Biomedical Engineering Reference
In-Depth Information
182. Park JS, Woo DG, Sun BK, Chung HM, Im SJ, Choi YM et al (2007) In vitro and in vivo
test of PEG/PCL-based hydrogel scaffold for cell delivery application. J Control Release
124(1-2):51-59
183. Chen JP, Su CH (2011) Surface modification of electrospun PLLA nanofibers by plasma
treatment and cationized gelatin immobilization for cartilage tissue engineering. Acta
Biomater 7(1):234-243
184. Martins A, Pinho ED, Faria S, Pashkuleva I, Marques AP, Reis RL et al (2009) Surface
modification of electrospun polycaprolactone nanofiber meshes by plasma treatment to
enhance biological performance. Small 5(10):1195-1206
185. Kim K, Dean D, Lu A, Mikos AG, Fisher JP (2011) Early osteogenic signal expression of
rat bone marrow stromal cells is influenced by both hydroxyapatite nanoparticle content and
initial cell seeding density in biodegradable nanocomposite scaffolds. Acta Biomater
7(3):1249-1264
186. Vlacic-Zischke J, Hamlet SM, Friis T, Tonetti MS, Ivanovski S (2011) The influence of
surface microroughness and hydrophilicity of titanium on the up-regulation of TGFbeta/
BMP signalling in osteoblasts. Biomaterials 32(3):665-671
187. Lee JW, Kim YH, Park KD, Jee KS, Shin JW, Hahn SB (2004) Importance of integrin
beta1-mediated
cell
adhesion
on
biodegradable
polymers
under
serum
depletion
in
mesenchymal stem cells and chondrocytes. Biomaterials 25(10):1901-1909
188. Hamilton DW, Riehle MO, Monaghan W, Curtis AS (2006) Chondrocyte aggregation on
micrometric surface topography: a time-lapse study. Tissue Eng 12(1):189-199
189. Jeong CG, Hollister SJ (2010) A comparison of the influence of material on in vitro
cartilage tissue engineering with PCL, PGS, and POC 3D scaffold architecture seeded with
chondrocytes. Biomaterials 31(15):4304-4312
190. Kim K, Dean D, Wallace J, Breithaupt R, Mikos AG, Fisher JP (2011) The influence of
stereolithographic scaffold architecture and composition on osteogenic signal expression
with rat bone marrow stromal cells. Biomaterials 32(15):3750-3763
191. Kim K, Yeatts A, Dean D, Fisher JP (2010) Stereolithographic bone scaffold design
parameters: osteogenic differentiation and signal expression. Tissue Eng Part B Rev
16(5):523-539
192. Nuernberger S, Cyran N, Albrecht C, Redl H, Vecsei V, Marlovits S (2011) The influence of
scaffold
architecture
on
chondrocyte
distribution
and
behavior
in
matrix-associated
chondrocyte transplantation grafts. Biomaterials 32(4):1032-1040
193. Li WJ, Mauck RL, Cooper JA, Yuan X, Tuan RS (2007) Engineering controllable
anisotropy in electrospun biodegradable nanofibrous scaffolds for musculoskeletal tissue
engineering. J Biomech 40(8):1686-1693
194. Martins A, Araujo JV, Reis RL, Neves NM (2007) Electrospun nanostructured scaffolds for
tissue engineering applications. Nanomedicine (Lond) 2(6):929-942
195. Li WJ, Jiang YJ, Tuan RS (2006) Chondrocyte phenotype in engineered fibrous matrix is
regulated by fiber size. Tissue Eng 12(7):1775-1785
196. Li WJ, Tuli R, Okafor C, Derfoul A, Danielson KG, Hall DJ et al (2005) A three-
dimensional nanofibrous scaffold for cartilage tissue engineering using human mesenchymal
stem cells. Biomaterials 26(6):599-609
197. Spadaccio C, Rainer A, Trombetta M, Vadala G, Chello M, Covino E et al (2009) Poly-L-
lactic acid/hydroxyapatite electrospun nanocomposites induce chondrogenic differentiation
of human MSC. Ann Biomed Eng 37(7):1376-1389
198. Wise JK, Yarin AL, Megaridis CM, Cho M (2009) Chondrogenic differentiation of human
mesenchymal stem cells on oriented nanofibrous scaffolds: engineering the superficial zone
of articular cartilage. Tissue Eng Part A 15(4):913-921
199. Binulal NS, Deepthy M, Selvamurugan N, Shalumon KT, Suja S, Mony U et al (2010) Role
of nanofibrous poly(caprolactone) scaffolds in human mesenchymal stem cell attachment
and spreading for in vitro bone tissue engineering-response to osteogenic regulators. Tissue
Eng Part A 16(2):393-404
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