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Cell-material interactions on biphasic polyurethane matrix

  • Patrick Dicesare
  • , Wade M. Fox
  • , Michael J. Hill
  • , G. Rajesh Krishnan
  • , Shuying Yang
  • , Debanjan Sarkar
  • SUNY Buffalo
  • Anheuser-Busch Companies, LLC

Research output: Contribution to journalArticlepeer-review

13 Scopus citations

Abstract

Cell-matrix interaction is a key regulator for controlling stem cell fate in regenerative tissue engineering. These interactions are induced and controlled by the nanoscale features of extracellular matrix and are mimicked on synthetic matrices to control cell structure and functions. Recent studies have shown that nanostructured matrices can modulate stem cell behavior and exert specific role in tissue regeneration. In this study, we have demonstrated that nanostructured phase morphology of synthetic matrix can control adhesion, proliferation, organization and migration of human mesenchymal stem cells (MSCs). Nanostructured biodegradable polyurethanes (PU) with segmental composition exhibit biphasic morphology at nanoscale dimensions and can control cellular features of MSCs. Biodegradable PU with polyester soft segment and hard segment composed of aliphatic diisocyanates and dipeptide chain extender were designed to examine the effect polyurethane phase morphology. By altering the polyurethane composition, morphological architecture of PU was modulated and its effect was examined on MSC. Results show that MSCs can sense the nanoscale morphology of biphasic polyurethane matrix to exhibit distinct cellular features and, thus, signifies the relevance of matrix phase morphology. The role of nanostructured phases of a synthetic matrix in controlling cell-matrix interaction provides important insights for regulation of cell behavior on synthetic matrix and, therefore, is an important tool for engineering tissue regeneration.

Original languageEnglish
Pages (from-to)2151-2163
Number of pages13
JournalJournal of Biomedical Materials Research - Part A
Volume101 A
Issue number8
DOIs
StatePublished - Aug 2013

Keywords

  • cell-matrix interaction
  • cellular organization
  • mesenchymal stem cell
  • polyurethane

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