Tuning Viscoelasticity in Alginate Hydrogels for 3D Cell Culture Studies

被引:58
作者
Charbonier, Frank [1 ]
Indana, Dhiraj [1 ]
Chaudhuri, Ovijit [1 ]
机构
[1] Stanford Univ, Dept Mech Engn, Stanford, CA 94305 USA
来源
CURRENT PROTOCOLS | 2021年 / 1卷 / 05期
基金
美国国家科学基金会; 美国国家卫生研究院;
关键词
3D cell culture; alginate hydrogels; mechanotransduction; viscoelasticity; MATRIX; STIFFNESS; DEGRADATION; INDUCTION; NETWORKS; BEHAVIOR;
D O I
10.1002/cpz1.124
中图分类号
Q5 [生物化学];
学科分类号
071010 ; 081704 ;
摘要
Physical properties of the extracellular matrix (ECM) affect cell behaviors ranging from cell adhesion and migration to differentiation and gene expression, a process known as mechanotransduction. While most studies have focused on the impact of ECM stiffness, using linearly elastic materials such as polyacrylamide gels as cell culture substrates, biological tissues and ECMs are viscoelastic, which means they exhibit time-dependent mechanical responses and dissipate mechanical energy. Recent studies have revealed ECM viscoelasticity, independent of stiffness, as a critical physical parameter regulating cellular processes. These studies have used biomaterials with tunable viscoelasticity as cell-culture substrates, with alginate hydrogels being one of the most commonly used systems. Here, we detail the protocols for three approaches to modulating viscoelasticity in alginate hydrogels for 2D and 3D cell culture studies, as well as the testing of their mechanical properties. Viscoelasticity in alginate hydrogels can be tuned by varying the molecular weight of the alginate polymer, changing the type of crosslinker-ionic versus covalent-or by grafting short poly(ethylene-glycol) (PEG) chains to the alginate polymer. As these approaches are based on commercially available products and simple chemistries, these protocols should be accessible for scientists in the cell biology and bioengineering communities. (c) 2021 Wiley Periodicals LLC.
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页数:28
相关论文
共 47 条
[1]   A dysfunctional TRPV4-GSK3β pathway prevents osteoarthritic chondrocytes from sensing changes in extracellular matrix viscoelasticity [J].
Agarwal, Pranay ;
Lee, Hong-pyo ;
Smeriglio, Piera ;
Grandi, Fiorella ;
Goodman, Stuart ;
Chaudhuri, Ovijit ;
Bhutani, Nidhi .
NATURE BIOMEDICAL ENGINEERING, 2021, 5 (12) :1472-1484
[2]   Controlling alginate gel degradation utilizing partial oxidation and bimodal molecular weight distribution [J].
Boontheekul, T ;
Kong, HJ ;
Mooney, DJ .
BIOMATERIALS, 2005, 26 (15) :2455-2465
[3]   Degradation of partially oxidized alginate and its potential application for tissue engineering [J].
Bouhadir, KH ;
Lee, KY ;
Alsberg, E ;
Damm, KL ;
Anderson, KW ;
Mooney, DJ .
BIOTECHNOLOGY PROGRESS, 2001, 17 (05) :945-950
[4]   Multiscale Mechanics of Fibrin Polymer: Gel Stretching with Protein Unfolding and Loss of Water [J].
Brown, Andre E. X. ;
Litvinov, Rustem I. ;
Discher, Dennis E. ;
Purohit, Prashant K. ;
Weisel, John W. .
SCIENCE, 2009, 325 (5941) :741-744
[5]   Photopolymerized dynamic hydrogels with tunable viscoelastic properties through thioester exchange [J].
Brown, Tobin E. ;
Carberry, Benjamin J. ;
Worrell, Brady T. ;
Dudaryeva, Oksana Y. ;
McBride, Matthew K. ;
Bowman, Christopher N. ;
Anseth, Kristi S. .
BIOMATERIALS, 2018, 178 :496-503
[6]   The effect of time-dependent deformation of viscoelastic hydrogels on myogenic induction and Rac1 activity in mesenchymal stem cells [J].
Cameron, Andrew R. ;
Frith, Jessica E. ;
Gomez, Guillermo A. ;
Yap, Alpha S. ;
Cooper-White, Justin J. .
BIOMATERIALS, 2014, 35 (06) :1857-1868
[7]   The influence of substrate creep on mesenchymal stem cell behaviour and phenotype [J].
Cameron, Andrew R. ;
Frith, Jessica E. ;
Cooper-White, Justin J. .
BIOMATERIALS, 2011, 32 (26) :5979-5993
[8]   A novel method to make viscoelastic polyacrylamide gels for cell culture and traction force microscopy [J].
Charrier, Elisabeth E. ;
Pogoda, Katarzyna ;
Li, Robin ;
Park, Chan Young ;
Fredberg, Jeffrey J. ;
Janmey, Paul A. .
APL BIOENGINEERING, 2020, 4 (03)
[9]   Control of cell morphology and differentiation by substrates with independently tunable elasticity and viscous dissipation [J].
Charrier, Elisabeth E. ;
Pogoda, Katarzyna ;
Wells, Rebecca G. ;
Janmey, Paul A. .
NATURE COMMUNICATIONS, 2018, 9
[10]   Effects of extracellular matrix viscoelasticity on cellular behaviour [J].
Chaudhuri, Ovijit ;
Cooper-White, Justin ;
Janmey, Paul A. ;
Mooney, David J. ;
Shenoy, Vivek B. .
NATURE, 2020, 584 (7822) :535-546