Silk hydrogel for cartilage tissue engineering.
暂无分享,去创建一个
David L Kaplan | Gordana Vunjak-Novakovic | G. Vunjak‐Novakovic | D. Kaplan | Xiaoqin Wang | P. G. Chao | Xiaoqin Wang | Lin Sun | Supansa Yodmuang | Pen-Hsiu Grace Chao | Supansa Yodmuang | Lin Sun | D. Kaplan
[1] G. Vunjak‐Novakovic,et al. Cartilage-like tissue engineering using silk scaffolds and mesenchymal stem cells. , 2006, Tissue engineering.
[2] Ung-Jin Kim,et al. Structure and properties of silk hydrogels. , 2004, Biomacromolecules.
[3] Yin Xiao,et al. The osteogenic properties of CaP/silk composite scaffolds. , 2010, Biomaterials.
[4] David L Kaplan,et al. Silk-based biomaterials. , 2003, Biomaterials.
[5] S E Carver,et al. Semi-continuous perfusion system for delivering intermittent physiological pressure to regenerating cartilage. , 1999, Tissue engineering.
[6] Gerard A. Ateshian,et al. Influence of Seeding Density and Dynamic Deformational Loading on the Developing Structure/Function Relationships of Chondrocyte-Seeded Agarose Hydrogels , 2002, Annals of Biomedical Engineering.
[7] P. Gatenholm,et al. Effect of cell seeding concentration on the quality of tissue engineered constructs loaded with adult human articular chondrocytes , 2008, Journal of tissue engineering and regenerative medicine.
[8] D. Kaplan,et al. Mechanisms of silk fibroin sol-gel transitions. , 2006, The journal of physical chemistry. B.
[9] David L Kaplan,et al. Nanolayer biomaterial coatings of silk fibroin for controlled release. , 2007, Journal of controlled release : official journal of the Controlled Release Society.
[10] Q. Feng,et al. Self-assembly model, hepatocytes attachment and inflammatory response for silk fibroin/chitosan scaffolds , 2009, Biomedical materials.
[11] Robert A. Brown,et al. Guiding cell migration in 3D: a collagen matrix with graded directional stiffness. , 2009, Cell motility and the cytoskeleton.
[12] Moonsoo Jin,et al. Effects of dynamic compressive loading on chondrocyte biosynthesis in self-assembling peptide scaffolds. , 2004, Journal of biomechanics.
[13] R. Reis,et al. Silk fibroin microparticles as carriers for delivery of human recombinant bone morphogenetic protein-2: in vitro and in vivo bioactivity. , 2010, Tissue engineering. Part C, Methods.
[14] F. Baaijens,et al. Essential environmental cues from the satellite cell niche: optimizing proliferation and differentiation. , 2009, American journal of physiology. Cell physiology.
[15] D L Butler,et al. Functional tissue engineering: the role of biomechanics. , 2000, Journal of biomechanical engineering.
[16] Alexander Augst,et al. Bone and cartilage tissue constructs grown using human bone marrow stromal cells, silk scaffolds and rotating bioreactors. , 2006, Biomaterials.
[17] G. Ateshian,et al. Dynamic loading of deformable porous media can induce active solute transport. , 2008, Journal of biomechanics.
[18] Ivan Martin,et al. Silk matrix for tissue engineered anterior cruciate ligaments. , 2002, Biomaterials.
[19] H. Stegemann,et al. Determination of hydroxyproline. , 1967, Clinica chimica acta; international journal of clinical chemistry.
[20] B. A. Byers,et al. The beneficial effect of delayed compressive loading on tissue-engineered cartilage constructs cultured with TGF-beta3. , 2007, Osteoarthritis and cartilage.
[21] Ung-Jin Kim,et al. Three-dimensional aqueous-derived biomaterial scaffolds from silk fibroin. , 2005, Biomaterials.
[22] R. Postlethwait. Long‐Term Comparative Study of Nonabsorbable Sutures , 1970, Annals of surgery.
