Decoupling the effects of stiffness and fiber density on cellular behaviors via an interpenetrating network of gelatin-methacrylate and collagen

被引:126
作者
Berger, Anthony J. [1 ]
Linsmeier, Kelsey M. [1 ]
Kreeger, Pamela K. [1 ,2 ,3 ]
Masters, Kristyn S. [1 ,3 ,4 ,5 ]
机构
[1] Univ Wisconsin Madison, Dept Biomed Engn, Madison, WI USA
[2] Univ Wisconsin, Sch Med & Publ Hlth, Dept Cell & Regenerat Biol, Madison, WI USA
[3] Univ Wisconsin, Sch Med & Publ Hlth, Carbone Canc Ctr, Madison, WI USA
[4] Univ Wisconsin, Sch Med & Publ Hlth, Dept Med, Madison, WI USA
[5] Univ Wisconsin Madison, Dept Mat Sci & Engn, Madison, WI USA
基金
美国国家科学基金会; 美国国家卫生研究院;
关键词
Collagen; Stiffness; Tumor microenvironment; Fibers; EXTRACELLULAR-MATRIX; NONLINEAR ELASTICITY; FOCAL ADHESIONS; HYDROGELS; MIGRATION; CELLS; FIBROBLASTS; SPHEROIDS; PHENOTYPE; MECHANICS;
D O I
10.1016/j.biomaterials.2017.06.039
中图分类号
R318 [生物医学工程];
学科分类号
100103 [病原生物学];
摘要
The extracellular microenvironment provides critical cues that guide tissue development, homeostasis, and pathology. Deciphering the individual roles of these cues in tissue function necessitates the development of physically tunable culture platforms, but current approaches to create such materials have produced scaffolds that either exhibit a limited mechanical range or are unable to recapitulate the fibrous nature of in vivo tissues. Here we report a novel interpenetrating network (IPN) of gelatin-methacrylate (gelMA) and collagen I that enables independent tuning of fiber density and scaffold stiffness across a physiologically-relevant range of shear moduli (2-12 kPa), while maintaining constant extracellular matrix content. This biomaterial system was applied to examine how changes in the physical micro environment affect cell types associated with the tumor microenvironment. By increasing fiber density while maintaining constant stiffness, we found that MDA-MB-231 breast tumor cells required the presence of fibers to invade the surrounding matrix, while endothelial cells (ECs) did not. Meanwhile, increasing IPN stiffness independently of fiber content yielded decreased invasion and sprouting for both MDA-MB-231 cells and ECs. These results highlight the importance of decoupling features of the microenvironment to uncover their individual effects on cell behavior, in addition to demonstrating that individual cell types within a tissue may be differentially affected by the same changes in physical features. The mechanical range and fibrous nature of this tunable biomaterial platform enable mimicry of a wide variety of tissues, and may yield more precise identification of targets which may be exploited to develop interventions to control tissue function. (C) 2017 Elsevier Ltd. All rights reserved.
引用
收藏
页码:125 / 135
页数:11
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