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Original Articles

Poly(2-hydroxyethyl acrylate) hydrogels containing hyper-branched poly(amidoamine) for sustained drug release

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Pages 228-237 | Received 11 Dec 2015, Accepted 12 May 2016, Published online: 20 Jul 2016

References

  • Shapiro, Y.E. (2011) Structure and dynamics of hydrogels and organogels: an NMR spectroscopy approach. Progress in Polymer Science, 36(9):1184–1253.
  • Vermonden, T., Censi, R., and Hennink, W.E. (2012) Hydrogels for protein delivery. Chemical Reviews, 112(5):2853–2888.
  • Nuttelman, C.R., Rice, M.A., Rydholm, A.E., Salinas, C.N., Shah, D.N., and Anseth, K.S. (2008) Macromolecular monomers for the synthesis of hydrogel niches and their application in cell encapsulation and tissue engineering. Progress in Polymer Science, 33(2):167–179.
  • Alarc N.C.D.L.H., Pennadam, S., and Alexander, C. (2005) Stimuli responsive polymers for biomedical applications. Chemical Society Reviews, 34(3):276.
  • Pedrón, S., Anseth, K., Benton, J.A., Bosch, P., and Peinado, C. (2010) Bioapplications of networks based on photo-cross-linked hyperbranched polymers. Macromolecular Symposia, 291–292(1):307–313.
  • Lee, H.J., Park, Y.H., and Koh, W. (2013) Fabrication of nanofiber microarchitectures localized within hydrogel microparticles and their application to protein delivery and cell encapsulation. Advanced Functional Materials, 23(5):591–597.
  • Zhao, P., Liu, H., Deng, H., Xiao, L., Qin, C., Du, Y., and Shi, X. (2014) A study of chitosan hydrogel with embedded mesoporous silica nanoparticles loaded by ibuprofen as a dual stimuli-responsive drug release system for surface coating of titanium implants. Colloids and Surfaces B: Biointerfaces, 123:657–663.
  • Liu, Y., and Fan, X. (2005) Synthesis, properties and controlled release behaviors of hydrogel networks using cyclodextrin as pendant groups. Biomaterials, 26(32):6367–6374.
  • Liu, Y., Fan, X., Hu, H., and Tang, Z. (2004) Release of Chlorambucil from Poly (N-isopropylacrylamide) Hydrogels with β-Cyclodextrin Moieties. Macromolecular Bioscience, 4(8):729–736.
  • Liu, Y., Fan, X., Kang, T., and Sun, L. (2004) A cyclodextrin microgel for controlled release driven by inclusion effects. Macromolecular Rapid Communications, 25(22):1912–1916.
  • Liu, Y., Fan, X., Wei, B., Si, Q., Chen, W., and Sun, L. (2006) pH-responsive amphiphilic hydrogel networks with IPN structure: A strategy for controlled drug release. International Journal of Pharmaceutics, 308(1–2):205–209.
  • Liu, Y., Shao, Y., and Lü, J. (2006) Preparation, properties and controlled release behaviors of pH-induced thermosensitive amphiphilic gels. Biomaterials, 27(21):4016–4024.
  • Liu, Y., Lü, J., and Shao, Y. (2006) Preparation and characterization of Poly(N-isopropylacrylamide)-modified Poly(2-hydroxyethyl acrylate) hydrogels by interpenetrating polymer networks for sustained drug release. Macromolecular Bioscience, 6(6):452–458.
  • Liu, W., Liu, Y., Liao, X., and Tian, W. (2012) Release of Ftorafur from pH-sensitive hydrogels with hyperbranched poly(4-vinylbenzyl chloride) moieties. Materials Science and Engineering: C, 32(4):953–960.
  • Polikarpov, N., Appelhans, D., Welzel, P., Kaufmann, A., Dhanapal, P., Bellmann, C., and Voit, B. (2012) Tailoring uptake and release of ATP by dendritic glycopolymer/PNIPAAm hydrogel hybrids: first approaches towards multicompartment release systems. New Journal of Chemistry, 36(2):438.
  • Bekhradnia, S., Zhu, K., Knudsen, K.D., Sande, S.A., and Nyström, B. (2014) Structure, swelling, and drug release of thermoresponsive poly(amidoamine) dendrimer–poly(N-isopropylacrylamide) hydrogels. Journal of Materials Science, 49(17):6102–6110.
  • Tongab, N.N., Nguyena, T.H., Nguyenc, D.H., Nguyenc, C.K., Quyen, N., and Tran. (2015) Preparation of the cationic dendrimer-based hydrogels for controlled heparin release. Journal of Macromolecular Science, Part A: Pure and Applied Chemistry, 52(10):830–837.
  • Bi, X., Amie, L.J., Allen, A., Ramaboli, M., Campbell, E., West, D., Maturavongsadit, P., Brummett, K., and Wang, Q. (2015) Synthesis of PAMAM dendrimer-based fast cross-linking hydrogel for biofabrication. Journal of Biomaterial Science Polymer Edition, 26(11):669–682.
  • Peng, Q., Sun, X., Gong, T., Wu, C.Y., Zhang, T., Tan, J., and Zhang, Z.R. (2013) Injectable and biodegradable thermosensitive hydrogels loaded with PHBHHx nanoparticles for the sustained and controlled release of insulin. Acta Biomaterialia, 9(2):5063–5069.
