• Media type: E-Article
  • Title: Biocompatibility of PLGA/sP(EO-stat-PO)-Coated Mesh Surfaces under Constant Shearing Stress
  • Contributor: Böhm, Gabriele; Ushakova, Yelena; Alizai, Hamid Patrick; Braunschweig, Till; Lente, Christina; Heffels, Karl-Heinz; Groll, Jürgen; Neumann, Ulf Peter; Junge, Karsten
  • Published: S. Karger AG, 2011
  • Published in: European Surgical Research, 47 (2011) 3, Seite 118-129
  • Language: English
  • DOI: 10.1159/000329412
  • ISSN: 0014-312X; 1421-9921
  • Keywords: Surgery
  • Origination:
  • Footnote:
  • Description: <jats:p>&lt;i&gt;Background:&lt;/i&gt; In order to allow inflammatory response modification and ultimately improvement in tissue remodeling, we developed a new surface modification for meshes that will serve as a carrier for other substances. Biocompatibility is tested in an animal model. &lt;i&gt;Methods:&lt;/i&gt; The animal model for diaphragmatic hernia repair was established in prior studies. Meshes were surface modified with star-configured PEO (polyethylene oxide)-based molecules [sP(EO-stat-PO)]. An electrospun nanoweb of short-term absorbable PLGA (polylactide-co-glycolide) with integrated sP(EO-stat-PO) molecules was applied onto the modified meshes. This coating also served as aerial sealing of the diaphragm. A final layer of hydrogel was applied to the product. Adhesive properties, defect size and mesh shrinkage were determined, and histological and immunohistochemical investigations performed after 4 months. &lt;i&gt;Results:&lt;/i&gt; The mean defect size decreased markedly in both modified mesh groups. Histologically and with regard to apoptosis and proliferation rate, smooth muscle cells, collagen I/III ratio and macrophage count, no statistically significant difference was seen between the 3 mesh groups. &lt;i&gt;Conclusions:&lt;/i&gt; In this proof-of-principle investigation, we demonstrate good biocompatibility for this surface-modified mesh compared to a standard polypropylene-based mesh. This new coating represents a promising tool as a carrier for bioactive substances in the near future.</jats:p>