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The effect of protein structure on their controlled release from an injectable peptide hydrogel

  1. Author:
    Branco, M. C.
    Pochan, D. J.
    Wagner, N. J.
    Schneider, J. P.
  2. Author Address

    [Branco, Monica C.; Schneider, Joel P.] NCI, Biol Chem Lab, Frederick, MD 21701 USA. [Pochan, Darrin J.] Univ Delaware, Dept Mat Sci & Engn, Newark, DE 19716 USA. [Wagner, Norman J.] Univ Delaware, Dept Chem Engn, Newark, DE 19716 USA.;Schneider, JP, NCI, Biol Chem Lab, Frederick, MD 21701 USA.
    1. Year: 2010
    2. Date: Dec
  1. Journal: Biomaterials
    1. 31
    2. 36
    3. Pages: 9527-9534
  2. Type of Article: Article
  3. ISSN: 0142-9612
  1. Abstract:

    Hydrogel materials are promising vehicles for the delivery of protein therapeutics Proteins can impart physical interactions both steric and electrostatic in nature that influence their release from a given gel network Here model proteins of varying hydrodynamic diameter and charge are directly encapsulated and their release studied from electropositive fibrillar hydrogels prepared from the self-assembling peptide MAX8 Hydrogelation of MAX8 can be triggered in the presence of proteins for their direct encapsulation with neither effect on protein structure nor the hydrogel s mechanical properties Bulk release of the encapsulated proteins from the hydrogels was assessed for a month time period at 37 degrees C before and after syringe delivery of the loaded gels to determine the influence of the protein structure on release Release of positively charged and neutral proteins was largely governed by the sterics imposed by the network Conversely negatively charged proteins interacted strongly with the positively charged fibrillar network, greatly restricting their release to <10% of the initial protein load Partition and retention studies indicated that electrostatic interactions dictate the amount of protein available for release Importantly, when protein encapsulated gels were delivered via syringe the release profiles of the macromolecules show the similar trends as those observed for non-sheared gels This study demonstrates that proteins can be directly encapsulated in self assembled MAX8 hydrogels which can then be syringe delivered to a site where subsequent release is controlled by protein structure Published by Elsevier Ltd

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External Sources

  1. DOI: 10.1016/j.biomaterials.2010.08.047
  2. WOS: 000285120800017

Library Notes

  1. Fiscal Year: FY2010-2011
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