[23] G A Ateshian,et al. Experimental verification and theoretical prediction of cartilage interstitial fluid pressurization at an impermeable contact interface in confined compression. , 1998, Journal of biomechanics.
[24] Gerard A Ateshian,et al. Spatial and temporal development of chondrocyte-seeded agarose constructs in free-swelling and dynamically loaded cultures. , 2006, Journal of biomechanics.
[25] K. Smetana. Cell biology of hydrogels. , 1993, Biomaterials.
[26] G A Ateshian,et al. Functional tissue engineering of articular cartilage through dynamic loading of chondrocyte-seeded agarose gels. , 2000, Journal of biomechanical engineering.
[27] S. Park,et al. Electrospun silk fibroin scaffolds with macropores for bone regeneration: an in vitro and in vivo study. , 2010, Tissue engineering. Part A.
[28] A Ratcliffe,et al. The effects of matrix compression on proteoglycan metabolism in articular cartilage explants. , 1994, Osteoarthritis and cartilage.
[29] S. Sen,et al. Matrix Elasticity Directs Stem Cell Lineage Specification , 2006, Cell.
[30] B. Obradovic,et al. Bioreactor cultivation conditions modulate the composition and mechanical properties of tissue‐engineered cartilage , 1999, Journal of orthopaedic research : official publication of the Orthopaedic Research Society.
[31] D. Buttle,et al. Improved quantitation and discrimination of sulphated glycosaminoglycans by use of dimethylmethylene blue. , 1986, Biochimica et biophysica acta.
[32] Hiromi Yamada,et al. Preparation of undegraded native molecular fibroin solution from silkworm cocoons , 2001 .
[33] David L Kaplan,et al. Sonication-induced gelation of silk fibroin for cell encapsulation. , 2008, Biomaterials.
[34] Adam J. Engler,et al. Matrix elasticity directs stem cell differentiation , 2006 .
[35] L. Klareskog,et al. Characterization of the antibody response in mice with type II collagen-induced arthritis, using monoclonal anti-type II collagen antibodies. , 1986, Arthritis and rheumatism.
[36] M. Tsukada,et al. Physico-chemical properties of silk fibroin membrane as a biomaterial. , 1990, Biomaterials.
[37] M B McCarthy,et al. Functionalized silk-based biomaterials for bone formation. , 2001, Journal of biomedical materials research.
[38] D. Kaplan,et al. Soft tissue augmentation using silk gels: an in vitro and in vivo study. , 2009, Journal of periodontology.
[39] P Aebischer,et al. Hydrogel-based three-dimensional matrix for neural cells. , 1995, Journal of biomedical materials research.
[40] F Dubrana,et al. Autologous chondrocyte implantation in a novel alginate-agarose hydrogel: outcome at two years. , 2008, The Journal of bone and joint surgery. British volume.
[41] G. Vunjak‐Novakovic,et al. Silk based biomaterials to heal critical sized femur defects. , 2006, Bone.
[42] P. Benya,et al. Dedifferentiated chondrocytes reexpress the differentiated collagen phenotype when cultured in agarose gels , 1982, Cell.
[43] B. A. Byers,et al. Transient exposure to transforming growth factor beta 3 under serum-free conditions enhances the biomechanical and biochemical maturation of tissue-engineered cartilage. , 2008, Tissue engineering. Part A.
[44] D. Kaplan,et al. In vivo degradation of three-dimensional silk fibroin scaffolds. , 2008, Biomaterials.
[45] G. Vunjak‐Novakovic,et al. Cultivation of cell‐polymer cartilage implants in bioreactors , 1993, Journal of cellular biochemistry.
[46] D. Kaplan,et al. Silk fibroin solution properties related to assembly and structure. , 2008, Macromolecular bioscience.
[47] R E Guldberg,et al. Variations in matrix composition and GAG fine structure among scaffolds for cartilage tissue engineering. , 2005, Osteoarthritis and cartilage.