Time Controlled Protein Release from Layer‐by‐Layer Assembled Multilayer Functionalized Agarose Hydrogels
- 13 January 2010
- journal article
- research article
- Published by Wiley in Advanced Functional Materials
- Vol. 20 (2) , 247-258
- https://doi.org/10.1002/adfm.200901172
Abstract
Axons of the adult central nervous system exhibit an extremely limited ability to regenerate after spinal cord injury. Experimentally generated patterns of axon growth are typically disorganized and randomly oriented. Support of linear axonal growth into spinal cord lesion sites has been demonstrated using arrays of uniaxial channels, templated with agarose hydrogel, and containing genetically engineered cells that secrete brain‐derived neurotrophic factor (BDNF). However, immobilizing neurotrophic factors secreting cells within a scaffold is relatively cumbersome, and alternative strategies are needed to provide sustained release of BDNF from templated agarose scaffolds. Existing methods of loading the drug or protein into hydrogels cannot provide sustained release from templated agarose hydrogels. Alternatively, here it is shown that pH‐responsive H‐bonded poly(ethylene glycol)(PEG)/poly(acrylic acid)(PAA)/protein hybrid layer‐by‐layer (LbL) thin films, when prepared over agarose, provided sustained release of protein under physiological conditions for more than four weeks. Lysozyme, a protein similar in size and isoelectric point to BDNF, is released from the multilayers on the agarose and is biologically active during the earlier time points, with decreasing activity at later time points. This is the first demonstration of month‐long sustained protein release from an agarose hydrogel, whereby the drug/protein is loaded separately from the agarose hydrogel fabrication process.Keywords
This publication has 64 references indexed in Scilit:
- Induction of corticospinal regeneration by lentiviral trkB-induced Erk activationProceedings of the National Academy of Sciences, 2009
- Multilayer mediated forward and patterned siRNA transfection using linear-PEI at extended N/P ratiosActa Biomaterialia, 2009
- Cell Adhesion on Polyelectrolyte Multilayer Coated Polydimethylsiloxane Surfaces with Varying TopographiesTissue Engineering, 2007
- Recombinant gelatin hydrogels for the sustained release of proteinsJournal of Controlled Release, 2007
- Controlled release of vascular endothelial growth factor from alginate hydrogels nano-coated with polyelectrolyte multilayer filmsJournal of Biomaterials Science, Polymer Edition, 2007
- Controlling interlayer diffusion to achieve sustained, multiagent delivery from layer-by-layer thin filmsProceedings of the National Academy of Sciences, 2006
- Topology Evolution and Gelation Mechanism of Agarose GelThe Journal of Physical Chemistry B, 2005
- Diffusion and Partitioning of Solutes in Agarose Hydrogels: The Relative Influence of Electrostatic and Specific InteractionsThe Journal of Physical Chemistry B, 2003
- Layer-by-layer self assembly of polyelectrolytes on colloidal particlesColloids and Surfaces A: Physicochemical and Engineering Aspects, 1998
- Nerve Growth Factor Delivery by Gene Transfer Induces Differential Outgrowth of Sensory, Motor, and Noradrenergic Neurites after Adult Spinal Cord InjuryExperimental Neurology, 1996