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  Mechanical properties of cell- and microgel bead-laden oxidized alginate-gelatin hydrogels

Distler, T., Kretzschmar, L., Schneidereit, D., Girardo, S., Goswami, R., Friedrich, O., et al. (2021). Mechanical properties of cell- and microgel bead-laden oxidized alginate-gelatin hydrogels. Biomaterials Science, (9), 3051-3068. doi:10.1039/D0BM02117B.

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Biomat Sci 2021 Distler.pdf (Publisher version), 34MB
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Biomat Sci 2021 Distler.pdf
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© The Royal Society of Chemistry 2021 This article is licensed under a Creative Commons Attribution-NonCommercial 3.0 Unported Licence.

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 Creators:
Distler, Thomas1, Author
Kretzschmar, Lena1, Author
Schneidereit, Dominik1, Author
Girardo, Salvatore2, Author           
Goswami, Ruchi2, Author           
Friedrich, Oliver1, Author
Detsch, Rainer1, Author
Guck, Jochen1, 2, 3, Author           
Boccaccini, Aldo R.1, Author
Budday, Silvia1, Author
Affiliations:
1Friedrich-Alexander-Universität Erlangen-Nürnberg, ou_persistent22              
2Guck Division, Max Planck Institute for the Science of Light, Max Planck Society, ou_3164416              
3Guck Division, Max-Planck-Zentrum für Physik und Medizin, Max Planck Institute for the Science of Light, Max Planck Society, ou_3596668              

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 Abstract: 3D-printing technologies, such as biofabrication, capitalize on the homogeneous distribution and growth of cells inside biomaterial hydrogels, ultimately aiming to allow for cell differentiation, matrix remodeling, and functional tissue analogues. However, commonly, only the mechanical properties of the bioinks or matrix materials are assessed, while the detailed influence of cells on the resulting mechanical properties of hydrogels remains insufficiently understood. Here, we investigate the properties of hydrogels containing cells and spherical PAAm microgel beads through multi-modal complex mechanical analyses in the small- and large-strain regimes. We evaluate the individual contributions of different filler concentrations and a non-fibrous oxidized alginate-gelatin hydrogel matrix on the overall mechanical behavior in compression, tension, and shear. Through material modeling, we quantify parameters that describe the highly nonlinear mechanical response of soft composite materials. Our results show that the stiffness significantly drops for cell- and bead concentrations exceeding four million per milliliter hydrogel. In addition, hydrogels with high cell concentrations (≥6 mio ml−1) show more pronounced material nonlinearity for larger strains and faster stress relaxation. Our findings highlight cell concentration as a crucial parameter influencing the final hydrogel mechanics, with implications for microgel bead drug carrier-laden hydrogels, biofabrication, and tissue engineering.

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Language(s): eng - English
 Dates: 2021-02-092021-03-05
 Publication Status: Published online
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 Identifiers: DOI: 10.1039/D0BM02117B
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Title: Biomaterials Science
Source Genre: Journal
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Publ. Info: Cambridge : Royal Society of Chemistry
Pages: - Volume / Issue: (9) Sequence Number: - Start / End Page: 3051 - 3068 Identifier: ISSN: 2047-4830
CoNE: https://pure.mpg.de/cone/journals/resource/2047-4830