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Measuring cellular forces using bis-aliphatic hydrazone crosslinked stress-relaxing hydrogelsElectronic supplementary information (ESI) available. See DOI: 10.1039/c4sm01365d

Studies focused on understanding the role of matrix biophysical signals on cells, especially those when cells are encapsulated in hydrogels that are locally remodelled, are often complicated by appropriate methods to measure differences between the bulk and local material properties. From this persp...

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Bibliographic Details
Main Authors: McKinnon, D. D, Domaille, D. W, Brown, T. E, Kyburz, K. A, Kiyotake, E, Cha, J. N, Anseth, K. S
Format: Article
Language:English
Online Access:Get full text
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Summary:Studies focused on understanding the role of matrix biophysical signals on cells, especially those when cells are encapsulated in hydrogels that are locally remodelled, are often complicated by appropriate methods to measure differences between the bulk and local material properties. From this perspective, stress-relaxing materials that allow long-term culture of embedded cells provide an opportunity to elucidate aspects of this biophysical signalling. In particular, rheological characterization of the stress relaxation properties allows one to link a bulk material measurement to local aspects of cellular functions by quantifying the corresponding cellular forces that must be applied locally. Here, embryonic stem cell-derived motor neurons were encapsulated in a well-characterized covalently adaptable bis-aliphatic hydrazone crosslinked PEG hydrogel, and neurite outgrowth was observed over time. Using fundamental physical relationships describing classical mechanics and viscoelastic materials, we calculated the forces and energies involved in neurite extension, the results of which provide insight to the role of biophysical cues on this process. A covalently adaptable hydrazone-crosslinked PEG hydrogel is used to measure the force of extension exerted by motor neurites.
ISSN:1744-683X
1744-6848
DOI:10.1039/c4sm01365d