Self-healing hybrid nanocomposites consisting of bisphosphonated hyaluronan and calcium phosphate nanoparticles.
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Jöns Hilborn | J. Hilborn | J. Jansen | J. J. van den Beucken | Xia Yang | M. Huysmans | S. Leeuwenburgh | M. R. Nejadnik | Hamid Mohammed H Alghamdi | H. Alghamdi | M. Bongio | Dmitri A. Ossipov | Xia Yang | Dmitri Ossipov | M. Reza Nejadnik | Matilde Bongio | Hamdan S. Alghamdi | Jeroen J.J.P. van den Beucken | Marie C. Huysmans | John A. Jansen | Sander C.G. Leeuwenburgh | M. Huysmans | M Reza Nejadnik
[1] Huipin Yuan,et al. Osteoinductive ceramics as a synthetic alternative to autologous bone grafting , 2010, Proceedings of the National Academy of Sciences.
[2] Akira Harada,et al. Preorganized Hydrogel: Self‐Healing Properties of Supramolecular Hydrogels Formed by Polymerization of Host–Guest‐Monomers that Contain Cyclodextrins and Hydrophobic Guest Groups , 2013, Advanced materials.
[3] R. Kasi,et al. Hierarchically structured free-standing hydrogels with liquid crystalline domains and magnetic nanoparticles as dual physical cross-linkers. , 2012, Journal of the American Chemical Society.
[4] Jiaxi Cui,et al. Multivalent H-bonds for self-healing hydrogels. , 2012, Chemical communications.
[5] Neil B. Cramer,et al. Mechanism and Modeling of a Thiol−Ene Photopolymerization , 2003 .
[6] R. Russell,et al. Bisphosphonates: the first 40 years. , 2011, Bone.
[7] T. Troczynski,et al. A concrete solution , 2004, Nature materials.
[8] Yoshifumi Amamoto,et al. Self-healing of chemical gels cross-linked by diarylbibenzofuranone-based trigger-free dynamic covalent bonds at room temperature. , 2012, Angewandte Chemie.
[9] Tal Dvir,et al. Nanotechnological strategies for engineering complex tissues. , 2020, Nature nanotechnology.
[10] J. Hilborn,et al. Preparation of hyaluronic acid nanoparticles via hydrophobic association assisted chemical cross-linking—an orthogonal modular approach , 2011 .
[11] Bing Xu,et al. The first pamidronate containing polymer and copolymer. , 2006, Chemical communications.
[12] C. Schmuck. Supramolecular structures: Robust materials from weak forces. , 2011, Nature Nanotechnology.
[13] K. Khor,et al. Temperature driven morphological changes of chemically precipitated hydroxyapatite nanoparticles. , 2004, Langmuir : the ACS journal of surfaces and colloids.
[14] D. Knight,et al. Surface modification using phosphonic acids and esters. , 2012, Chemical reviews.
[15] J. Jansen,et al. Facilitating the mineralization of oligo(poly(ethylene glycol) fumarate) hydrogel by incorporation of hydroxyapatite nanoparticles. , 2012, Journal of biomedical materials research. Part A.
[16] Takashi Kato,et al. An Acidic Matrix Protein, Pif, Is a Key Macromolecule for Nacre Formation , 2009, Science.
[17] Hong-Bin Yao,et al. Artificial nacre-like bionanocomposite films from the self-assembly of chitosan-montmorillonite hybrid building blocks. , 2010, Angewandte Chemie.
[18] D. Haverkamp,et al. Hyaluronic acid in the treatment of knee osteoarthritis: a systematic review and meta-analysis with emphasis on the efficacy of different products. , 2012, BioDrugs : clinical immunotherapeutics, biopharmaceuticals and gene therapy.
[19] E. W. Meijer,et al. A modular and supramolecular approach to bioactive scaffolds for tissue engineering , 2005, Nature materials.
[20] T. Matsumoto,et al. X-ray diffraction analysis of three-dimensional self-reinforcing monomer and its chemical interaction with tooth and hydroxyapatite. , 2012, Dental materials journal.
[21] M. Gazzano,et al. Composite Nanocrystals Provide New Insight on Alendronate Interaction with Hydroxyapatite Structure , 2007 .
[22] Ian W. Hamley,et al. Self-assembly of amphiphilic peptides , 2011 .
