15502-m-pleumeekers

350. Nimeskern, L., et al., Magnetic Resonance Imaging of the Ear for Patient-Specific Reconstructive Surgery. PloS one, 2014. 9 (8): p. e104975. 351. Bouxsein, M.L., et al., Guidelines for assessment of bone microstructure in rodents using micro-computed tomography. Journal of bone and mineral research : the official journal of the American Society for Bone and Mineral Research, 2010. 25 (7): p. 1468-86. 352. FDA, U.S., Guidance for Industry - Pyrogen and Endotoxins Testing: Questions and Answers , U.S.D.o.H.H. Services, Editor. June 2012, U.S. Food and Drug Administration: Silver Spring. p. 8. 353. Enobakhare, B.O., D.L. Bader, and D.A. Lee, Quantification of sulfated glycosaminoglycans in chondrocyte/alginate cultures, by use of 1,9-dimethylmethylene blue. Analytical biochemistry, 1996. 243 (1): p. 189-91. 354. Stok, K.S., et al., Mechano-functional assessment of human mesenchymal stem cells grown in three- dimensional hyaluronan-based scaffolds for cartilage tissue engineering. Journal of biomedical materials research. Part A, 2010. 93 (1): p. 37-45. 355. Dhumal, N.R., H.J. Kim, and J. Kiefer, Molecular interactions in 1-ethyl-3-methylimidazolium acetate ion pair: a density functional study. The journal of physical chemistry. A, 2009. 113 (38): p. 10397-404. 356. Viell, J. and W. Marquardt, Concentration measurements in ionic liquid-water mixtures by mid-infrared spectroscopy and indirect hard modeling. Applied Spectroscopy, 2012. 66 (2): p. 208-17. 357. Chen, H.-L., et al., Cytotoxicity of Imidazole Ionic Liquids in Human Lung Carcinoma A549 Cell Line. J Chin Chem Soc-Taip, 2014. 61 (7): p. 763-769. 358. Marijnissen, W.J., et al., Alginate as a chondrocyte-delivery substance in combination with a non-woven scaffold for cartilage tissue engineering. Biomaterials, 2002. 23 (6): p. 1511-7. 359. Marijnissen, W.J., et al., Tissue-engineered cartilage using serially passaged articular chondrocytes. Chondrocytes in alginate, combined in vivo with a synthetic (E210) or biologic biodegradable carrier (DBM). Biomaterials, 2000. 21 (6): p. 571-80. 360. Puelacher, W.C., et al., Tissue-engineered growth of cartilage: the effect of varying the concentration of chondrocytes seeded onto synthetic polymer matrices. International journal of oral and maxillofacial surgery, 1994. 23 (1): p. 49-53. 361. Malm, C.J., et al., Small calibre biosynthetic bacterial cellulose blood vessels: 13-months patency in a sheep model. Scandinavian Cardiovascular Journal, 2012. 46 (1): p. 57-62. 362. Lau, A., et al., Indentation stiffness of aging human costal cartilage. Acta Biomater, 2008. 4 (1): p. 97- 103. 363. Griffin, M.F., et al., Biomechanical Characterisation of the Human Auricular Cartilages; Implications for Tissue Engineering. Ann Biomed Eng, 2016. 364. Nimeskern, L., Spatial and temporal mapping of native auricular elastic cartilage. Abstracts Annual Meeting, Swiss Society for Biomedical Engineering, 2011. 365. Chen, S., et al., Strategies to minimize hypertrophy in cartilage engineering and regeneration. Genes Dis, 2015. 2 (1): p. 76-95. 366. Jansen, I.D., et al., Type II and VI collagen in nasal and articular cartilage and the effect of IL-1alpha on the distribution of these collagens. J Mol Histol, 2010. 41 (1): p. 9-17. 367. Morrison, K.A., et al., Optimizing cell sourcing for clinical translation of tissue engineered ears. Biofabrication, 2016. 9 (1): p. 015004. 368. Zhao, X., et al., Chondrogenesis by bone marrow-derived mesenchymal stem cells grown in chondrocyte- conditioned medium for auricular reconstruction. J Tissue Eng Regen Med, 2016. 369. Zhang, L., et al., Co-culture of microtic chondrocyte with BMSC to generate tissue engineered cartilage. Tissue Eng Part A, 2011. 370. Melgarejo-Ramirez, Y., et al., Characterization of pediatric microtia cartilage: a reservoir of chondrocytes for auricular reconstruction using tissue engineering strategies. Cell Tissue Bank, 2016. 17 (3): p. 481-9. 371. Thomson, J.A., et al., Embryonic stem cell lines derived from human blastocysts. Science, 1998. 282 (5391): p. 1145-7. 372. Takahashi, K., et al., Induction of pluripotent stem cells from adult human fibroblasts by defined factors. Cell, 2007. 131 (5): p. 861-72. 373. Bigdeli, N., et al., Coculture of human embryonic stem cells and human articular chondrocytes results in significantly altered phenotype and improved chondrogenic differentiation. Stem Cells, 2009. 27 (8): p. 1812-21. 374. Qu, C., et al., Chondrogenic differentiation of human pluripotent stem cells in chondrocyte co-culture. Int J Biochem Cell Biol, 2013. 45 (8): p. 1802-12. 217 REFERENCES

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