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2023

Book Chapter

Characterization of 2D-Poly(glycerol sebacate) bioelastomer films through spectroscopic analysis

Maliger, Raju B., Halley, Peter J. and Cooper-White, Justin J. (2023). Characterization of 2D-Poly(glycerol sebacate) bioelastomer films through spectroscopic analysis. Advanced microscopy: a strong analytical tool for materials science. (pp. 61-76) edited by Merin Sara Thomas, Józef T. Haponiuk, Sabu Thomas and Anne George. Palm Bay, FL ; Boca Raton, FL, United States: Apple Academic Press ; CRC press. doi: 10.1201/9781003282044-4

Characterization of 2D-Poly(glycerol sebacate) bioelastomer films through spectroscopic analysis

2021

Book Chapter

Microfluidic devices for developing tissue scaffolds

Chau, L. T., Frith, J. E., Mills, R. J., Menzies, D. J., Titmarsh, D. M., Cooper-White, J. J. and Zhou, Yu (2021). Microfluidic devices for developing tissue scaffolds. Microfluidic devices for biomedical applications. (pp. 413-435) edited by Xiujun (James) Li and Yu Zhou. Duxford, United Kingdom: Woodhead Publishing. doi: 10.1016/B978-0-12-819971-8.00018-4

Microfluidic devices for developing tissue scaffolds

2018

Book Chapter

Hydrogels for directed stem cell differentiation and tissue repair

Pradal, Clementine and Cooper-White, Justin (2018). Hydrogels for directed stem cell differentiation and tissue repair. Functional Hydrogels as Biomaterials. (pp. 73-93) edited by Jun Li, Yoshihito Osada and Justin Cooper-White. Berlin, Germany: Springer. doi: 10.1007/978-3-662-57511-6_3

Hydrogels for directed stem cell differentiation and tissue repair

2018

Book Chapter

Functional Hydrogels as Biomaterials Preface

Li, Jun, Osada, Yoshihito and Cooper-White, Justin (2018). Functional Hydrogels as Biomaterials Preface. Functional Hydrogels as Biomaterials. (pp. V-VI) edited by Li, J., Osada, Y. and CooperWhite, J.. Berlin, Germany: Springer.

Functional Hydrogels as Biomaterials Preface

2016

Book Chapter

Axon guidance studies using a microfluidics-based chemotropic gradient generator

Pujic, Zac, Nguyen, Huyen, Glass, Nick, Cooper-White, Justin and Goodhill, Geoffrey J. (2016). Axon guidance studies using a microfluidics-based chemotropic gradient generator. Chemotaxis: methods and protocols. (pp. 273-285) edited by 2nd. New York, NY United States: Springer New York. doi: 10.1007/978-1-4939-3480-5_20

Axon guidance studies using a microfluidics-based chemotropic gradient generator

2015

Book Chapter

Controlling stem cell adhesion, proliferation, and differentiation with layer-by-layer films

Wales, Stewart, Tan, Guak-Kim and Cooper-White, Justin.J. (2015). Controlling stem cell adhesion, proliferation, and differentiation with layer-by-layer films. Layer-by-layer films for biomedical applications. (pp. 103-130) edited by Catherine Picart, Frank Caruso and Jean-Claude Voegel. Weinheim, Germany: Wiley. doi: 10.1002/9783527675869.ch6

Controlling stem cell adhesion, proliferation, and differentiation with layer-by-layer films

2013

Book Chapter

Microfluidic devices for developing tissue scaffolds

Chau, L. T., Frith, J. E., Mills, R. J., Menzies, D. J., Titmarsh, D. M. and Cooper-White, J. J. (2013). Microfluidic devices for developing tissue scaffolds. Microfluidic devices for biomedical applications. (pp. 363-387) edited by Xiujun (James) Li and Yu Zhou. Cambridge, United Kingdom: Woodhead Publishing. doi: 10.1533/9780857097040.3.363

Microfluidic devices for developing tissue scaffolds

2013

Book Chapter

Microfluidic platforms for informed tissue scaffold development.

Chau, L. T., Frith, J. E., Mills, R. J., Menzies, D. J., Titmarsh, D. M. and Cooper-White, J. J. (2013). Microfluidic platforms for informed tissue scaffold development.. Microfluidic Devices for Biomedical Applications. (pp. 363-387) edited by Xiujun (James) Li and Yu Zhou. Sawston, Cambridge, UK: Woodhead Publishing. doi: 10.1533/9780857097040

Microfluidic platforms for informed tissue scaffold development.

2012

Book Chapter

Development of defined culture conditions for expansion of human mesenchymal stromal cells for clinical applications

Frith, Jessica E., Jaramillo-Ferrada, Pamela, Mills, Richard J., Cameron, Andrew R., Titmarsh, Drew M., Wolvetang, Ernst J. and Cooper-White, Justin J. (2012). Development of defined culture conditions for expansion of human mesenchymal stromal cells for clinical applications. Stem cells and cancer stem cells: therapeutic applications in disease and injury. (pp. 13-26) edited by M. A. Hayat. Dordrecht, Netherlands: Springer Netherlands. doi: 10.1007/978-94-007-4798-2_2

Development of defined culture conditions for expansion of human mesenchymal stromal cells for clinical applications

2008

Book Chapter

Surface modification using RF oxygen plasma in tissue engineering

Lee, K.Y., Cooper-White, J.J., Keen, I. and Grondahl, L. (2008). Surface modification using RF oxygen plasma in tissue engineering. Tissue Engineering: Roles, Materials and Applications. (pp. 259-274) edited by Barnes, S.J. and Harris, L.P.. New York: Nova Science Publishers Inc.

Surface modification using RF oxygen plasma in tissue engineering

2004

Book Chapter

Production and surface modification of polylactide-based polymeric scaffolds for soft tissue engineerings

Cao, Yang, Croll, Tristan I., Cooper-White, Justin J., O'Connor, Andrea J. and Stevens, Geoffrey W. (2004). Production and surface modification of polylactide-based polymeric scaffolds for soft tissue engineerings. Biopolymer Methods in Tissue Engineering. (pp. 87-112) edited by Anthony P. Hollander and Paul V. Hatton. Totowa, NJ United States: Humana Press. doi: 10.1385/1-59259-428-X:87

Production and surface modification of polylactide-based polymeric scaffolds for soft tissue engineerings