Robust biopolymer based ionic-covalent entanglement hydrogels with reversible mechanical behaviour.
暂无分享,去创建一个
[1] H. P. Jenkins,et al. Gelatin sponge, a new hemostatic substance; studies on absorbability. , 1945, Archives of surgery.
[2] J F A McMANUS,et al. Histological and histochemical uses of periodic acid. , 1948, Stain technology.
[3] M. O’Neill,et al. Structure of the acidic extracellular gelling polysaccharide produced by Pseudomonas elodea , 1983 .
[4] Jung‐Il Jin,et al. Thermotropic Main Chain Polyesters with Polymethylene Spacers and Their Low Molecular Weight Model Compounds—Odd-Even Effect of Polymethylene Spacers , 1986 .
[5] M. Djabourov,et al. Gelation of aqueous gelatin solutions. II. Rheology of the sol-gel transition , 1988 .
[6] M. Djabourov,et al. Gelation of aqueous gelatin solutions. I. Structural investigation , 1988 .
[7] J. Vacanti,et al. Tissue engineering : Frontiers in biotechnology , 1993 .
[8] Y. Takeda,et al. Studies on the Blue Pigments Produced from Genipin and Methylamine. I. Structures of the Brownish-Red Pigments, Intermediates Leading to the Blue Pigments , 1994 .
[9] H. Sung,et al. In vitro evaluation of cytotoxicity of a naturally occurring cross-linking reagent for biological tissue fixation. , 1999, Journal of biomaterials science. Polymer edition.
[10] Y Ikada,et al. Fabrication of porous gelatin scaffolds for tissue engineering. , 1999, Biomaterials.
[11] H. Sung,et al. In vitro evaluation of the genotoxicity of a naturally occurring crosslinking agent (genipin) for biologic tissue fixation. , 2000, Journal of biomedical materials research.
[12] K. Br,et al. Current status of DNA vaccines in veterinary medicine. , 2000 .
[13] Kodjo Boady Djagny,et al. Gelatin: A Valuable Protein for Food and Pharmaceutical Industries: Review , 2001, Critical reviews in food science and nutrition.
[14] K. Ito,et al. The Polyrotaxane Gel: A Topological Gel by Figure‐of‐Eight Cross‐links , 2001 .
[15] H. Sung,et al. Stability of a biological tissue fixed with a naturally occurring crosslinking agent (genipin). , 2001, Journal of biomedical materials research.
[16] A. Bigi,et al. Mechanical and thermal properties of gelatin films at different degrees of glutaraldehyde crosslinking. , 2001, Biomaterials.
[17] D. Mooney,et al. Hydrogels for tissue engineering. , 2001, Chemical Reviews.
[18] A. Bigi,et al. Stabilization of gelatin films by crosslinking with genipin. , 2002, Biomaterials.
[19] Hsing-Wen Sung,et al. In vivo biocompatibility and degradability of a novel injectable-chitosan-based implant. , 2002, Biomaterials.
[20] Yen Chang,et al. A genipin-crosslinked gelatin membrane as wound-dressing material: in vitro and in vivo studies , 2003, Journal of biomaterials science. Polymer edition.
[21] T. Kurokawa,et al. Double‐Network Hydrogels with Extremely High Mechanical Strength , 2003 .
[22] S. Hsu,et al. Preparation of networks of gelatin and genipin as degradable biomaterials , 2003 .
[23] Yoshihito Osada,et al. High Mechanical Strength Double‐Network Hydrogel with Bacterial Cellulose , 2004 .
[24] M. Zrínyi,et al. Progress in colloid and polymer science: Preface , 2004 .
[25] Y. Song,et al. Antiinflammatory effects of genipin, an active principle of gardenia. , 2004, European journal of pharmacology.
[26] Yoshimi Tanaka,et al. Novel hydrogels with excellent mechanical performance , 2005 .
[27] Chun-Hsu Yao,et al. An in vivo evaluation of a biodegradable genipin-cross-linked gelatin peripheral nerve guide conduit material. , 2005, Biomaterials.
[28] Antonios G Mikos,et al. Gelatin as a delivery vehicle for the controlled release of bioactive molecules. , 2005, Journal of controlled release : official journal of the Controlled Release Society.
[29] E. Park,et al. Anti-inflammatory evaluation of gardenia extract, geniposide and genipin. , 2006, Journal of ethnopharmacology.
[30] D. Rousseau,et al. Kinetic and mechanistic considerations in the gelation of genipin-crosslinked gelatin. , 2006, International journal of biological macromolecules.
[31] C. Montemagno,et al. Teaching hydrogels how to move like an earthworm. , 2007, Soft matter.
[32] Veerle Cnudde,et al. Porous gelatin hydrogels: 2. In vitro cell interaction study. , 2007, Biomacromolecules.
