; shear stress; microfluidics; in vitro models; EPITHELIAL-MESENCHYMAL TRANSITION; CELL-CYCLE ARREST; EXTRACELLULAR-MATRIX; MESOTHELIAL CELLS; TUMOR MICROENVIRONMENT; ANOIKIS RESISTANCE; MOLECULAR-FEATURES; INITIATING CELLS; DRUG-RESISTANCE; SHEAR-STRESS;
D O I
10.3390/biom13010103
中图分类号
Q5 [生物化学]; Q7 [分子生物学];
学科分类号
071010 ; 081704 ;
摘要
Ovarian cancer (OC) is a disease of major concern with a survival rate of about 40% at five years. This is attributed to the lack of visible and reliable symptoms during the onset of the disease, which leads over 80% of patients to be diagnosed at advanced stages. This implies that metastatic activity has advanced to the peritoneal cavity. It is associated with both genetic and phenotypic heterogeneity, which considerably increase the risks of relapse and reduce the survival rate. To understand ovarian cancer pathophysiology and strengthen the ability for drug screening, further development of relevant in vitro models that recapitulate the complexity of OC microenvironment and dynamics of OC cell population is required. In this line, the recent advances of tridimensional (3D) cell culture and microfluidics have allowed the development of highly innovative models that could bridge the gap between pathophysiology and mechanistic models for clinical research. This review first describes the pathophysiology of OC before detailing the engineering strategies developed to recapitulate those main biological features.
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页数:28
相关论文
共 161 条
[1]   Ovarian Cancer, Cancer Stem Cells and Current Treatment Strategies: A Potential Role of Magmas in the Current Treatment Methods [J].
Ahmed, Nuzhat ;
Kadife, Elif ;
Raza, Ali ;
Short, Mary ;
Jubinsky, Paul T. ;
Kannourakis, George .
CELLS, 2020, 9 (03)
[2]   Aggressive serous epithelial ovarian cancer is potentially propagated by EpCAM+CD45+ phenotype [J].
Akhter, Md Zahid ;
Sharawat, Surender K. ;
Kumar, Vikash ;
Kochat, Veena ;
Equbal, Zaffar ;
Ramakrishnan, Mallika ;
Kumar, Umesh ;
Mathur, Sandeep ;
Kumar, Lalit ;
Mukhopadhyay, Asok .
ONCOGENE, 2018, 37 (16) :2089-2103
[3]   Multicellular detachment generates metastatic spheroids during intra-abdominal dissemination in epithelial ovarian cancer [J].
Al Habyan, Sara ;
Kalos, Christina ;
Szymborski, Joseph ;
McCaffrey, Luke .
ONCOGENE, 2018, 37 (37) :5127-5135
[4]   Cellular capsules as a tool for multicellular spheroid production and for investigating the mechanics of tumor progression in vitro [J].
Alessandri, Kevin ;
Sarangi, Bibhu Ranjan ;
Gurchenkov, Vasily Valerievitch ;
Sinha, Bidisha ;
Kiessling, Tobias Reinhold ;
Fetler, Luc ;
Rico, Felix ;
Scheuring, Simon ;
Lamaze, Christophe ;
Simon, Anthony ;
Geraldo, Sara ;
Vignjevic, Danijela ;
Domejean, Hugo ;
Rolland, Leslie ;
Funfak, Anette ;
Bibette, Jerome ;
Bremond, Nicolas ;
Nassoy, Pierre .
PROCEEDINGS OF THE NATIONAL ACADEMY OF SCIENCES OF THE UNITED STATES OF AMERICA, 2013, 110 (37) :14843-14848
[5]   A novel method to understand tumor cell invasion: integrating extracellular matrix mimicking layers in microfluidic chips by "selective curing" [J].
Amirabadi, H. Eslami ;
SahebAli, S. ;
Frimat, J. P. ;
Luttge, R. ;
den Toonder, J. M. J. .
BIOMEDICAL MICRODEVICES, 2017, 19 (04)
[6]  
Aunoble B, 2000, INT J ONCOL, V16, P567
[7]   Fluid-Flow Induced Wall Shear Stress and Epithelial Ovarian Cancer Peritoneal Spreading [J].
Avraham-Chakim, Liron ;
Elad, David ;
Zaretsky, Uri ;
Kloog, Yoel ;
Jaffa, Ariel ;
Grisaru, Dan .
PLOS ONE, 2013, 8 (04)
[8]   Biomechanical profile of cancer stem-like/tumor-initiating cells derived from a progressive ovarian cancer model [J].
Babahosseini, Hesam ;
Ketene, Alperen N. ;
Schmelz, Eva M. ;
Roberts, Paul C. ;
Agah, Masoud .
NANOMEDICINE-NANOTECHNOLOGY BIOLOGY AND MEDICINE, 2014, 10 (05) :1013-1019
[9]   The COSMIC (Catalogue of Somatic Mutations in Cancer) database and website [J].
Bamford, S ;
Dawson, E ;
Forbes, S ;
Clements, J ;
Pettett, R ;
Dogan, A ;
Flanagan, A ;
Teague, J ;
Futreal, PA ;
Stratton, MR ;
Wooster, R .
BRITISH JOURNAL OF CANCER, 2004, 91 (02) :355-358
[10]   A biomimetic model of 3D fluid extracellular macromolecular crowding microenvironment fine-tunes ovarian cancer cells dissemination phenotype [J].
Bascetin, Rumeyza ;
Laurent-Issartel, Carine ;
Blanc-Fournier, Cecile ;
Vendrely, Charlotte ;
Kellouche, Sabrina ;
Carreiras, Franck ;
Gallet, Olivier ;
Leroy-Dudal, Johanne .
BIOMATERIALS, 2021, 269