Please use this identifier to cite or link to this item: https://hdl.handle.net/2440/137208
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Type: Journal article
Title: Biophysical properties of hydrogels for mimicking tumor extracellular matrix
Author: Cameron, A.P.
Zeng, B.
Liu, Y.
Wang, H.
Soheilmoghaddam, M.
Cooper-White, J.
Zhao, C.-X.
Citation: Biomaterials Advances, 2022; 136:1-12
Publisher: Elsevier BV
Issue Date: 2022
ISSN: 2772-9508
2772-9508
Statement of
Responsibility: 
Anna P. Cameron, Bijun Zeng, Yun Liu, Haofei Wang, Farhad Soheilmoghaddam, Justin Cooper-White, Chun-Xia Zhao
Abstract: The extracellular matrix (ECM) is an essential component of the tumor microenvironment. It plays a critical role in regulating cell-cell and cell-matrix interactions. However, there is lack of systematic and comparative studies on different widely-used ECM mimicking hydrogels and their properties, making the selection of suitable hydrogels for mimicking different in vivo conditions quite random. This study systematically evaluates the biophysical attributes of three widely used natural hydrogels (Matrigel, collagen gel and agarose gel) including complex modulus, loss tangent, diffusive permeability and pore size. A new and facile method was developed combining Critical Point Drying, Scanning Electron Microscopy imaging and a MATLAB image processing program (CSM method) for the characterization of hydrogel microstructures. This CSM method allows accurate measurement of the hydrogel pore size down to nanometer resolution. Furthermore, a microfluidic device was implemented to measure the hydrogel permeability (Pd) as a function of particle size and gel concentration. Among the three gels, collagen gel has the lowest complex modulus, medium pore size, and the highest loss tangent. Agarose gel exhibits the highest complex modulus, the lowest loss tangent and the smallest pore size. Collagen gel and Matrigel produced complex moduli close to that estimated for cancer ECM. The Pd of these hydrogels decreases significantly with the increase of particle size. By assessing different hydrogels' biophysical characteristics, this study provides valuable insights for tailoring their properties for various three-dimensional cancer models.
Keywords: Cancer; Hydrogel; Extracellular matrix; Biophysical properties; Complex modulus; Loss tangent
Rights: © 2022 Elsevier B.V. All rights reserved.
DOI: 10.1016/j.bioadv.2022.212782
Grant ID: http://purl.org/au-research/grants/arc/FT140100726
http://purl.org/au-research/grants/arc/DP200101238
Published version: http://dx.doi.org/10.1016/j.bioadv.2022.212782
Appears in Collections:Chemical Engineering publications

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