  • Pastor, E., Matveeva, E., Valle-Gallego, A., Goycoolea, F.M., and Garcia-Fuentes, M. (2011) Protein delivery based on uncoated and chitosan-coated mesoporous silicon microparticles. Colloids and Surfaces B: Biointerfaces, 88(2):601–609.
  • Wróblewska, M., and Winnicka, K. (2015) The effect of cationic polyamidoamine dendrimers on physicochemical characteristics of hydrogels with erythromycin. International Journal of Molecular Sciences, 16(9):20277–20289.
  • Contri, R.V., Katzer, T., Pohlmann, A.R., and Guterres, S.S. (2010) Chitosan hydrogel containing capsaicinoids- loaded nanocapsules: an innovative formulation for topical delivery. Soft Materials, 8(4):370–385.
  • Wang, K., Xu, X., Wang, Y., Guo, G., Huang, M., Luo, F., Xia, and Zhao, Y.W.Z.Q. (2010) In vitro release behavior of bovine serum albumin from alginate/P(CE-MAA-MEG) composite hydrogel. Soft Materials, 8(4):307–319.
  • Chen, Y., Zeng, G., Liu, W., and Xu, W. (2015) Synthesis and characterization of water-soluble POSS hybrid inorganic/organic PDMAEMA nanocomposite hydrogels. Soft Materials, 13:77–85.
  • Singh, B., and Sharma, N. (2009) Mechanistic implication for cross-linking in sterculia-based hydrogels and their use in GIT drug delivery. Biomacromolecules, 10(9):2515–2532.
  • Zheng, Y., Li, S., Weng, Z., and Gao, C. (2015) Hyperbranched polymers: advances from synthesis to applications. Chemistry Society Review, 44(12):4091–4130.
  • Cai, Y., and Liu, Y. (2013) Amphiphilic unimolecular nanoparticles based on a hyperbranched polyacrylate core and a PNIPAm shell: Synthesis via ATRP and properties. Macromolecular Chemistry and Physics, 214(8):882–891.
  • Irfan, M., and Seiler, M. (2010) Encapsulation using hyperbranched polymers: From research and technologies to emerging applications. Industrial & Engineering Chemistry Research, 49(3):1169–1196.
  • Chen, Y., Shen, Z., Pastor-Pérez, L., Frey, H., and Stiriba, S. (2005) Role of topology and amphiphilicity for guest encapsulation in functionalized hyperbranched poly(ethylenimine)s. Macromolecules, 38(2):227–229.
  • Song, W., Liu, Y., Qian, L., Niu, L., Xiao, L., Hou, Y., Wang, Y., and Fan, X. (2016) Hyperbranched polymeric ionic liquid with imidazolium backbones for highly efficient removal of anionic dyes. Chemical Engineering Journal, 287:482–491.
  • Khutoryanskaya, O.V., Mayeva, Z.A., Mun, G.A., and Khutoryanskiy, V.V. (2008) Designing temperature-responsive biocompatible copolymers and hydrogels based on 2-hydroxyethyl (meth) acrylates. Biomacro molecules, 9(12):3353–3361.
  • Wang, D., Liu, Y., Hong, C., and Pan, C. (2005) Preparation and characterization of novel hyperbranched poly(amido amine)s from Michael addition polymerizations of trifunctional amines with diacrylamides. Journal of Polymer Science Part A: Polymer Chemistry, 43(21):5127–5137.
  • Mather, B.D., Viswanathan, K., Miller, K.M., and Long, T.E. (2006) Michael addition reactions in macromolecular design for emerging technologies. Progress in Polymer Science, 31(5):487–531.
  • Wu, D., Liu, Y., He, C., Chung, T., and Goh, S. (2004) Effects of chemistries of trifunctional amines on mechanisms of michael addition polymerizations with diacrylates. Macromolecules, 37:6763–6770.
  • Ding Wang, Z.Z.C.H. (2006) Michael addition polymerizations of difunctional amines (AA’) and triacrylamides (B3). Journal of Polymer Science: Part A: Polymer Chemistry, 44:6226–6242.
  • Lin, Q., and Long, T.E. (2003) Polymerization of A2 with B3 monomers: a facile approach to hyperbranched poly(aryl ester)s. Macromolecules, 36(26):9809–9816.
  • Hawker, C.J., Lee, R., and Frechet, J.M.J. (1991) One-step synthesis of hyperbranched dendritic polyesters. Journal of the American Chemical Society, 113(12):4583–4588.
  • Wang, H., Chen, X., and Pan, C. (2008) Synthesis of novel star-like hyperbranched polymers with poly(amido amine) core and poly(l-lysine) shell. European Polymer Journal, 44(7):2184–2193.
  • Kong, J., Schmalz, T., Motz, G., and Müller, A.H.E. (2011) Novel hyperbranched herrocene-containing poly(boro)carbosilanes synthesized via a convenient “A2 +B3” approach. Macromolecules, 44(6):1280–1291.
  • Rao, J., Zhang, Y., Zhang, J., and Liu, S. (2008) Facile preparation of well-defined AB2 Y-Shaped miktoarm star polypeptide copolymer via the combination of ring-opening polymerization and click chemistry. Biomacromolecules, 9(10):2586–2593.
  • He, E., Ravi, P., and Tam, K.C. (2007) Synthesis and self-assembly behavior of four-arm poly(ethylene oxide)-oxide)-b-poly(2-(diethylamino)ethyl methacrylate) star block copolymer in salt solutions. Langmuir, 23(5):2382–2388.

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