Synthesis and characterization of nanocomposite scaffolds based on triblock copolymer of L-lactide, ε-caprolactone and nano-hydroxyapatite for bone tissue engineering.
暂无分享,去创建一个
[1] E. Díaz,et al. In vitro degradation of PLLA/nHA composite scaffolds , 2014 .
[2] M. Khorasani,et al. Synthesis methods for nanosized hydroxyapatite with diverse structures. , 2013, Acta biomaterialia.
[3] E. Champion. Sintering of calcium phosphate bioceramics. , 2013, Acta biomaterialia.
[4] Z. Li,et al. Preparation of high molecular weight poly(L-lactide-co-caprolactone)(85-15) , 2013, Journal of Wuhan University of Technology-Mater. Sci. Ed..
[5] S. Al-zahrani,et al. In Vitro Biodegradability of Poly(lactic Acid)/Hydroxyapatite Biocomposites Prepared by Solvent-Blending Technique , 2012 .
[6] C. Plummer,et al. Biodegradable polylactide/hydroxyapatite nanocomposite foam scaffolds for bone tissue engineering applications , 2012, Journal of Materials Science: Materials in Medicine.
[7] S. M. Davachi,et al. Synthesis and characterization of a novel terpolymer based on L-lactide, glycolide, and trimethylene carbonate for specific medical applications , 2012 .
[8] S. M. Davachi,et al. Investigating thermal degradation, crystallization and surface behavior of l-lactide, glycolide and trimethylene carbonate terpolymers used for medical applications , 2012 .
[9] S. M. Davachi,et al. Thermal degradation and crystallization behavior of blend-based nanocomposites: Role of clay network formation , 2012 .
[10] N. Annabi,et al. Engineering porous scaffolds using gas-based techniques. , 2011, Current opinion in biotechnology.
[11] S. Venkatraman,et al. Preparation and mechanical behavior of PLGA/nano-BCP composite scaffolds during in-vitro degradation for bone tissue engineering , 2011 .
[12] T. Maekawa,et al. POLYMERIC SCAFFOLDS IN TISSUE ENGINEERING APPLICATION: A REVIEW , 2011 .
[13] Jaebeom Lee,et al. Nanoscale hydroxyapatite particles for bone tissue engineering. , 2011, Acta biomaterialia.
[14] I. Kang,et al. Fabrication of Biodegradable Polyester Nanocomposites by Electrospinning for Tissue Engineering , 2011 .
[15] E. Fortunati,et al. Biodegradable polymer matrix nanocomposites for tissue engineering: A review , 2010 .
[16] H. Mirzadeh,et al. Biocompatibility evaluation of nano-rod hydroxyapatite/gelatin coated with nano-HAp as a novel scaffold using mesenchymal stem cells. , 2009, Journal of biomedical materials research. Part A.
[17] I. Banerjee,et al. Chemical Synthesis, Characterization, and Biocompatibility Study of Hydroxyapatite/Chitosan Phosphate Nanocomposite for Bone Tissue Engineering Applications , 2009, International journal of biomaterials.
[18] F. Monteiro,et al. Hydroxyapatite Nanoparticles: A Review of Preparation Methodologies , 2004, Journal of applied biomaterials & biomechanics : JABB.
[19] H. Mirzadeh,et al. Synthesis and characterization of nano-hydroxyapatite rods/poly(l-lactide acid) composite scaffolds for bone tissue engineering , 2008 .
[20] O. Wilson,et al. Surface modification of nanophase hydroxyapatite with chitosan , 2008 .
[21] Byung-Soo Kim,et al. In vivo bone formation from human embryonic stem cell-derived osteogenic cells in poly(d,l-lactic-co-glycolic acid)/hydroxyapatite composite scaffolds. , 2008, Biomaterials.
[22] C. Laurencin,et al. Biodegradable polymers as biomaterials , 2007 .
[23] Xuesi Chen,et al. Electrospun poly(l-lactide)-grafted hydroxyapatite/poly(l-lactide) nanocomposite fibers , 2007 .
[24] Yi Zuo,et al. Biocompatibility and osteogenesis of biomimetic nano-hydroxyapatite/polyamide composite scaffolds for bone tissue engineering. , 2007, Biomaterials.
[25] S. Verma,et al. Fast degradable poly(L‐lactide‐co‐ε‐caprolactone) microspheres for tissue engineering: Synthesis, characterization, and degradation behavior , 2007 .
[26] A. Tarafdar,et al. Capping agent-assisted synthesis of nanosized hydroxyapatite: Comparative studies of their physicochemical properties , 2007 .
