Interpenetrating polymer network hydrogel scaffolds for artificial cornea periphery
暂无分享,去创建一个
Jennifer R. Cochran | Curtis W. Frank | Luo Luo Zheng | J. Cochran | Courtney H. Fox | C. Frank | Dale J. Waters | Rachel Parke-Houben | Christopher N. Ta | C. Ta | Rachel Parke-Houben | L. Zheng | D. Waters
[1] Fan Zhang,et al. Design and fabrication of an artificial cornea based on a photolithographically patterned hydrogel construct , 2007, Biomedical microdevices.
[2] C. Frank,et al. Protein diffusion in photopolymerized poly(ethylene glycol) hydrogel networks , 2011, Biomedical materials.
[3] J. Noolandi,et al. Glucose-Permeable Interpenetrating Polymer Network Hydrogels for Corneal Implant Applications: A Pilot Study , 2008, Current eye research.
[4] J. Noolandi,et al. Bioactive interpenetrating polymer network hydrogels that support corneal epithelial wound healing. , 2009, Journal of biomedical materials research. Part A.
[5] N. J. A. Sloane,et al. Sphere Packings, Lattices and Groups , 1987, Grundlehren der mathematischen Wissenschaften.
[6] L. Joubert. Visualization of Hydrogels with Variable-Pressure SEM , 2009, Microscopy and Microanalysis.
[7] L G Griffith,et al. Effect of pore size and void fraction on cellular adhesion, proliferation, and matrix deposition. , 2001, Tissue engineering.
[8] Massoud Motamedi,et al. Inverted‐Colloidal‐Crystal Hydrogel Matrices as Three‐Dimensional Cell Scaffolds , 2005 .
[9] Ahmed Elsheikh,et al. Determination of the modulus of elasticity of the human cornea. , 2007, Journal of refractive surgery.
[10] G. W. Nyquist,et al. Rheology of the cornea: experimental techniques and results. , 1968, Experimental eye research.
[11] Ali Khademhosseini,et al. Synthesis and characterization of photocrosslinkable gelatin and silk fibroin interpenetrating polymer network hydrogels. , 2011, Acta biomaterialia.
[12] I. K. Kwon,et al. Fibroblast culture on surface-modified poly (glycolide-co-ε-caprolactone) scaffold for soft tissue regeneration , 2001 .
[13] C. Chu,et al. Effect of the molecular weight of polyethylene glycol (PEG) on the properties of chitosan-PEG-poly(N-isopropylacrylamide) hydrogels , 2008, Journal of materials science. Materials in medicine.
[14] Y Zeng,et al. A comparison of biomechanical properties between human and porcine cornea. , 2001, Journal of biomechanics.
[15] M. Srinivasan,et al. Corneal blindness: a global perspective. , 2001, Bulletin of the World Health Organization.
[16] D. Maurice,et al. The mechanical properties of the rabbit and human cornea. , 1986, Journal of biomechanics.
[17] Won-Gun Koh,et al. Biomimetic strain hardening in interpenetrating polymer network hydrogels , 2007 .
[18] Hyun-Jong Cho,et al. Interpenetrating polymer network (IPN) scaffolds of sodium hyaluronate and sodium alginate for chondrocyte culture. , 2011, Colloids and surfaces. B, Biointerfaces.
[19] M C Davies,et al. Interactions of 3T3 fibroblasts and endothelial cells with defined pore features. , 2002, Journal of biomedical materials research.
[20] I. Vijay,et al. A method for the high efficiency of water-soluble carbodiimide-mediated amidation. , 1994, Analytical biochemistry.
[21] N. Kotov,et al. Inverted colloidal crystals as three-dimensional cell scaffolds. , 2004, Langmuir : the ACS journal of surfaces and colloids.
[22] B. Ratner,et al. Quantitative characterization of sphere‐templated porous biomaterials , 2005 .
[23] N. Kotov,et al. PAPER www.rsc.org/materials | Journal of Materials Chemistry Inverted colloidal crystals as three-dimensional microenvironments for cellular co-cultures , 2006 .
[24] Buddy D Ratner,et al. Degradable, thermo-sensitive poly(N-isopropyl acrylamide)-based scaffolds with controlled porosity for tissue engineering applications. , 2010, Biomacromolecules.