[33] Ta-Jen Huang,et al. Genipin-crosslinked gelatin scaffolds for articular cartilage tissue engineering with a novel crosslinking method , 2008 .
[34] A. Ahluwalia,et al. Genipin-crosslinked chitosan/gelatin blends for biomedical applications , 2008, Journal of materials science. Materials in medicine.
[35] K. Nishinari,et al. Chain Release Behavior of Gellan Gels , 2009 .
[36] Chen-Jung Chang,et al. The effect of pulse-released nerve growth factor from genipin-crosslinked gelatin in schwann cell-seeded polycaprolactone conduits on large-gap peripheral nerve regeneration. , 2009, Tissue engineering. Part A.
[37] S. Waldman,et al. Genipin Cross-Linked Fibrin Hydrogels for in vitro Human Articular Cartilage Tissue-Engineered Regeneration , 2009, Cells Tissues Organs.
[38] Chen-Jung Chang. Effects of nerve growth factor from genipin-crosslinked gelatin in polycaprolactone conduit on peripheral nerve regeneration--in vitro and in vivo. , 2009, Journal of biomedical materials research. Part A.
[39] Ta-Jen Huang,et al. Effect of crosslinking temperature on compression strength of gelatin scaffold for articular cartilage tissue engineering , 2010 .
[40] Nuno M Neves,et al. Gellan gum injectable hydrogels for cartilage tissue engineering applications: in vitro studies and preliminary in vivo evaluation. , 2010, Tissue engineering. Part A.
[41] Ali Khademhosseini,et al. Modified Gellan Gum hydrogels with tunable physical and mechanical properties. , 2010, Biomaterials.
[42] T. Hedman,et al. Kinetic Analysis of Genipin Degradation in Aqueous Solution , 2010, Natural product communications.
[43] R. Gullapalli,et al. Soft gelatin capsules (softgels). , 2010, Journal of pharmaceutical sciences.
[44] Jian Ping Gong,et al. Why are double network hydrogels so tough , 2010 .
[45] D. Rousseau,et al. Crosslinking of gelatin-based drug carriers by genipin induces changes in drug kinetic profiles in vitro , 2011, Journal of materials science. Materials in medicine.
[46] M. Tahriri,et al. Preparation and characterization of absorbable hemostat crosslinked gelatin sponges for surgical applications , 2011 .
[47] Joselito M. Razal,et al. Progress toward robust polymer hydrogels , 2011 .
[48] Jian Ping Gong,et al. Microgel-Reinforced Hydrogel Films with High Mechanical Strength and Their Visible Mesoscale Fracture Structure , 2011 .
[49] E. Morris,et al. Gelation of gellan – A review , 2012 .
[50] Z. Suo,et al. Highly stretchable and tough hydrogels , 2012, Nature.
[51] Shannon E Bakarich,et al. Recovery from applied strain in interpenetrating polymer network hydrogels with ionic and covalent cross-links , 2012 .
[52] David Taylor,et al. The fracture toughness of soft tissues. , 2012, Journal of the mechanical behavior of biomedical materials.
[53] Philip G. Whitten,et al. A pH-sensitive, strong double-network hydrogel: Poly(ethylene glycol) methyl ether methacrylates-poly(acrylic acid) , 2012 .
[54] Dongan Wang,et al. Formation of model hepatocellular aggregates in a hydrogel scaffold using degradable genipin crosslinked gelatin microspheres as cell carriers , 2012, Biomedical materials.
[55] M. Panhuis,et al. Gelapin, a degradable genipin cross-linked gelatin hydrogel , 2013 .
[56] M. Panhuis,et al. Mechanical characteristics of swollen gellan gum hydrogels , 2013 .
[57] Shannon E Bakarich,et al. Extrusion printing of ionic-covalent entanglement hydrogels with high toughness. , 2013, Journal of materials chemistry. B.
[58] P. Calvert,et al. Ionic-covalent entanglement hydrogels from gellan gum, carrageenan and an epoxy-amine , 2013 .
[59] Qiuming Wang,et al. A Robust, One‐Pot Synthesis of Highly Mechanical and Recoverable Double Network Hydrogels Using Thermoreversible Sol‐Gel Polysaccharide , 2013, Advanced materials.
[60] Tuning Mechanical Properties of Chondroitin Sulfate‐Based Double‐Network Hydrogels , 2013 .
[61] Martin Möller,et al. Mechanically strong hydrogels with reversible behaviour under cyclic compression with MPa loading , 2013 .
[62] Cecilia Laschi,et al. Soft robotics: a bioinspired evolution in robotics. , 2013, Trends in biotechnology.
[63] Jun Fu,et al. Tough nanocomposite double network hydrogels reinforced with clay nanorods through covalent bonding and reversible chain adsorption. , 2014, Journal of materials chemistry. B.