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Microenvironment complexity and matrix stiffness regulate breast cancer cell activity in a 3D in vitro model

Authors :
Roberto Raiteri
Francesco Beltrame
Silvia Scaglione
Marta Cavo
Marco Fato
Leonardo Peñuela
Source :
Scientific Reports, Scientific reports (Nature Publishing Group) 6 (2016). doi:10.1038/srep35367, info:cnr-pdr/source/autori:Cavo, Marta; Fato, Marco; Penuela, Leonardo; Beltrame, Francesco; Raiteri, Roberto; Scaglione, Silvia/titolo:Microenvironment complexity and matrix stiffness regulate breast cancer cell activity in a 3D in vitro model/doi:10.1038%2Fsrep35367/rivista:Scientific reports (Nature Publishing Group)/anno:2016/pagina_da:/pagina_a:/intervallo_pagine:/volume:6
Publication Year :
2016
Publisher :
Nature Publishing Group, 2016.

Abstract

Three-dimensional (3D) cell cultures represent fundamental tools for the comprehension of cellular phenomena both in normal and in pathological conditions. In particular, mechanical and chemical stimuli play a relevant role on cell fate, cancer onset and malignant evolution. Here, we use mechanically-tuned alginate hydrogels to study the role of substrate elasticity on breast adenocarcinoma cell activity. The hydrogel elastic modulus (E) was measured via atomic force microscopy (AFM) and a remarkable range (150–4000 kPa) was obtained. A breast cancer cell line, MCF-7, was seeded within the 3D gels, on standard Petri and alginate-coated dishes (2D controls). Cells showed dramatic morphological differences when cultured in 3D versus 2D, exhibiting a flat shape in both 2D conditions, while maintaining a circular, spheroid-organized (cluster) conformation within the gels, similar to those in vivo. Moreover, we observed a strict correlation between cell viability and substrate elasticity; in particular, the number of MCF-7 cells decreased constantly with increasing hydrogel elasticity. Remarkably, the highest cellular proliferation rate, associated with the formation of cell clusters, occurred at two weeks only in the softest hydrogels (E = 150–200 kPa), highlighting the need to adopt more realistic and a priori defined models for in vitro cancer studies.

Details

Language :
English
Database :
OpenAIRE
Journal :
Scientific Reports, Scientific reports (Nature Publishing Group) 6 (2016). doi:10.1038/srep35367, info:cnr-pdr/source/autori:Cavo, Marta; Fato, Marco; Penuela, Leonardo; Beltrame, Francesco; Raiteri, Roberto; Scaglione, Silvia/titolo:Microenvironment complexity and matrix stiffness regulate breast cancer cell activity in a 3D in vitro model/doi:10.1038%2Fsrep35367/rivista:Scientific reports (Nature Publishing Group)/anno:2016/pagina_da:/pagina_a:/intervallo_pagine:/volume:6
Accession number :
edsair.doi.dedup.....0943caad5e11170ef4ca428fbc833e09
Full Text :
https://doi.org/10.1038/srep35367