[23] S. Heilshorn,et al. Protein‐Engineered Injectable Hydrogel to Improve Retention of Transplanted Adipose‐Derived Stem Cells , 2013, Advanced healthcare materials.
[24] Oren A Scherman,et al. Ultrahigh-water-content supramolecular hydrogels exhibiting multistimuli responsiveness. , 2012, Journal of the American Chemical Society.
[25] Boris Rybtchinski,et al. A recyclable supramolecular membrane for size-selective separation of nanoparticles , 2011, Nature Nanotechnology.
[26] Boris Rybtchinski,et al. Adaptive supramolecular nanomaterials based on strong noncovalent interactions. , 2011, ACS nano.
[27] Matthew Pilarz,et al. Controlling hydrogelation kinetics by peptide design for three-dimensional encapsulation and injectable delivery of cells , 2007, Proceedings of the National Academy of Sciences.
[28] Henrik Birkedal,et al. pH-induced metal-ligand cross-links inspired by mussel yield self-healing polymer networks with near-covalent elastic moduli , 2011, Proceedings of the National Academy of Sciences.
[29] J. Jansen,et al. IN-VIVO DISSOLUTION BEHAVIOR OF VARIOUS RF MAGNETRON SPUTTERED CA-P COATINGS ON ROUGHENED TITANIUM IMPLANTS , 1999 .
[30] Tadashi Kokubo,et al. How useful is SBF in predicting in vivo bone bioactivity? , 2006, Biomaterials.
[31] M. Yoshinari,et al. Influence of rapid heating with infrared radiation on RF magnetron-sputtered calcium phosphate coatings. , 1997, Journal of biomedical materials research.
[32] C. Bowman,et al. Network Development in Mixed Step-Chain Growth Thiol−Vinyl Photopolymerizations , 2006 .
[33] J. Hilborn,et al. Direct ″Click″ Synthesis of Hybrid Bisphosphonate–Hyaluronic Acid Hydrogel in Aqueous Solution for Biomineralization , 2012 .
[34] Jacqueline A. Cutroni,et al. Sacrificial bonds and hidden length dissipate energy as mineralized fibrils separate during bone fracture , 2005, Nature materials.
[35] J. Hilborn,et al. Functionalization of hyaluronic acid with chemoselective groups via a disulfide-based protection strategy for in situ formation of mechanically stable hydrogels. , 2010, Biomacromolecules.
[36] Masaru Yoshida,et al. High-water-content mouldable hydrogels by mixing clay and a dendritic molecular binder , 2010, Nature.
[37] C. Rey,et al. Interaction between a bisphosphonate, tiludronate, and biomimetic nanocrystalline apatites. , 2013, Langmuir : the ACS journal of surfaces and colloids.
[38] P. Cordier,et al. Self-healing and thermoreversible rubber from supramolecular assembly , 2008, Nature.
[39] Gen Kamita,et al. Lamellar Bilayers as Reversible Sacrificial Bonds To Toughen Hydrogel: Hysteresis, Self-Recovery, Fatigue Resistance, and Crack Blunting , 2011 .
[40] G. Prestwich. Hyaluronic acid-based clinical biomaterials derived for cell and molecule delivery in regenerative medicine. , 2011, Journal of controlled release : official journal of the Controlled Release Society.
[41] J. Jansen,et al. Oppositely Charged Gelatin Nanospheres as Building Blocks for Injectable and Biodegradable Gels , 2011, Advanced materials.
[42] D. Haverkamp,et al. Hyaluronic Acid in the Treatment of Knee Osteoarthritis , 2012, BioDrugs.
[43] Cheng-Chih Hsu,et al. Rapid self-healing hydrogels , 2012, Proceedings of the National Academy of Sciences.
[44] J. Jansen,et al. In vivo dissolution behavior of various RF magnetron-sputtered Ca-P coatings on roughened titanium implants. , 2003, Biomaterials.
[45] L Geris,et al. Current views on calcium phosphate osteogenicity and the translation into effective bone regeneration strategies. , 2012, Acta biomaterialia.
[46] A. Fakhari,et al. Applications and emerging trends of hyaluronic acid in tissue engineering, as a dermal filler and in osteoarthritis treatment. , 2013, Acta biomaterialia.
[47] S. Minagi,et al. Nanolayering of phosphoric acid ester monomer on enamel and dentin. , 2011, Acta biomaterialia.