4.5 Article

Electrospun gelatin biopapers as substrate for in vitro bilayer models of blood-brain barrier tissue

期刊

出版社

WILEY
DOI: 10.1002/jbm.a.35624

关键词

blood-brain barrier; electrospinning; gelatin; tissue engineering; biomaterial

资金

  1. Chemical Biological Technologies Directorate, Department of Defense Chemical and Biological Defense program through the Defense Threat Reduction Agency (DTRA)
  2. American Society for Engineering Education [CB10011]

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Gaining a greater understanding of the blood-brain barrier (BBB) is critical for improvement in drug delivery, understanding pathologies that compromise the BBB, and developing therapies to protect the BBB. In vitro human tissue models are valuable tools for studying these issues. The standard in vitro BBB models use commercially available cell culture inserts to generate bilayer co-cultures of astrocytes and endothelial cells (EC). Electrospinning can be used to produce customized cell culture substrates with optimized material composition and mechanical properties with advantages over off-the-shelf materials. Electrospun gelatin is an ideal cell culture substrate because it is a natural polymer that can aid cell attachment and be modified and degraded by cells. Here, we have developed a method to produce cell culture inserts with electrospun gelatin biopaper membranes. The electrospun fiber diameter and cross-linking method were optimized for the growth of primary human endothelial cell and primary human astrocyte bilayer co-cultures to model human BBB tissue. BBB co-cultures on biopaper were characterized via cell morphology, trans-endothelial electrical resistance (TEER), and permeability to FITC-labeled dextran and compared to BBB co-cultures on standard cell culture inserts. Over longer culture periods (up to 21 days), cultures on the optimized electrospun gelatin biopapers were found to have improved TEER, decreased permeability, and permitted a smaller separation between co-cultured cells when compared to standard PET inserts. (c) 2016 Wiley Periodicals, Inc. J Biomed Mater Res Part A: 104A: 901-909, 2016.

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