[27] W. Punyodom,et al. Synthesis and characterization of poly(L-lactide-co-e- caprolactone) copolymers: influence of sequential monomer addition on chain microstructure , 2007 .
[28] C. Fonseca,et al. Thermal and Conduction Properties of a PCL-biodegradable Gel Polymer Electrolyte with LiClO4, LiF3CSO3, and LiBF4 Salts , 2007, International Journal of Electrochemical Science.
[29] Xuesi Chen,et al. Synthesis and characterization of poly(ε-caprolactone)-poly(L-lactide) diblock copolymers with an organic amino calcium catalyst , 2006 .
[30] Xiaotong Zheng,et al. Shape memory properties of poly(D,L-lactide)/hydroxyapatite composites. , 2006, Biomaterials.
[31] A. Boccaccini,et al. Biodegradable and bioactive porous polymer/inorganic composite scaffolds for bone tissue engineering. , 2006, Biomaterials.
[32] Byung-Soo Kim,et al. Poly(lactide-co-glycolide)/hydroxyapatite composite scaffolds for bone tissue engineering. , 2006, Biomaterials.
[33] W. L. Vasconcelos,et al. Synthesis control and characterization of hydroxyapatite prepared by wet precipitation process , 2004 .
[34] Hong-Ru Lin,et al. Porous alginate/hydroxyapatite composite scaffolds for bone tissue engineering: preparation, characterization, and in vitro studies. , 2004, Journal of biomedical materials research. Part B, Applied biomaterials.
[35] Peter X Ma,et al. Structure and properties of nano-hydroxyapatite/polymer composite scaffolds for bone tissue engineering. , 2004, Biomaterials.
[36] D. Choi,et al. Chemical synthesis of hydroxyapatite/poly(ε-caprolactone) composites , 2004 .
[37] S. Ray,et al. Biodegradable Polylactide and Its Nanocomposites: Opening a New Dimension for Plastics and Composites , 2003 .
[38] E. Sachlos,et al. Making tissue engineering scaffolds work. Review: the application of solid freeform fabrication technology to the production of tissue engineering scaffolds. , 2003, European cells & materials.
[39] Masakazu Kawashita,et al. Novel bioactive materials with different mechanical properties. , 2003, Biomaterials.
[40] T. Park,et al. Dexamethasone-releasing biodegradable polymer scaffolds fabricated by a gas-foaming/salt-leaching method. , 2003, Biomaterials.
[41] Guoping Chen,et al. Scaffold Design for Tissue Engineering , 2002 .
[42] R. Molloy,et al. Synthesis and characterization of a random terpolymer of L-lactide, ε-caprolactone and glycolide , 2001 .
[43] M. Textor,et al. Biodegradable polymer/hydroxyapatite composites: surface analysis and initial attachment of human osteoblasts. , 2001, Journal of biomedical materials research.
[44] T. Park,et al. A novel fabrication method of macroporous biodegradable polymer scaffolds using gas foaming salt as a porogen additive. , 2000, Journal of biomedical materials research.
[45] Shen‐guo Wang,et al. Synthesis and characterization of polycaprolactone (B)–poly(lactide-co-glycolide) (A) ABA block copolymer † , 2000 .
[46] S. Hoerstrup,et al. Tissue engineering in cardiovascular surgery: MTT, a rapid and reliable quantitative method to assess the optimal human cell seeding on polymeric meshes. , 1999, European journal of cardio-thoracic surgery : official journal of the European Association for Cardio-thoracic Surgery.
[47] Ross R. Muth,et al. Biodegradable polymers for use in surgery—polyglycolic/poly(actic acid) homo- and copolymers: 1 , 1979 .
[48] P. Uppanan,et al. PLA-HA Scaffolds: Preparation and Bioactivity☆ , 2013 .
[49] J. E. González,et al. A comparative study of hydroxyapatite nanoparticles synthesized by different routes , 2012 .
[50] K. Landfester,et al. Biodegradable Polyester-based Nanoparticle Formation by Miniemulsion Technique , 2012 .
[51] Lei Nie,et al. Preparation and properties of biphasic calcium phosphate scaffolds multiply coated with HA/PLLA nanocomposites for bone tissue engineering applications , 2012 .
[52] T. Kumar,et al. Rapid Synthesis of Calcium Deficient Hydroxyapatite Nanoparticles by Microwave Irradiation , 2005 .
[53] T. Toube,et al. Fundamentals of preparative organic chemistry , 1982 .