15502-m-pleumeekers

171. Lai, W.M., J.S. Hou, and V.C. Mow, A triphasic theory for the swelling and deformation behaviors of articular cartilage. J Biomech Eng, 1991. 113 (3): p. 245-58. 172. Li, L.P., M.D. Buschmann, and A. Shirazi-Adl, A fibril reinforced nonhomogeneous poroelastic model for articular cartilage: inhomogeneous response in unconfined compression. J Biomech, 2000. 33 (12): p. 1533-41. 173. McCutchen, C.W., Cartilages is poroelastic, not viscoelastic (including an exact theorem about strain energy and viscous loss, and an order of magnitude relation for equilibration time). J Biomech, 1982. 15 (4): p. 325-7. 174. Mow, V.C. and J.M. Mansour, The nonlinear interaction between cartilage deformation and interstitial fluid flow. J Biomech, 1977. 10 (1): p. 31-9. 175. Spilker, R.L., J.K. Suh, and V.C. Mow, A finite element analysis of the indentation stress-relaxation response of linear biphasic articular cartilage. J Biomech Eng, 1992. 114 (2): p. 191-201. 176. Guilak, F., et al., The deformation behavior and mechanical properties of chondrocytes in articular cartilage. Osteoarthritis Cartilage, 1999. 7 (1): p. 59-70. 177. Suh, J.K. and R.L. Spilker, Indentation analysis of biphasic articular cartilage: nonlinear phenomena under finite deformation. J Biomech Eng, 1994. 116 (1): p. 1-9. 178. June, R.K. and D.P. Fyhrie, Temperature effects in articular cartilage biomechanics. J Exp Biol, 2010. 213 (Pt 22): p. 3934-40. 179. Mow, V.C., et al., Biphasic indentation of articular cartilage--II. A numerical algorithm and an experimental study. J Biomech, 1989. 22 (8-9): p. 853-61. 180. Edwards, C.A. and W.D. O'Brien, Jr., Modified assay for determination of hydroxyproline in a tissue hydrolyzate. Clin Chim Acta, 1980. 104 (2): p. 161-7. 181. Driscoll, B.P. and S.R. Baker, Reconstruction of nasal alar defects. Arch Facial Plast Surg, 2001. 3 (2): p. 91-9. 182. Ray, E., et al., Review of options for burned ear reconstruction. J Craniofac Surg, 2010. 21 (4): p. 1165-9. 183. Kridel, R.W., et al., Long-term use and follow-up of irradiated homologous costal cartilage grafts in the nose. Arch Facial Plast Surg, 2009. 11 (6): p. 378-94. 184. Bhandari, P.S., Total ear reconstruction in post burn deformity. Burns, 1998. 24 (7): p. 661-70. 185. Yanaga, H., et al., Generating ears from cultured autologous auricular chondrocytes by using two-stage implantation in treatment of microtia. Plast Reconstr Surg, 2009. 124 (3): p. 817-25. 186. Qing-Hua, Y., et al., The significance of the biomechanical properties of costal cartilage in the timing of ear reconstruction surgery. J Plast Reconstr Aesthet Surg, 2011. 64 (6): p. 742-6. 187. Anthwal, N. and H. Thompson, The development of the mammalian outer and middle ear. J Anat, 2016. 228 (2): p. 217-32. 188. Som, P.M. and T.P. Naidich, Illustrated review of the embryology and development of the facial region, part 1: Early face and lateral nasal cavities. AJNR Am J Neuroradiol, 2013. 34 (12): p. 2233-40. 189. Popko, M., et al., Histological structure of the nasal cartilages and their perichondrial envelope. I. The septal and lobular cartilage. Rhinology, 2007. 45 (2): p. 148-52. 190. Mansfield, J.C., et al., Collagen fiber arrangement in normal and diseased cartilage studied by polarization sensitive nonlinear microscopy. J Biomed Opt, 2008. 13 (4): p. 044020. 191. Zhu, X., et al., Monitoring wound healing of elastic cartilage using multiphoton microscopy. Osteoarthritis Cartilage, 2013. 21 (11): p. 1799-806. 192. McKee, C.T., et al., Indentation versus tensile measurements of Young's modulus for soft biological tissues. Tissue Eng Part B Rev, 2011. 17 (3): p. 155-64. 193. Hsieh, C.H., et al., Surface ultrastructure and mechanical property of human chondrocyte revealed by atomic force microscopy. Osteoarthritis Cartilage, 2008. 16 (4): p. 480-8. 194. Sanchez-Adams, J., R.E. Wilusz, and F. Guilak, Atomic force microscopy reveals regional variations in the micromechanical properties of the pericellular and extracellular matrices of the meniscus. J Orthop Res, 2013. 31 (8): p. 1218-25. 195. Marrese, M., V. Guarino, and L. Ambrosio, Atomic Force Microscopy: A Powerful Tool to Address Scaffold Design in Tissue Engineering. J Funct Biomater, 2017. 8 (1). 196. Guilak, F., et al., Control of stem cell fate by physical interactions with the extracellular matrix. Cell Stem Cell, 2009. 5 (1): p. 17-26. 197. Chavan, D., et al., Ferrule-top nanoindenter: an optomechanical fiber sensor for nanoindentation. Rev Sci Instrum, 2012. 83 (11): p. 115110. 198. Oliver, W.C., An improved technique for determining hardness and elastic modulus using load and displacement sensing indentation experiments. Journal of materials research, 1992. 7 (6): p. 1564–1583. 210 REFERENCES

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