4.8 Article

Nanopatterned polymer substrates promote endothelial proliferation by initiation of β-catenin transcriptional signaling

期刊

ACTA BIOMATERIALIA
卷 8, 期 8, 页码 2953-2962

出版社

ELSEVIER SCI LTD
DOI: 10.1016/j.actbio.2012.04.018

关键词

Endothelial cell; Cell signaling; Laser manufacturing; Nanotopography

资金

  1. Austrian NANO initiative under project NSI3_NBPF
  2. Federal Ministry for Science and Research under project GOLD within the framework of the Austrian genome program GEN-AU

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Control of endothelial phenotype involves a variety of signaling pathways and transcriptional regulators, including the junctional protein beta-catenin. This multifunctional signaling molecule is part of adhesion contacts in the endothelium and is able to translocate into the nucleus to activate genetic programs and control proliferation and the fate of the cells. We investigated the influence of laser-generated nanopatterns on polymeric cell culture substrates on endothelial tissue architecture, proliferation and beta-catenin signaling. For our experiments human microvascular endothelial cells or CD34(+) endothelial progenitor cells, isolated from human adipose tissue, were cultured on polyethylene terephthalate (PET) substrates with oriented nanostructures with lateral periodicities of 1.51 mu m and 300 nm, respectively. The surface topography and chemistry of the PET substrates were characterized by electron microscopy, atomic force microscopy, water contact angle measurement and X-ray photoelectron spectroscopy. Analysis of cell phenotype markers as well as beta-catenin signaling revealed that short-term culture of endothelial cells on nanostructured substrates generates a proliferative cell phenotype associated with nuclear accumulation of beta-catenin and activation of specific beta-catenin target genes. The effects of the nanostructures were not directly correlated with nanostructure-induced alignment of cells and were also clearly distinguishable from the effects of altered PET surface chemistry due to photomodification. In summary, we present a novel mechanism of surface topology-dependent control of transcriptional programs in mature endothelium and endothelial progenitor cells. (c) 2012 Acta Materialia Inc. Published by Elsevier Ltd. All rights reserved.

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